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US20050244929A1 - Expression of functional antibody fragments - Google Patents

Expression of functional antibody fragments Download PDF

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US20050244929A1
US20050244929A1 US11/173,653 US17365305A US2005244929A1 US 20050244929 A1 US20050244929 A1 US 20050244929A1 US 17365305 A US17365305 A US 17365305A US 2005244929 A1 US2005244929 A1 US 2005244929A1
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fab
antibody
polypeptide
fragments
expression
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Paul Carter
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Genentech Inc
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/06Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies from serum
    • C07K16/065Purification, fragmentation
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/32Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against translation products of oncogenes
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/46Hybrid immunoglobulins
    • C07K16/468Immunoglobulins having two or more different antigen binding sites, e.g. multifunctional antibodies
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/10Immunoglobulins specific features characterized by their source of isolation or production
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/20Immunoglobulins specific features characterized by taxonomic origin
    • C07K2317/24Immunoglobulins specific features characterized by taxonomic origin containing regions, domains or residues from different species, e.g. chimeric, humanized or veneered
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/73Inducing cell death, e.g. apoptosis, necrosis or inhibition of cell proliferation
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/73Inducing cell death, e.g. apoptosis, necrosis or inhibition of cell proliferation
    • C07K2317/732Antibody-dependent cellular cytotoxicity [ADCC]
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/77Internalization into the cell
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2319/00Fusion polypeptide
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2319/00Fusion polypeptide
    • C07K2319/01Fusion polypeptide containing a localisation/targetting motif
    • C07K2319/034Fusion polypeptide containing a localisation/targetting motif containing a motif for targeting to the periplasmic space of Gram negative bacteria as a soluble protein, i.e. signal sequence should be cleaved
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S435/00Chemistry: molecular biology and microbiology
    • Y10S435/972Modified antibody, e.g. hybrid, bifunctional

Definitions

  • This invention relates to the production of functional antibody fragments in a microbial host.
  • Naturally occurring antibodies comprise two heavy chains linked together by disulfide bonds and two light chains, each light chain being linked to one of the heavy chains by disulfide bonds.
  • Each chain has an N-terminal variable domain (V H or V L ) and a constant domain at its C-terminus; the constant domain of the light chain is aligned with and disulfide bonded to the first constant domain of the heavy chain, and the light chain variable domain is aligned with the variable domain of the heavy chain.
  • the heavy chain constant region includes (in the N- to C-terminal direction) the C H 1 and hinge regions.
  • the light chain also contains a hinge domain.
  • the constant domains are not involved directly in binding the antibody to an antigen, but are involved in various effector functions, such as participation of the antibody in antibody-dependent cellular cytotoxicity and complement dependent cytotoxicity.
  • the variable domains of each pair of light and heavy chains are involved directly in binding the antibody to the antigen.
  • the domains of natural light and heavy chains have the same general structure, the so-called immunoglobulin fold, and each domain comprises four framework (FR) regions, whose sequences are somewhat conserved, connected by three hyper-variable or complementarity determining regions (CDRs) (see Kabat, E. A. et al., Sequences of Proteins of Immunological Interest , National Institutes of Health, Bethesda, Md., (1987)).
  • Plückthun and Skerra describe techniques for the expression of functional antibody Fv and Fab fragments in E. coli in Methods In Enzymology 178:497-515 (1989). According to their strategy, in the cytoplasm, the precursor proteins for V L and V H , each fused to a bacterial signal sequence, are synthesized in reduced form. After translocation through the inner membrane into the periplasm, the signal sequences are cleaved, the domains fold and assemble, and the disulfide bonds form. They teach that expression of the Fab fragment according to their strategy is analogous. Similar expression strategies are found elsewhere in the literature. See also Plückthun, Biotechnology, 9:545-551 (1991) for a review of E. coli expression of antibody fragments.
  • Cabilly ( Gene, 85:553-557 [1989]) teaches that, in E. coli cells growing at reduced temperatures (21° C. or 30° C., rather than at 37° C.), a single expression plasmid coding for kappa-chains and truncated heavy chains (Fd fragments) gives rise to high yields of functional Fab fragments.
  • Cabilly discusses that the Fab fragments seem to exist in the E. coli cytoplasm as non-covalently linked dimers, but that soluble Fab fragments isolated from E. coli appear as covalent dimers, formed by air oxidation following cell rupture.
  • bivalent F(ab′) 2 antibody fragment dissociates into two Fab′ fragments. This dissociation is reversible by mild oxidation.
  • the production of Fab and F(ab′) 2 antibody fragments has also been shown by partial reduction and limited proteolysis of intact antibodies, see e.g. Parham, in Cellular Immunology (E. M. Weir, Ed., Blackwell Scientific, CA) 4th edition, vol. 1 chapter 14 (1983), however with these methods it is difficult to control the precise nature and proportions of the antibody fragment recovered.
  • Bivalent antibodies are those which contain at least two epitopic combining sites (which sites may be on the same or different antigens).
  • Bispecific antibodies are bivalent antibodies capable of binding two epitopes not shared by a single antigen.
  • Bispecific monoclonal antibodies with dual specificities for tumor-associated antigens on tumor cells and for surface markers in immune effector cells have been described (see, e.g. Liu et al., Proc. Natl. Acad. Sci. USA 82:8648 (1985); Perez et al., Nature 316:354 (1985)). These BsMAbs have been shown to be effective in directing and triggering effector cells to kill tumor cell targets (Fanger et al., Immunol. Today 12:51 (1991)).
  • BsMabs One approach to the production of BsMabs involves the fusion of two monoclonal antibody-producing hybridomas to form quadromas (hybrid hybridomas) which secrete BsMab in addition to undesirable chain combinations including parental MAbs (Milstein, C. and Cuello, A. C., Nature, 305:537 [1983])
  • quadromas quadromas
  • parental MAbs Milstein, C. and Cuello, A. C., Nature, 305:537 [1983]
  • other techniques would be preferred.
  • the principal embodiments of this invention are based on the surprising identification of cysteinyl free thiol in cysteinyl residues located outside of the light-heavy chain interface of recombinant microbial periplasmic antibody fragments, and the surprising discovery that Fv variants can be produced which contain only a single cysteinyl residue in the free thiol form. This facilitates the preparation of homogeneous recombinant F(ab′) 2 and other Fv-containing bivalent polypeptides.
  • either of the Fv light or heavy chains optionally is fused to a polypeptide sequence which contains one or more cysteinyl residues, provided that at least one of such cysteinyl residues located in the domain C-terminal to either of the light or heavy chain Fv is present as the free thiol in the periplasm.
  • Suitable polypeptide sequences include but are not limited to sequences derived from immunoglobulins, carrier proteins, receptors, growth factors, nutrient substances, cellular adhesive molecules, tissue-specific adhesion factors, enzymes, toxins and the like.
  • an unpaired cysteinyl residue is substituted at the C-terminus of either the light or the heavy chain Fv domain or at the C-terminus of the light chain or heavy chain CH1 domain.
  • the fused polypeptide sequence may comprise only the cysteinyl residue, or the cysteinyl residue can be present in a polypeptide fused to the C-terminus of (1) one of the Fv domains, (2) the light chain constant region or (3) the CH1 domain of a heavy chain.
  • the Fv-CH1 domain is fused to a hinge region bearing a single free thiol cysteinyl residue, and preferably a hinge region amino acid sequence variant containing only a single cysteinyl residue.
  • any other sequence containing a single free thiol cysteinyl residue is useful in place of the immunoglobulin hinge region.
  • the Fv-CH1 domain is fused to a hinge region bearing more than one, typically two or three, free thiol residues, preferably a hinge region amino acid sequence variant containing two or more cysteinyl residues.
  • Fab′-SH amino acid sequence variants which have been modified to contain three cysteinyl residues may be produced recombinantly in a suitable host cell, for example CHO cells or E. coli , and are conveniently coupled in vivo by the host cell to form F(ab′) 2 with three disulfide bonds connecting the heavy chains.
  • the Fv or polypeptide fused to the Fv is modified in certain embodiments so that only one cysteinyl residue is present which, in the periplasm, exhibits free thiol.
  • the Fab amino acid sequence is modified by deleting or substituting all of the hinge sequence cysteinyl residues C-terminal to the first cysteine.
  • all of the hinge sequence cysteinyl residues C-terminal to the third cysteine are modified by deletion or substitution.
  • This invention also provides Fv, Fab′, Fab′-SH and F(ab′) 2 polypeptides which do not have a disulfide bond between the light and heavy chains.
  • These polypeptides are referred to herein as “linkless”.
  • the amino acid sequence of the polypeptide is modified by substituting or deleting one or, preferably, both of the two cysteines which form the inter-chain (heavy-light) disulfide bond.
  • cysteines are replaced with serines, although it is within the scope hereof to covalently modify one or both of the cysteine side chain so as to be incapable of forming a disulfide bond.
  • efficient directed disulfide bond formation occurs in vitro, utilizing directed covalent coupling methods known in the art whereby bispecific bivalent antibodies are produced.
  • the disulfide bond formation between the first and second Fab′-SH comprises the following steps:
  • Novel F(ab′) 2 compositions are provided by the methods of this invention. Such compositions are
  • FIG. 1 shows the plasmid pA19 as used for the co-secretion of huMAb4D5-8 ⁇ light chain and heavy chain Fd′ fragment from E. coli .
  • the Fab′ expression unit is dicistronic with both chains under the transcriptional control of the PhoA promoter (C. N. Chang et al., Gene 44: 121 (1986)) which is inducible by phosphate starvation.
  • the humanized variable domains huV L and huv H , P. Carter et al., Proc. Natl. Acad. Sci.
  • the coding regions are separated by 83 base pairs and each is preceded by a ribosomal binding site (Picken et al., supra) to enable efficient initiation of translation.
  • the Fab′ expression unit was cloned into the Eco RI site of pBR322 (F. Bolivar et al., Gene 2: 95 (1977)) previously modified by removal of the Sal I and Sph I sites without changing the amino acid sequence of the tetracycline resistance gene product. Construction of different Fab′ variants was facilitated by installing unique Sal I and Sph I sites towards the end of the C H 1 gene and immediately preceding the bacteriophage ⁇ t 0 transcriptional terminator (S. Scholtissek, et al., Nucleic Acids Res. 15: 3185 (1987)).
  • Samples shown are protein molecular weight markers (lane 1), Fab (lane 2); Fab′-SH before (lane 3) and after (lane 4) a mock coupling reaction; Fab′-TNB before (lane 5) and after (lane 6) a mock coupling reaction; Fab′-SH coupled with Fab′-TNB (lane 7), F(ab′) 2 purified by gel filtration (lane 8) and F(ab′) 2 derived from limited pepsin digestion (E. Lamoyi, et al., Methods Enzymol. 121: 652 (1986)) of full length huMAb4D5-8 expressed in mammalian cells (P. Carter et al., Proc. Natl. Acad. Sci.
  • HuMAb4D5-8 Fab′-SH was purified by thawing 15 g cell paste in the presence of 21 ml of 100 mM sodium acetate (pH 3.5), 10 mM EDTA, 0.2 mM PMSF, 5 ⁇ M pepstatin, 5 ⁇ M leupeptin, 2.4 mM benzamidine. Cell debris was removed by centrifugation (40,000 g, 10 min, 4° C.). The resultant supernatant (pH 5.0) was passed over DEAE sepharose and loaded on to a 2 ml protein G sepharose column.
  • Fab′-SH was eluted with 20 mM sodium acetate (pH 4.0), 0.8 M (NH 4 ) 2 SO 4 , 10 mM EDTA, reduced in volume by ultrafiltration (Centriprep-10, Amicon) and buffer exchanged into 10 mM sodium acetate (pH 5.0), 10 mM EDTA by G25 gel filtration.
  • the Fab thionitrobenzoate derivative was prepared in a similar manner except that the DEAE flow through was adjusted to 5 mM DTNB and pH 7.5.
  • the free thiol content of huMAb4D5-8 Fab′-SH was determined by analysis with DTNB as described (T. E. Creighton, Protein Structure, a Practical Approach (IRL Press, Oxford, UK, 1990), p.
  • huMAb4D5-8 Fab′-TNB was determined by the yield upon reduction with dithiothreitol.
  • Equimolar quantities of huMAb4D5-8 Fab′-TNB (by TNB content) and Fab′-SH (by -SH content) were coupled at a combined concentration of ⁇ 1.4 mg/ml in the presence of 100 mM tris-HCl (pH 7.5) and 10 mM EDTA for 1 hour at 37° C.
  • HuMAb4D5-8 F(ab′) 2 was isolated from the coupling reaction by S100-HR gel filtration (Pharmacia) in the presence of phosphate-buffered saline. The F(ab′) 2 samples were passed through a sterile 0.2 ⁇ m filter and stored either at 4° C. or flash frozen in liquid nitrogen and stored at ⁇ 70° C.
  • the Fab′ heavy chain may include a hinge region.
  • This may be any desired hinge amino acid sequence.
  • the hinge may be entirely omitted in favor of one or more cysteine residues or, preferably a short (about 1-10 residues) cysteine-containing polypeptide.
  • a common naturally occurring antibody hinge sequence cyste followed by two prolines and then another cysteine is used; this sequence is found in the hinge of human IgG 1 molecules (E. A. Kabat, et al., Sequences of Proteins of Immunological Interest 3rd edition (National Institutes of Health, Bethesda, Md., 1987)).
  • the hinge region is selected from another desired antibody class or isotype.
  • the C-terminus of the C H 1 of Fab′ is fused to the sequence Cys X X.
  • X preferably is Ala, although it may be any other residue such as Arg, Asp, or Pro.
  • One or both X amino acid residues may be deleted.
  • Fv-SH or Fab′-SH is defined herein as a Fv or Fab′ polypeptide having at least one cysteinyl free thiol.
  • the free thiol is in the hinge region, with the light and heavy chain cysteine residues that ordinarily participate in inter-chain bonding being present in their native form.
  • the Fab′-SH polypeptide composition is free of heterogenous proteolytic degradation fragments.
  • the Fab′-SH polypeptide is also substantially (greater than about 90 mole percent) free of Fab′ fragments wherein heavy and light chains have been reduced or otherwise derivatized so as not to be present in their native state, e.g. by the formation of aberrant disulfides or sulfhydryl addition products.
  • the Fab′-SH has heavy and light chains which are not covalently coupled.
  • a humanized antibody for the purposes herein is an immunoglobulin amino acid sequence variant or fragment thereof which is capable of binding to a predetermined antigen and which comprises a FR region having substantially the amino acid sequence of a human immunoglobulin and a CDR having substantially the amino acid sequence of a non-human immunoglobulin or a sequence engineered to bind to a preselected antigen.
  • control sequences refers to DNA sequences necessary for the expression of an operably linked coding sequence in a particular host organism.
  • the control sequences that are suitable for prokaryotes include a promoter, optionally an operator sequence, a ribosome binding site, and transcriptional terminators.
  • Particularly preferred are highly regulated inducible promoters that suppress Fab′ polypeptide synthesis at levels below growth-inhibitory amounts while the cell culture is growing and maturing, for example, during the log phase.
  • Nucleic acid is “operably linked” when it is placed into a functional relationship with another nucleic acid sequence.
  • DNA for a presequence or secretory leader is operably linked to DNA for a polypeptide if it is expressed as a preprotein that participates in the secretion of the polypeptide;
  • a promoter or enhancer is operably linked to a coding sequence if it affects the transcription of the sequence; or
  • a ribosome binding site is operably linked to a coding sequence if it is positioned so as to facilitate translation.
  • “operably linked” means that the DNA sequences being linked are contiguous and, in the case of a secretory leader, contiguous and in same reading frame. However enhancers do not have to be contiguous. Linking is accomplished by ligation at convenient restriction sites. If such sites do not exist, then synthetic oligonucleotide adaptors or linkers are used in accord with conventional practice.
  • the expressions “cell” and “cell culture” are used interchangeably and all such designations include progeny.
  • the words “transformants” and “transformed cells” include the primary subject cell and cultures derived therefrom without regard for the number of transfers. It is also understood that all progeny may not be precisely identical in DNA content, due to deliberate or inadvertent mutations. Mutant progeny that have the same function or biological activity as screened for in the originally transformed cell are included. Different designations are will be clear from the contextually clear.
  • Plasmids are designated by a lower case p preceded and/or followed by capital letters and/or numbers.
  • the starting plasmids herein are commercially available, are publicly available on an unrestricted basis, or can be constructed from such available plasmids in accord with published procedures.
  • other equivalent plasmids are known in the art and will be apparent to the ordinary artisan.
  • “Recovery” or “isolation” of a given fragment of DNA from a restriction digest means separation of the digest on polyacrylamide or agarose gel by electrophoresis, identification of the fragment of interest by comparison of its mobility versus that of marker DNA fragments of known molecular weight, removal of the gel section containing the desired fragment, and separation of the gel from DNA. This procedure is known generally. For example, see Lawn et al., Nucleic Acids Res., 9: 6103-6114 (1981), and Goeddel et al., Nucleic Acids Res. 8:4057 (1980).
  • Preparation of DNA from cells means isolating the plasmid DNA from a culture of the host cells. Commonly used methods for DNA preparation are the large and small scale plasmid preparations described in sections 1.25-1.33 of Sambrook et al., ( Molecular Cloning: A Laboratory Manual New York: Cold Spring Harbor Laboratory Press, 1989). DNA preparations are purified by methods well known in the art (see section 1.40 of Sambrook et al., supra).
  • a cultured microbial host cell is transformed with a vector comprising Fab′-encoding nucleic acid (i.e., nucleic acid encoding heavy chain Fd fragment and light chain) operably linked to control sequences recognized by the host cell transformed with the vector (hereafter, “Fab” will be referred to as a specific embodiment, but it will be understood that any Fv-containing antibody fragments or fusion/sequence derivative thereof can be used provided that a cysteine residue capable of forming a periplasmic free thiol is present in the Fv region or sequence fused thereto).
  • the cells are cultured under conditions suitable for the secretion of Fab′ into the periplasmic space of the host cell and formation of the free thiol.
  • a dicistronic operon is used to direct the co-expression of corresponding light and heavy chain fragments.
  • separate chains are expressed from separate promoters on the same or different plasmids.
  • the Fab chains are preceded by signal sequences to direct secretion into the periplasmic space, where it is believed that the redox environment favors disulfide bond formation for assembly of the light and heavy chain fragments but not disulfide bond formation between hinge cysteine residues.
  • the expression control sequence is the E. coli phoA promoter (C. N.
  • the antibody fragments be expressed in bacterial cells grown at high cell density in a fermentor. Suitable fermentation conditions are described in the Example below.
  • the polypeptides containing free thiol are recovered from the fermentation media and/or recovered from freeze-thawed cells (typically by osmotic shock) and subsequently purified. Recovery (including purification) is most successful if the Fab′-SH is maintained in the protonated form.
  • Other conditions for maintaining the protonated form include the use of organic solvents or other agents for shifting the pKa of dissociation of -SH. This is conveniently accomplished at acid pH, i.e., preferably 2 or more pH units below the pKa of the hinge or unpaired cysteinyl thiol.
  • the Fab′-SH is reacted with a protective group such as TNB or p-methoxybenzyl in order to maintain the Fab′ in a homogenous state suitable for further reaction.
  • a protective group such as TNB or p-methoxybenzyl
  • pyridine disulfide is added to the Fab′-SH to form a mixed disulfide; this stabilizes the free sulfhydryl until it is deprotected for coupling or other processing.
  • the free sulfhydryl is not protected but is reduced prior to coupling or further processing.
  • Suitable protecting groups known in the art, are described in E. Gross & J. Meiemhofer, The Peptides: Analysis, Structure, Biology Vol 3: Protection of Functional Groups in Peptide Synthesis (Academic Press, New York, 1981).
  • Affinity purification such as on streptococcal protein G sepharose or staphylococcal protein A at acidic pH (typically, about pH 4 to pH 6, preferably about pH 5.0) is preferred.
  • acidic pH typically, about pH 4 to pH 6, preferably about pH 5.0
  • two-phase liquid extraction may be used.
  • Small amounts of contaminating proteolytic fragments are readily removed by hydrophobic interaction chromatography, using, for example, silica gel and/or alkyl or aryl-substituted chromatography resins such as phenyl Toyopearl.
  • a cocktail of protease inhibitors be used (such as phenylmethylsulfonyl fluoride (PMSF), leupeptin, pepstatin and/or benzamidine) to inactivate or inhibit host proteases, and to include a metal ion chelating agent such as EDTA in the culture and recovery procedures.
  • the chelating agent is selected and included in an amount to prevent metal ion catalysis of disulfide bond formation.
  • Fab′-(SH) n (where n is equal to or greater than one) form F(ab′) 2 in vivo during recombinant production.
  • the Fab′-(SH) amino acid sequence has been modified to contain preferably more than one cysteinyl residue.
  • F(ab′) 2 having three disulfide bonds between heavy chains are recovered directly from an E. coli cell paste, following the culture in E. coli of Fab′-SH 3 .
  • F(ab′) 2 is prepared from purified Fab′-(SH) n (where n is equal to or greater than one) by in vitro chemical coupling using cross-linking agents or adventitious oxidants such as dissolved oxygen. In the latter instance, purified Fab′ will form F(ab′) 2 due simply to air oxidation.
  • bispecific F(ab′) 2 is produced by the use of Fab′-SH derivatives which direct the coupling of discrete Fab′ and prevent the formation of bivalent monospecific F(ab′) 2 .
  • One suitable chemistry for mono- or bi-specific F(ab′) 2 is that of Brennan et al., supra.
  • a Fab′-TNB derivative is prepared in a similar manner to Fab′-SH, except that Fab′-SH released from freeze-thawed cells by osmotic shock is adjusted to about pH 7.5 in the presence of excess DTNB. Equimolar quantities of Fab′-SH and Fab′-TNB are coupled together efficiently to form the F(ab′) 2 fragment by a disulfide exchange reaction in the presence of EDTA.
  • the linkless Fv, Fab′, Fab′-SH and F(ab′) 2 polypeptides of this invention do not have a disulfide bond between the light and heavy chains.
  • the polypeptide is modified as the result of direct expression of a modified polypeptide, or by chemical or enzymatic means.
  • Typical amino acid sequence modifications of the polypeptide involve substituting or deleting one or, preferably, both of the two cysteines which form the inter-chain (heavy-light) disulfide bond.
  • cysteines are replaced with serines, although it is within the scope hereof to covalently modify one or both of the cysteine side chain so as to be incapable of forming a disulfide bond.
  • cysteines may be modified with fatty acids or other chemical groups and rendered incapable of forming a disulfide bond by a variety of known methods, including but not limited to the following methods: (1) covalent modification using dehydrating or activating agents such as N,N′-dicyclohexylcarbodiimide (DCC) or ethyoxy-ethoxycarbonyl-dihydroquinoline (EEDQ); (2) acylation, using ketenes, anhydrides, isothiocyanates, or beta-lactones; (3) carbamoylation using cyanates; (4) hemimercaptal or hemimercaptol formation using aldehydes and some keto acids; (5) alkylation and arylation, by addition to activated double bonds (using N-ethylmaleimide), by reactions with quinones, by reaction with haloacids and their amides (using iodoacetic acid, or alpha-bromo-hexadecanoic acid
  • the polypeptide may be modified within a host cell, or as a post-translational modification to the recombinantly produced polypeptide. It is currently preferred that any post-translational modifications take place within 24, and preferably within a few hours of recovery from a host cell or microorganism.
  • Methods for detecting the presence of modifications to the cysteines of the polypeptides of this invention lung surfactant protein are commonly known, such as through the analysis of the mass spectra of a sample of the polypeptide. Alternatively, thin layer chromatography (TLC) is performed on a sample. While this approach to peptide analysis is common in the field, see e.g. Stuart and Young, Solid Phase Peptide Synthesis , pp 103-107, and 118-122, (Pierce Chem. Co., 2d. ed., 1984).
  • linkless Fab′-SH polypeptides advantageously allow homogeneous F(ab′) 2 to be prepared by chemical coupling.
  • the Fab sequences of this invention are obtained from conventional sources of antibodies.
  • Polyclonal antibodies to an antigen generally are raised in animals by multiple subcutaneous (sc) or intraperitoneal (ip) injections of the antigen and an adjuvant. It may be useful to conjugate the antigen or a fragment containing the target antigen amino acid sequence to a protein that is immunogenic in the species to be immunized, e.g., keyhole limpet hemocyanin, serum albumin, bovine thyroglobulin, or soybean trypsin inhibitor using a bifunctional or derivatizing agent, for example, maleimidobenzoyl sulfosuccinimide ester (conjugation through cysteine residues), N-hydroxysuccinimide (through lysine residues), glutaraldehyde, succinic anhydride, SOCl 2 , or R 1 N ⁇ C ⁇ NR, where R and R 1 are different alkyl groups.
  • the route and schedule of immunization of the animal or cultured antibody-producing cells therefrom are generally in keeping with established and conventional techniques for antibody stimulation and production. While mice are frequently employed as the test model, it is contemplated that any mammalian subject or antibody-producing cells obtained therefrom can be employed.
  • monoclonal antibodies are prepared by recovering immune lymphoid cells—typically spleen cells or lymphocytes from lymph node tissue—from immunized animals and immortalizing the cells in conventional fashion, e.g. by fusion with myeloma cells or by Epstein-Barr (EB)-virus transformation and screening for clones expressing the desired antibody.
  • immune lymphoid cells typically spleen cells or lymphocytes from lymph node tissue
  • EB Epstein-Barr
  • Routine methods are then employed to obtain DNA from hybridomas that encode the heavy and light chains of the selected antibody.
  • one extracts antibody-specific messenger RNAs from B-cells of an immunized animal, reverse transcribes these into complementary DNA (cDNA), and amplifies the cDNA by PCR or by cloning it in a bacterial expression system.
  • Another technique suitable for obtaining source heavy and light chain sequences uses a bacteriophage lambda vector system (which contains a leader sequence that secretes the expressed Fab protein into the periplasmic space) together with the generation and screening of great numbers of functional antibody fragments for those which demonstrate the desired activity. This system is commercially available.
  • This invention also encompasses amino acid sequence variants of the native Fab polypeptide sequences. These variants are prepared by introducing appropriate nucleotide changes into the DNA encoding the Fab or by in vitro synthesis of the desired Fab. Such variants include, for example, humanized variants of non-human antibodies, as well as deletions from, or insertions or substitutions of, residues within particular amino acid sequences. Any combination of deletion, insertion, and substitution can be made to arrive at the final construct, provided that the final construct possesses the desired characteristics.
  • the amino acid changes also may alter post-translational processing of the target polypeptide, such as changing the number or position of glycosylation sites, introducing a membrane anchoring sequence into the constant domain or modifying the leader sequence of the native Fab.
  • the location of the mutation site and the nature of the mutation will depend on the target polypeptide characteristic(s) to be modified.
  • the sites for mutation can be modified individually or in series, e.g., by (1) substituting first with conservative amino acid choices and then with more radical selections depending upon the results achieved, (2) deleting the target residue, or (3) inserting residues of the same or a different class adjacent to the located site, or combinations of options 1-3.
  • a useful method for identification of certain residues or regions of the target polypeptide that are preferred locations for mutagenesis is called “alanine scanning mutagenesis” as described by Cunningham and Wells ( Science, 244: 1081-1085 [1989]), and Duncan, A. R. and Winter, G. ( Nature, 322: 738-740 [1988]).
  • a residue or group of target residues are identified (e.g., charged residues such as arg, asp, his, lys, and glu) and replaced by a neutral or negatively charged amino acid (most preferably alanine or polyalanine) to affect the interaction of the amino acids with the surrounding aqueous environment in or outside the cell.
  • the site for introducing an amino acid sequence variation is predetermined, the nature of the mutation per se need not be predetermined.
  • Ala scanning or random mutagenesis may be conducted at the target codon or region and the expressed target polypeptide variants are screened for the optimal combination of desired activity.
  • amino acid sequence variants There are two principal variables in the construction of amino acid sequence variants: the location of the mutation site and the nature of the mutation. In general, the location and nature of the mutation chosen will depend upon the target polypeptide characteristic to be modified.
  • Amino acid sequence insertions include amino- and/or carboxyl-terminal fusions ranging in length from one residue to polypeptides containing a hundred or more residues, as well as intrasequence insertions of single or multiple amino acid residues.
  • Intrasequence insertions i.e., insertions within the target polypeptide sequence
  • terminal insertions include fusion of a heterologous N-terminal signal sequence to the N-terminus of the Fv polypeptide to facilitate the secretion of the mature Fv polypeptide from recombinant host cells. Such signal sequences generally will be obtained from, and thus homologous to, the intended host cell species.
  • Suitable sequences for E. coli include STII or Ipp.
  • insertional variants of the target polypeptide include the fusion to the N- or C-terminus of the target polypeptide of immunogenic polypeptides, e.g., bacterial polypeptides such as beta-lactamase or an enzyme encoded by the E. coli trp locus, or yeast protein, and C-terminal fusions with proteins having a long half-life such as immunoglobulin constant regions (or other immunoglobulin regions), albumin, or ferritin, as described in WO 89/02922 published 6 Apr. 1989.
  • immunogenic polypeptides e.g., bacterial polypeptides such as beta-lactamase or an enzyme encoded by the E. coli trp locus, or yeast protein
  • C-terminal fusions with proteins having a long half-life such as immunoglobulin constant regions (or other immunoglobulin regions), albumin, or ferritin, as described in WO 89/02922 published 6 Apr. 1989.
  • polypeptide sequences include but are not limited to sequences derived from immunoglobulins, carrier proteins, receptors, growth factors, nutrient substances, cellular adhesive molecules, tissue-specific adhesion factors, enzymes, toxins and the like. These examples will be in addition to insertions of cysteine or cysteine-containing polypeptides such as hinge regions which provide free thiol cysteinyl.
  • variants are amino acid substitution variants. These variants have at least one amino acid residue in the immunoglobulin polypeptide removed and a different residue inserted in its place.
  • the sites of greatest interest for substitutional mutagenesis include the CDRs, FR and hinge regions. They include substitutions of cysteine for other residue and insertions which are substantially different in terms of side-chain bulk, charge, and/or hydrophobicity. Other sites for substitution are described infra, considering the effect of the substitution of the antigen binding, affinity and other characteristics of a particular target antibody.
  • DNA encoding Fab amino acid sequence variants is prepared by a variety of methods known in the art. These methods include, but are not limited to, isolation from a natural source (in the case of naturally occurring amino acid sequence variants) or preparation by oligonucleotide-mediated (or site-directed) mutagenesis, PCR mutagenesis, and cassette mutagenesis of an earlier prepared variant or a non-variant version of the target polypeptide or by total gene synthesis. These techniques may utilize target polypeptide nucleic acid (DNA or RNA), or nucleic acid complementary to the target polypeptide nucleic acid. Oligonucleotide-mediated mutagenesis is a preferred method for preparing substitution, deletion, and insertion variants of target polypeptide DNA.
  • PCR mutagenesis is also suitable for making amino acid variants of the Fab polypeptide. While the following discussion refers to DNA, it is understood that the technique also finds application with RNA.
  • the PCR technique generally refers to the following procedure (see Erlich, supra, the chapter by R. Higuchi, p. 61-70): When small amounts of template DNA are used as starting material in PCR, primers that differ slightly in sequence from the corresponding region in a template DNA can be used to generate relatively large quantities of a specific DNA fragment that differs from the template sequence only at the positions where the primers differ from the template.
  • one of the primers is designed to overlap the position of the mutation and to contain the mutation; the sequence of the other primer must be identical to a stretch of sequence of the opposite strand of the plasmid, but this sequence can be located anywhere along the plasmid DNA. It is preferred, however, that the sequence of the second primer is located within 200 nucleotides from that of the first, such that in the end the entire amplified region of DNA bounded by the primers can be easily sequenced.
  • PCR amplification using a primer pair like the one just described results in a population of DNA fragments that differ at the position of the mutation specified by the primer, and possibly at other positions, as template copying is somewhat error-prone.
  • the starting material is the plasmid (or other vector) comprising the Fab DNA to be mutated.
  • the codon(s) in the Fab polypeptide DNA to be mutated are identified.
  • a double-stranded oligonucleotide encoding the sequence of the DNA between the restriction sites but containing the desired mutation(s) is synthesized using standard procedures. The two strands are synthesized separately and then hybridized together using standard techniques.
  • This double-stranded oligonucleotide is referred to as the cassette.
  • This cassette is designed to have 3′ and 5′ ends that are compatible with the ends of the linearized plasmid, such that it can be directly ligated to the plasmid.
  • This plasmid now contains the mutated Fab polypeptide DNA sequence.
  • the cDNA or genomic DNA encoding the Fab polypeptide is inserted into a replicable vector for further cloning (amplification of the DNA) or for expression.
  • Many vectors are available, and selection of the appropriate vector will depend on 1) whether it is to be used for DNA amplification or for expression of the encoded protein, 2) the size of the DNA to be inserted into the vector, and 3) the host cell to be transformed with the vector.
  • Each vector contains various components depending on its function (amplification of DNA or expression of DNA) and the host cell for which it is compatible.
  • the vector components generally include, but are not limited to, one or more of the following: a signal sequence, an origin of replication, one or more marker genes, a promoter, and a transcription termination sequence.
  • Expression and cloning vectors may, but need not, contain a nucleic acid sequence that enables the Fab nucleic acid to replicate in one or more selected host cells.
  • this sequence is one that enables the vector to replicate independently of the host chromosomal DNA, and includes origins of replication or autonomously replicating sequences. Such sequences are well known for a variety of microbes.
  • the origin of replication from the plasmid pBR322 is suitable for most Gram-negative bacteria.
  • Selection genes should contain a selection gene, also termed a selectable marker. This gene encodes a protein necessary for the survival or growth of transformed host cells grown in a selective culture medium. Host cells not transformed with the vector containing the selection gene will not survive in the culture medium.
  • Typical selection genes encode proteins that (a) confer resistance to antibiotics or other toxins, e.g. ampicillin, neomycin, methotrexate, or tetracycline, (b) complement auxotrophic deficiencies, or (c) supply critical nutrients not available from complex media, e.g. the gene encoding D-alanine racemase for Bacilli.
  • a selection scheme utilizes a drug to arrest growth of a host cell. Those cells that are successfully transformed with a heterologous gene express a protein conferring drug resistance and thus survive the selection regimen. Examples of such dominant selection use the drugs neomycin (Southern et al., J. Molec. Appl. Genet., 1: 327 [1982]), mycophenolic acid (Mulligan et al., Science, 209: 1422 [1980]) or hygromycin (Sugden et al., Mol. Cell. Biol., 5: 410-413 [1985]).
  • the three examples given above employ bacterial genes under eukaryotic control to convey resistance to the appropriate drug G418 or neomycin (geneticin), xgpt (mycophenolic acid), or hygromycin, respectively.
  • Expression and cloning vectors will usually contain a promoter that is recognized by the host organism and is operably linked to the Fab polypeptide nucleic acid. Promoters are untranslated sequences located upstream (5′) to the start codon of a the Fab structural gene (generally within about 100 to 1000 bp) that control its transcription and translation. Such promoters typically fall into two classes, inducible and constitutive. Inducible promoters are promoters that initiate increased levels of transcription from DNA under their control in response to some change in culture conditions, e.g. the presence or absence of a nutrient or a change in temperature.
  • Inducible promoters under high regulation are preferred for the microbial expression of Fv-containing polypeptides.
  • a large number of promoters recognized by a variety of potential host cells are well known. These promoters are operably linked to DNA encoding the Fab polypeptide by removing the promoter from the source DNA by restriction enzyme digestion and inserting the isolated promoter sequence into the vector.
  • Both the native Fab polypeptide promoter sequence and many heterologous promoters may be used to direct amplification and/or expression of the Fab polypeptide DNA.
  • heterologous promoters are preferred, as they generally permit greater transcription and higher yields of expressed target polypeptide as compared to the native target polypeptide promoter.
  • Promoters suitable for use with prokaryotic hosts include the ⁇ -lactamase and lactose promoter systems (Chang et al., Nature, 275: 615 [1978]; and Goeddel et al., Nature, 281: 544 [1979]), alkaline phosphatase, a tryptophan (trp) promoter system (Goeddel, Nucleic Acids Res., 8: 4057 [1980] and EP 36,776) and hybrid promoters such as the tac promoter (deBoer et al., Proc. Natl. Acad. Sci. USA, 80: 21-25 [1983]).
  • trp tryptophan
  • hybrid promoters such as the tac promoter (deBoer et al., Proc. Natl. Acad. Sci. USA, 80: 21-25 [1983]).
  • other known bacterial promoters are suitable.
  • Plasmids containing one or more of the above listed components employs standard ligation techniques. Isolated plasmids or DNA fragments are cleaved, tailored, and religated in the form desired to generate the plasmids required.
  • Suitable host cells for expressing Fab are microbial cells such as yeast, fungi, and prokaryotes.
  • Suitable prokaryotes include eubacteria, such as Gram-negative or Gram-positive organisms, for example, E. coli , Bacilli such as B. subtilis, Pseudomonas species such as P. aeruginosa, Salmonella typhimurium , or Serratia marcescans .
  • E. coli cloning host is E. coli 294 (ATCC 31,446), although other strains such as E. coli B, E. coli X 1776 (ATCC 31,537), E. coli RV308 (ATCC 31,608) and E.
  • coli W3110 (ATCC 27,325) are suitable. These examples are illustrative rather than limiting.
  • the host cell should secrete minimal amounts of proteolytic enzymes, and additional protease inhibitors may desirably be incorporated in the cell culture.
  • Host cells are transfected and preferably transformed with the above-described expression or cloning vectors of this invention and cultured in conventional nutrient media modified as appropriate for inducing promoters, selecting transformants, or amplifying the genes encoding the desired sequences.
  • Cells used to produce the Fab polypeptide of this invention are cultured in suitable media as described generally in Sambrook et al., ( Molecular Cloning: A Laboratory Manual New York: Cold Spring Harbor Laboratory Press, 1989). Any other necessary supplements may also be included at appropriate concentrations that would be known to those skilled in the art.
  • the culture conditions, such as temperature, pH, and the like, are those previously used with the host cell selected for expression, and will be apparent to the ordinarily skilled artisan.
  • the bacterial host cells be cultured at temperatures from 37° C. to 29° C., although temperatures as low as 20° C. may be suitable. Optimal temperatures will depend on the host cells, the Fab sequence and other parameters. 37° C. is generally preferred.
  • Soluble polypeptides are recovered from recombinant cell culture to obtain preparations that are substantially homogeneous as to Fab.
  • the culture medium or periplasmic preparation is centrifuged to remove particulate cell debris.
  • Periplasmic preparations are obtained in conventional fashion, e.g. by freeze-thaw or osmotic shock methods.
  • the membrane and soluble protein fractions are then separated.
  • the Fab polypeptide is then purified from the soluble protein fraction.
  • the following procedures are exemplary of suitable purification procedures: fractionation on immunoaffinity or ion-exchange columns; ethanol precipitation; reverse phase HPLC; chromatography on silica or on a cation exchange resin such as DEAE; chromatofocusing; SDS-PAGE; ammonium sulfate precipitation; gel filtration using, for example, Sephadex G-75; protein A or protein G affinity matrix (e.g. Sepharose) columns; and hydrophobic interaction chromatography.
  • suitable purification procedures fractionation on immunoaffinity or ion-exchange columns; ethanol precipitation; reverse phase HPLC; chromatography on silica or on a cation exchange resin such as DEAE; chromatofocusing; SDS-PAGE; ammonium sulfate precipitation; gel filtration using, for example, Sephadex G-75; protein A or protein G affinity matrix (e.g. Sepharose) columns; and hydrophobic interaction chromatography.
  • Fab polypeptide variants in which residues have been deleted, inserted or substituted are recovered in the same fashion, taking account of any substantial changes in properties occasioned by the variation.
  • preparation of a Fab polypeptide fusion with another protein or polypeptide e.g. a bacterial or viral antigen
  • an immunoaffinity column containing antibody to the antigen is used to adsorb the fusion.
  • Immunoaffinity columns such as a rabbit polyclonal anti-target polypeptide column can be employed to absorb the target polypeptide variant by binding it to at least one remaining immune epitope.
  • a protease inhibitor also is useful to inhibit proteolytic degradation during purification, and antibiotics may be included to prevent the growth of adventitious contaminants.
  • the antibody fragments of this invention are useful in diagnostic assays for antigen in specific cells, fluids or tissues, for immunoaffinity purification of the antigens and for therapies which are based on antigen antagonism.
  • Analytical methods for the antigen bound by the Fab polypeptide are conventional and may use a label bound to the Fab.
  • the label used with the Fab polypeptide is any detectable functionality that does not interfere with its binding to Fab.
  • Numerous labels are known, including the radioisotopes 32 P, 32S , 14 C, 125 I, 3 H, and 131 I, fluorophores such as rare earth chelates or fluorescein and its derivatives, rhodamine and its derivatives, dansyl, umbelliferone, luceriferases, e.g., firefly luciferase and bacterial luciferase (U.S. Pat. No.
  • luciferin 2,3-dihydrophthalazinediones
  • horseradish peroxidase HRP
  • alkaline phosphatase ⁇ -galactosidase
  • glucoamylase lysozyme
  • saccharide oxidases e.g., glucose oxidase, galactose oxidase, and glucose-6-phosphate dehydrogenase
  • heterocyclic oxidases such as uricase and xanthine oxidase, lactoperoxidase, biotin/avidin, spin labels, bacteriophage labels, stable free radicals, imaging radionuclides (such as Technetium) and the like.
  • coupling agents such as dialdehydes, carbodiimides, dimaleimides, bis-imidates, bis-diazotized benzidine, and the like may be used to tag the antibodies with the above-described fluorescent, chemiluminescent, and enzyme labels. See, for example, U.S. Pat. No. 3,940,475 (fluorimetry) and U.S. Pat. No. 3,645,090 (enzymes); Hunter et al., Nature, 144: 945 (1962); David et al., Biochemistry, 13: 1014-1021 (1974); Pain et al., J. Immunol.
  • the Fab-containing polypeptides also may comprise an immunotoxin.
  • the Fab heavy chain is optionally conjugated to a cytotoxin such as ricin for use in AIDS therapy.
  • the toxin may be a cytotoxic drug or an enzymatically active toxin of bacterial, fungal, plant or animal origin, or an enzymatically active fragment of such a toxin.
  • Enzymatically active toxins and fragments thereof include diphtheria A chain, nonbinding active fragments of diphtheria toxin, exotoxin A chain (from Pseudomonas aeruginosa ), ricin A chain, abrin A chain, modeccin A chain, alpha-sarcin, Aleurites fordii proteins, dianthin proteins, Phytolaca americana proteins (PAPI, PAPII, and PAP-S), momordica charantia inhibitor, curcin, crotin, sapaonaria officinalis inhibitor, gelonin, mitogellin, restrictocin, phenomycin, enomycin and the tricothecenes.
  • the antibodies are conjugated to nonpeptidyl drugs such as cis-platin or 5FU.
  • Conjugates of the monoclonal antibody and such cytotoxic moieties are made using a variety of bifunctional protein coupling agents.
  • bifunctional protein coupling agents include SPDP, IT, bifunctional derivatives of imidoesters such as dimethyl adipimidate HCl, active esters such as disuccinimidyl suberate, aldehydes such as glutaraldehyde, bis-azido compounds such as bis (p-azidobenzoyl) hexanediamine, bis-diazonium derivatives such as bis-(p-diazoniumbenzoyl)- -ethylenediamine, diisocyanates such as tolylene 2,6-diisocyanate and bis-active fluorine compounds such as 1,5-difluoro-2,4-dinitrobenzene.
  • the lysing portion of a toxin may be joined to
  • Immunotoxins can be made in a variety of ways, as discussed herein. Commonly known crosslinking reagents can be used to yield stable conjugates.
  • the Fab-containing fragments of the subject invention are administered to the patient in therapeutically effective amounts (i.e. amounts that have desired therapeutic effect) in the same fashion as intact immunoglobulins.
  • therapeutically effective amounts i.e. amounts that have desired therapeutic effect
  • the products prepared in accord with the methods of this invention offer the advantage of substantial molecular homogeneity and are devoid of toxic contaminants heretofore used in preparing F(ab′) 2 .
  • the antibody compositions used in therapy are formulated and dosages established in a fashion consistent with good medical practice taking into account the disorder to be treated, the condition of the individual patient, the site of delivery of the composition, the method of administration and other factors known to practitioners.
  • the antibody compositions are prepared for administration according to the description of preparation of polypeptides for administration, infra.
  • HER2 proto-oncogene product (p185 HER2 ) has been associated with a variety of aggressive human malignancies.
  • An Escherichia coli expression system has been developed that secretes functional Fab and Fab′ fragments of a humanized antibody, huMAb4D5-8, at titers of about 1 to in excess of about 2 grams per liter as judged by binding to antigen, p185 HER2 .
  • the Fab′ fragment was recovered with the single hinge region cysteine present mainly as the free thiol (up to about 90 mole %) permitting efficient directed disulfide bond formation in vitro to form the bivalent F(ab′) 2 antibody fragment.
  • This molecule is indistinguishable from F(ab′) 2 derived from proteolysis of intact antibody in antigen binding affinity and in anti-proliferative activity against the human breast tumor cell line, SK-BR-3, which over-expresses p185 HER2 , but unlike the proteolytic product, the F(ab′) 2 here is C-terminally homogenous.
  • This invention facilitates the construction of monospecific and bispecific F(ab′) 2 antibody fragments, including naturally derived or humanized antibody fragments for research and therapeutic purposes. This invention is particularly applicable for developing antibody fragments capable of directing diagnostic or therapeutic moieties to target antigens such as tumor foci characterized by overexpression of the HER2 proto-oncogene.
  • the strategy here for the E. coli secretion of antibody fragments ( FIG. 1 ) shares two basic similarities with the work of others (10). Firstly a dicistronic operon is used to direct the co-expression of corresponding light and heavy chain fragments. Secondly the antibody chains are preceded by bacterial signal sequences to direct secretion into the periplasmic space of E. coli where the redox environment favors disulfide bond formation and the light and heavy chain fragments may assemble. The system here differs from earlier strategies in three basic ways. Firstly the transcription unit utilizes the a highly regulated promoter, the E. coli PhoA promoter (11) inducible by phosphate starvation, and heat-stable enterotoxin II signal sequence (12).
  • Fab′-TNB derivative was prepared in a similar manner except that Fab′-SH released from freeze-thawed cells by osmotic shock was adjusted to neutral pH in the presence of excess DTNB.
  • huMAb4D5-8 Fab and F(ab′) 2 antibody fragments were investigated by measuring the binding affinity for the p185 HER2 ECD and by investigating their effect upon the proliferation of the p185 HER2 overexpressing human breast carcinoma line, SK-BR-3 (Table 1). TABLE 1 Analysis of huMAb4D5-8 fragments by p185 HER2 ECD binding affinity and anti-proliferative activity with breast carcinoma, SK-BR-3 cells.
  • huMAb4D5-8 variant Source K d ⁇ pM Relative cell proliferation ⁇ Fab E. coli 570 91 F(ab′) 2 ⁇ E.
  • the binding affinity of huMAb4D5-8 F(ab′) 2 antibody fragment for p185 HER2 ECD is identical to that of the corresponding fragment derived from limited proteolysis of whole antibody expressed in mammalian cells.
  • the bivalent F(ab′) 2 antibody fragment derived from E. coli has identical anti-proliferative activity with SK-BR-3 cells to both the intact bivalent huMAb4D5-8 parent antibody derived from 293 cells (6) and the F(ab′) 2 antibody fragment derived from limited pepsin digestion of intact antibody.
  • the monovalent Fab molecule does not significantly affect the growth of SK-BR-3 cells. This suggests that the crosslinking of p185 HER2 on the surface of cells may be required for inhibiting their proliferation.
  • the huMAb4D5-8 Fab′ Cys Ala Ala shows very little tendency to form F(ab′) 2 in vivo despite the apparently quantitative formation of intra-domain disulfides in the variable regions.
  • F(ab′) 2 forms readily by air oxidation of Fab′-SH at pH 7.5 in the absence of EDTA at concentrations that are at least 10-fold lower than are found in vivo.
  • the free hinge thiol has also been used for attachment of fluorescent probes for fluorescence-activated cell sorting. It is also within the scope of this invention to use the free cysteinyl thiol for the site-directed attachment of radionuclides for imaging or therapy. This would offer the advantage over conventional labelling strategies of a defined stoichiometry and attachment site without the risk of compromising antigen binding affinity.

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Abstract

Methods for the high yield production of antibody Fv-containing polypeptides, especially Fab′ and F(ab′)2 antibody fragments are provided. Expression of heavy and light chain Fv in a microbial secretory system is followed by recovery of Fv from the periplasm under conditions that maintain a cysteine residue as a free thiol. The free thiol is reacted with free thiol of an antibody fragment of the same or differing specificity, or with agents such as diagnostic labels or therapeutic moieties. The products offer advantages of homogeneity and purity not available through the use of known methods for preparing such derivatives.

Description

    FIELD OF THE INVENTION
  • This invention relates to the production of functional antibody fragments in a microbial host.
  • BACKGROUND OF THE INVENTION
  • Naturally occurring antibodies (immunoglobulins) comprise two heavy chains linked together by disulfide bonds and two light chains, each light chain being linked to one of the heavy chains by disulfide bonds. Each chain has an N-terminal variable domain (VH or VL) and a constant domain at its C-terminus; the constant domain of the light chain is aligned with and disulfide bonded to the first constant domain of the heavy chain, and the light chain variable domain is aligned with the variable domain of the heavy chain. The heavy chain constant region includes (in the N- to C-terminal direction) the C H1 and hinge regions. The light chain also contains a hinge domain. Particular amino acid residues are believed to form an interface between and disulfide bond the light and heavy chain variable domains, see e.g. Chothia et al., J. Mol. Biol. 186:651-663 (1985); Novotny and Haber, Proc. Natl. Acad. Sci. USA 82:4592-4596 (1985); Padlan et al., Mol. Immunol., 23(9): 951-960 (1986); and S. Miller, J. Mol. Biol., 216: 965-973 (1990).
  • The constant domains are not involved directly in binding the antibody to an antigen, but are involved in various effector functions, such as participation of the antibody in antibody-dependent cellular cytotoxicity and complement dependent cytotoxicity. The variable domains of each pair of light and heavy chains are involved directly in binding the antibody to the antigen. The domains of natural light and heavy chains have the same general structure, the so-called immunoglobulin fold, and each domain comprises four framework (FR) regions, whose sequences are somewhat conserved, connected by three hyper-variable or complementarity determining regions (CDRs) (see Kabat, E. A. et al., Sequences of Proteins of Immunological Interest, National Institutes of Health, Bethesda, Md., (1987)). The four framework regions largely adopt a β-sheet conformation and the CDRs form loops connecting, and in some cases forming part of, the β-sheet structure. The CDRs in each chain are held in close proximity by the framework regions and, with the CDRs from the other chain, contribute to the formation of the antigen binding site.
  • Antibodies can be divided into a variety of antigen-binding fragments. The FV fragment is a heterodimer containing only the variable domains of the heavy chain and the light chain. The Fab fragment also contains the constant domain of the light chain and the first constant domain (CH1) of the heavy chain. Fab′ fragments differ from Fab fragments by the addition of a few residues at the carboxy terminus of the heavy chain C H1 domain including one or more cysteines from the antibody hinge region. Fab′-SH is the designation herein for Fab′ in which the cysteine residue(s) of the constant domains bear a free thiol group. F(ab′)2 antibody fragments originally were produced as pairs of Fab′ fragments which are between hinge cysteines.
  • Recombinant production of antibodies and antibody fragments facilitates the engineering of antibodies with enhanced antigen binding affinities, modified immunogenicity, and also of bifunctional antibodies. The first expression systems reported with which functional antibodies could obtained were for mammalian cells. The U.S. patent of Cabilly et al., U.S. Pat. No. 4,816,567, for example, teaches a method of co-expressing at least the variable region sequences of light and heavy chains in host cells. Other researchers in the field have reported baculovirus expression systems (Haseman et al, Proc. Natl. Acad. Sci. USA 87:3942-3946 (1990), yeast systems (Horwitz et al., Proc. Natl. Acad. Sci. USA, 85:8678-8682 (1988), combinatorial libraries in phage lambda (Huse et al., Science 246:1275-1281 (1989), and work with filamentous phage (McCafferty et al., Nature 348:552-554 (1990).
  • The production of antibodies and antibody fragments in bacterial systems have been pursued by workers in the field, particularly in E. coli expression systems. There are several advantages to E. coli expression systems, including a well-studied and convenient gene technology which permits constructs to be made easily and directly expressed, and the relatively convenient and economical large-scale production of product made possible by the fast growth of E. coli and its comparatively simple fermentation. The large-scale production of functional antibody fragments in E. coli would be valuable for research as well as commercial applications.
  • The expression of antibody genes in bacteria was reported by Cabilly et al., Proc. Natl. Acad. Sci. USA 81:3273-3277 (1984), Boss et al., Nucleic Acids Res. 12:3791-3806 (1984); these reports show cytoplasmic expression and rather variable yields were reported. Zemel-Dreasen et al., Gene 315-322 (1984) report the secretion and processing of an immunoglobulin light chain in E. coli. Plückthun et al., Cold Spring Harbor Symposia on Quantitative Biology, Volume LII, pages 105-112 (1987, Cold Spring Harbor Laboratory) disclose expression of a cytoplasmic hybrid protein, a potentially exportable hybrid protein, and expression and periplasmic transport of VL, VH, VLCL, and VHCH chains as fusions with an alkaline phosphatase or β-lactamase signal sequences. Skerra and Plückthun, Science 240:1038-1041 (1988) report the periplasmic secretion and correct folding in vivo of the variable domains of an antibody to the E. coli periplasm; a similar strategy and results were reported by Better et al., Science 240:1041-1043 (1988) for expression of a murine Fab fragment.
  • Bird et al., Nature 332:323-327 (1988) report the linkage of the light and heavy chain fragment of the Fv region via an amino acid sequence, and production of the complex as a single polypeptide in E. coli; see also Ladner et al., U.S. Pat. No. 4,946,778. Huston et al., Proc. Natl. Acad. Sci. USA 85:5879-5883 (1988) report similar work. Ward et al., Nature 341:544-546 (1989) report the production in and secretion of “single-domain” antibodies (isolated heavy chain variable domains) from E. coli. Condra et al., Journal of Biological Chemistry, 265(4):2292-2295 (1990) disclose the expression of cDNAs encoding antibody light and heavy chains in E. coli and their renaturation into Fab fragments. Better and Horwitz, Methods in Enzymology, 178:476-496 (1989), describe the expression, and secretion of functional Fab fragments from E. coli and Saccharomyces cerevisiae.
  • Plückthun and Skerra describe techniques for the expression of functional antibody Fv and Fab fragments in E. coli in Methods In Enzymology 178:497-515 (1989). According to their strategy, in the cytoplasm, the precursor proteins for VL and VH, each fused to a bacterial signal sequence, are synthesized in reduced form. After translocation through the inner membrane into the periplasm, the signal sequences are cleaved, the domains fold and assemble, and the disulfide bonds form. They teach that expression of the Fab fragment according to their strategy is analogous. Similar expression strategies are found elsewhere in the literature. See also Plückthun, Biotechnology, 9:545-551 (1991) for a review of E. coli expression of antibody fragments.
  • Cabilly (Gene, 85:553-557 [1989]) teaches that, in E. coli cells growing at reduced temperatures (21° C. or 30° C., rather than at 37° C.), a single expression plasmid coding for kappa-chains and truncated heavy chains (Fd fragments) gives rise to high yields of functional Fab fragments. Cabilly discusses that the Fab fragments seem to exist in the E. coli cytoplasm as non-covalently linked dimers, but that soluble Fab fragments isolated from E. coli appear as covalent dimers, formed by air oxidation following cell rupture.
  • It is known in the literature that in the presence of low concentrations of a mild reductant such as cysteamine the bivalent F(ab′)2 antibody fragment dissociates into two Fab′ fragments. This dissociation is reversible by mild oxidation. The production of Fab and F(ab′)2 antibody fragments has also been shown by partial reduction and limited proteolysis of intact antibodies, see e.g. Parham, in Cellular Immunology (E. M. Weir, Ed., Blackwell Scientific, CA) 4th edition, vol. 1 chapter 14 (1983), however with these methods it is difficult to control the precise nature and proportions of the antibody fragment recovered. Bivalent antibodies are those which contain at least two epitopic combining sites (which sites may be on the same or different antigens).
  • Bispecific antibodies are bivalent antibodies capable of binding two epitopes not shared by a single antigen. Bispecific monoclonal antibodies (BsMAbs) with dual specificities for tumor-associated antigens on tumor cells and for surface markers in immune effector cells have been described (see, e.g. Liu et al., Proc. Natl. Acad. Sci. USA 82:8648 (1985); Perez et al., Nature 316:354 (1985)). These BsMAbs have been shown to be effective in directing and triggering effector cells to kill tumor cell targets (Fanger et al., Immunol. Today 12:51 (1991)). One approach to the production of BsMabs involves the fusion of two monoclonal antibody-producing hybridomas to form quadromas (hybrid hybridomas) which secrete BsMab in addition to undesirable chain combinations including parental MAbs (Milstein, C. and Cuello, A. C., Nature, 305:537 [1983]) However, for production of bispecific humanized antibodies and antibody fragments, other techniques would be preferred.
  • Nisonoff and Mandy (Nature 4826:355-359 (1962)) describe the digestion of rabbit antibodies and subsequent recombination of the antibody fragments; they disclose that antibody molecules of dual specificity can be obtained by combining univalent fragments of pepsin-treated antibodies of different specificities. See also Hammerling et al., Journal of Experimental Medicine 128:1461-1469 (1968); Parham, Human Immunology 12:213-331 (1985); Raso and Griffin, Cancer Research 41:2073-2076 (1981); and Paulus (U.S. Pat. No. 4,444,878).
  • Another approach utilizes directed chemical coupling of bispecific Fab′ fragments from two different MAbs to assemble a BsMAb, in this case a F(ab′)2, with the desired specificities (See e.g., Nolan et al., Biochimica et Biophysica Acta 1040:1 (1990). See also R. A. Maurer's Ph.D. Thesis, Harvard University (1978), and Brennan et al., Science 229:81-83 (1985) for chemistries for the directed coupling of dithionitrobenzoate derivatives of Fab′ fragments. Brennan et al. also teach the use of use sodium arsenite to cross-link two proximate cysteines, however this reaction involves highly toxic compounds. (Glennie et al., J. Biol. Chem., 141(10): 3662-3670 [1985] and J. Immunol., 139:2367-2375 [1975]) teach the preparation of bispecific F(ab′)2 antibody fragments containing thioether linkages. These chemistries would also be applicable for the coupling of identical Fab′ fragments.
  • Lyons et al., Protein Engineering 3(8)703-708 (1990) teach the introduction of a cysteine into an antibody (there the C H1 domain of a heavy chain) and the site-specific attachment of effector or reporter molecules through the introduced cysteine.
  • Despite the advances in E. coli expression of functional antibody fragments shown in the literature, there remains a need for efficient and economical techniques for the production of bivalent antibodies, particularly F(ab′)2 molecules, and for methods which permit the tailoring of bivalent and bispecific F(ab′)2 molecules. It would be desirable to produce stable Fab′-SH polypeptides which may be conveniently coupled in vitro to form bivalent Fv or F(ab′)2 molecules.
  • It is therefore an object of this invention to provide methods for the preparation of polypeptides comprising Fv domains, particularly Fab′, Fab′-SH and F(ab′)2 antibody fragments, in or derived from bacterial cell culture in high yield.
  • It is a further object of this invention to provide methods for the efficient preparation of homogenous bivalent and bispecific F(ab′)2 antibody fragments.
  • It is another object of this invention to provide Fab′ antibody fragments having at least one hinge region cysteine present as a free thiol (Fab′-SH). It is a related object to obviate the inherent problems in generating Fab′-SH from intact antibodies: differences in susceptibility to proteolysis and non-specific cleavage, low yield, as well as partial reduction which is not completely selective for the hinge disulfide bond(s). It is another object of the present invention to prevent intra-hinge disulfide bond formation without resorting to the use of highly toxic arsenite to chelate vicinal thiols, or other inefficient and undesirable methods.
  • Other objects, features, and characteristics of the present invention will become apparent upon consideration of the following description and the appended claims.
  • SUMMARY OF THE INVENTION
  • The principal embodiments of this invention are based on the surprising identification of cysteinyl free thiol in cysteinyl residues located outside of the light-heavy chain interface of recombinant microbial periplasmic antibody fragments, and the surprising discovery that Fv variants can be produced which contain only a single cysteinyl residue in the free thiol form. This facilitates the preparation of homogeneous recombinant F(ab′)2 and other Fv-containing bivalent polypeptides. Accordingly, in one embodiment this invention comprises expressing and secreting into the periplasm of a recombinant microbial cell culture a Fv polypeptide containing an immunoglobulin heavy chain Fv region and an immunoglobulin light chain Fv region, said light or heavy chain also comprising an unpaired cysteinyl residue as a free thiol, and recovering said polypeptide under conditions that substantially maintain said cysteinyl residue as the free thiol.
  • It will be understood that either of the Fv light or heavy chains optionally is fused to a polypeptide sequence which contains one or more cysteinyl residues, provided that at least one of such cysteinyl residues located in the domain C-terminal to either of the light or heavy chain Fv is present as the free thiol in the periplasm. Suitable polypeptide sequences include but are not limited to sequences derived from immunoglobulins, carrier proteins, receptors, growth factors, nutrient substances, cellular adhesive molecules, tissue-specific adhesion factors, enzymes, toxins and the like. Typically, an unpaired cysteinyl residue is substituted at the C-terminus of either the light or the heavy chain Fv domain or at the C-terminus of the light chain or heavy chain CH1 domain. The fused polypeptide sequence may comprise only the cysteinyl residue, or the cysteinyl residue can be present in a polypeptide fused to the C-terminus of (1) one of the Fv domains, (2) the light chain constant region or (3) the CH1 domain of a heavy chain. In the latter instance, the Fv-CH1 domain is fused to a hinge region bearing a single free thiol cysteinyl residue, and preferably a hinge region amino acid sequence variant containing only a single cysteinyl residue. However, any other sequence containing a single free thiol cysteinyl residue is useful in place of the immunoglobulin hinge region.
  • In other embodiments, the Fv-CH1 domain is fused to a hinge region bearing more than one, typically two or three, free thiol residues, preferably a hinge region amino acid sequence variant containing two or more cysteinyl residues. For example, Fab′-SH amino acid sequence variants which have been modified to contain three cysteinyl residues may be produced recombinantly in a suitable host cell, for example CHO cells or E. coli, and are conveniently coupled in vivo by the host cell to form F(ab′)2 with three disulfide bonds connecting the heavy chains.
  • More particularly, the objects of this invention are accomplished by a method for the production of a Fab′ antibody polypeptide having at least one hinge region cysteine present as a free thiol (Fab′-SH), comprising the steps of:
      • a. expressing nucleic acid encoding an immunoglobulin presequence comprising Fab′ in a microbial host cell culture transformed with a vector comprising said nucleic acid operably linked to control sequences recognized by the host cell transformed with the vector, under conditions suitable for the secretion of Fab′ to the periplasmic space of the host cell and formation of Fab′-SH; and
      • b. recovering Fab′-(SH)n from said host cell, where n is greater than or equal to one.
  • Additional embodiments of the method of this invention comprise the subsequent recovery (including purification) of the Fab′-SH under conditions suitable for maintaining the hinge cysteinyl thiol(s) in protonated form. In certain embodiments, a metal ion chelating agent and/or a protease inhibitor is present during the culturing of the transformed cell or in the recovery of the Fab′-SH.
  • Optionally, the Fab′-SH is released from the host by freeze-thawing the host cell, subjecting it to osmotic shock, preparing a cell paste and purifying the Fab′-SH from the cell paste. Optionally, release of Fab′-SH from the host cell is facilitated by enzymatic digestion of the cell e.g., using lysozyme or physical disruption, e.g., by sonication or by use of a French press.
  • The Fv or polypeptide fused to the Fv (typically the hinge sequence) is modified in certain embodiments so that only one cysteinyl residue is present which, in the periplasm, exhibits free thiol. Thus, for example, the Fab amino acid sequence is modified by deleting or substituting all of the hinge sequence cysteinyl residues C-terminal to the first cysteine. Similarly, to obtain embodiments where, for example, three cysteinyl residues are to be present as the free thiol form, all of the hinge sequence cysteinyl residues C-terminal to the third cysteine are modified by deletion or substitution.
  • This invention also provides Fv, Fab′, Fab′-SH and F(ab′)2 polypeptides which do not have a disulfide bond between the light and heavy chains. These polypeptides are referred to herein as “linkless”. For example, the amino acid sequence of the polypeptide is modified by substituting or deleting one or, preferably, both of the two cysteines which form the inter-chain (heavy-light) disulfide bond. Typically, these cysteines are replaced with serines, although it is within the scope hereof to covalently modify one or both of the cysteine side chain so as to be incapable of forming a disulfide bond. In certain embodiments, there is a very strong interaction between the light and heavy chains such that eliminating the interchain disulfide does not result undesirable levels of dissociation between the light and heavy chains. The linkless Fab′-SH polypeptides advantageously allow homogeneous F(ab′)2 to be prepared by chemical coupling.
  • In another aspect, a method for the preparation of a polypeptide comprising F(ab′)2 comprises the steps of:
      • a. expressing nucleic acid encoding an immunoglobulin presequence comprising a first Fab′ in a microbial host cell culture transformed with a vector comprising the nucleic acid operably linked to control sequences recognized by the host cell transformed with the vector, under conditions suitable for the secretion of said first Fab′ to the periplasmic space of the host cell and formation of Fab′-SH, said first Fab′ being capable of binding a first epitope;
      • b. expressing nucleic acid encoding an immunoglobulin presequence comprising a second Fab′ in a microbial host cell culture transformed with a vector comprising the nucleic acid operably linked to control sequences recognized by the host cell transformed with the vector, under conditions suitable for the secretion of said second Fab′ to the periplasmic space of the host cell and formation of Fab′-SH, said second Fab′ being capable of binding a second epitope;
      • c. recovering said first and second Fab′-SH from said host cells; and
      • d. forming covalent bonds between the free thiol cysteinyl residues of said first and second Fab′-SH to form bivalent F(ab′)2.
  • In embodiments of the invention, efficient directed disulfide bond formation occurs in vitro, utilizing directed covalent coupling methods known in the art whereby bispecific bivalent antibodies are produced. In particularly preferred embodiments, the disulfide bond formation between the first and second Fab′-SH comprises the following steps:
      • a. reacting the first Fab′-SH with (i) 5,5′-dithiobis (2-nitrobenzoic acid) (DTNB) to form a thionitrobenzoate derivative Fab′-TNB or (ii) a bifunctional maleimide;
      • b. directly coupling said first Fab′-TNB or maleimidated Fab′ to the second Fab′-SH to form a F(ab′)2; and
      • c. recovering said F(ab′)2.
  • Novel F(ab′)2 compositions are provided by the methods of this invention. Such compositions are
      • a. essentially free of F(ab′)2 Fv regions containing cysteinyl residues with derivatized sulfhydryl groups, except for any native disulfide bond found in the native Fv regions,
      • b. entirely free of F(ab′)2 having hinge region intrachain disulfide bonds,
      • c. entirely free of contaminating arsenite, and
      • d. entirely homogenous as to the heavy chain C-terminal amino acid residue.
  • In another embodiment, high level expression of immunoglobulins or fragments thereof in recombinant microbes is achieved by a method comprising culturing a host cell transformed with nucleic acid encoding an immunoglobulin polypeptide under the transcriptional control of an inducible promoter/operator system whereby expression of the polypeptide is repressed prior to induction sufficient to permit post-induction polypeptide levels in the cell culture of greater than about 1 gram of polypeptide per liter of cell culture. Typically, this is accomplished by using a powerful promoter such as phoA in a low copy number vector or in a host engineered to express levels of repressor sufficient to fully occupy all phoA operator sites and fully repress the operon.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 shows the plasmid pA19 as used for the co-secretion of huMAb4D5-8 κ light chain and heavy chain Fd′ fragment from E. coli. The Fab′ expression unit is dicistronic with both chains under the transcriptional control of the PhoA promoter (C. N. Chang et al., Gene 44: 121 (1986)) which is inducible by phosphate starvation. The humanized variable domains (huVL and huvH, P. Carter et al., Proc. Natl. Acad. Sci. U.S.A., 89(10):4285-9 (1992)) are precisely fused on their 5′ ends to a gene segment encoding the heat stable enterotoxin II (stII) signal sequence (R. N. Picken et al., Infect. Immun. 42: 269 (1983)) and on their 3′ side to human κ1 (CL, W. Palm and N. Hilschmann, Z. Physiol. Chem. 356: 167 (1975)) and IgG1 (C H1, J. W. Ellison et al., Nucleic Acids Res. 10: 4071 (1982)) constant domains respectively. The coding regions are separated by 83 base pairs and each is preceded by a ribosomal binding site (Picken et al., supra) to enable efficient initiation of translation. The Fab′ expression unit was cloned into the Eco RI site of pBR322 (F. Bolivar et al., Gene 2: 95 (1977)) previously modified by removal of the Sal I and Sph I sites without changing the amino acid sequence of the tetracycline resistance gene product. Construction of different Fab′ variants was facilitated by installing unique Sal I and Sph I sites towards the end of the C H1 gene and immediately preceding the bacteriophage λ t0 transcriptional terminator (S. Scholtissek, et al., Nucleic Acids Res. 15: 3185 (1987)).
  • FIG. 2 shows the purification of the Fab, Fab′ and F(ab′)2 (Cys Ala Ala variant) fragments of huMAb4D5-8. Proteins were analyzed by SDS-PAGE on a 4 to 20% gel under non-reducing conditions with Coomassie brilliant blue (R250). Samples shown are protein molecular weight markers (lane 1), Fab (lane 2); Fab′-SH before (lane 3) and after (lane 4) a mock coupling reaction; Fab′-TNB before (lane 5) and after (lane 6) a mock coupling reaction; Fab′-SH coupled with Fab′-TNB (lane 7), F(ab′)2 purified by gel filtration (lane 8) and F(ab′)2 derived from limited pepsin digestion (E. Lamoyi, et al., Methods Enzymol. 121: 652 (1986)) of full length huMAb4D5-8 expressed in mammalian cells (P. Carter et al., Proc. Natl. Acad. Sci. U.S.A. (1992) supra (lane 9). Antibody fragments (2 μg per sample) were reacted with 4 mM iodoacetamide prior to electrophoresis. The huMAb4D5-8 Fab fragment was purified from fermentation supernatants by centrifugation to remove cell debris, DEAE sepharose ion exchange chromatography and then affinity purified using protein A CL 4B or protein G sepharose. HuMAb4D5-8 Fab′-SH was purified by thawing 15 g cell paste in the presence of 21 ml of 100 mM sodium acetate (pH 3.5), 10 mM EDTA, 0.2 mM PMSF, 5 μM pepstatin, 5 μM leupeptin, 2.4 mM benzamidine. Cell debris was removed by centrifugation (40,000 g, 10 min, 4° C.). The resultant supernatant (pH 5.0) was passed over DEAE sepharose and loaded on to a 2 ml protein G sepharose column. Protein eluted with 100 mM sodium acetate (pH 3.5), 10 mM EDTA was adjusted to pH 4.0 in the presence of 1.5M (NH4)2SO4 and loaded on to 2 ml phenyl Toyopearl column. Fab′-SH was eluted with 20 mM sodium acetate (pH 4.0), 0.8 M (NH4)2SO4, 10 mM EDTA, reduced in volume by ultrafiltration (Centriprep-10, Amicon) and buffer exchanged into 10 mM sodium acetate (pH 5.0), 10 mM EDTA by G25 gel filtration. The Fab thionitrobenzoate derivative was prepared in a similar manner except that the DEAE flow through was adjusted to 5 mM DTNB and pH 7.5. The total concentration of huMAb4D5-8 Fab and Fab′ variants was determined from the measured absorbance at 280 nm and the extinction coefficient determined by amino acid composition analysis (ε0.1%=1.56). The free thiol content of huMAb4D5-8 Fab′-SH was determined by analysis with DTNB as described (T. E. Creighton, Protein Structure, a Practical Approach (IRL Press, Oxford, UK, 1990), p. 157), whereas the TNB content of huMAb4D5-8 Fab′-TNB was determined by the yield upon reduction with dithiothreitol. Equimolar quantities of huMAb4D5-8 Fab′-TNB (by TNB content) and Fab′-SH (by -SH content) were coupled at a combined concentration of ≧1.4 mg/ml in the presence of 100 mM tris-HCl (pH 7.5) and 10 mM EDTA for 1 hour at 37° C. HuMAb4D5-8 F(ab′)2 was isolated from the coupling reaction by S100-HR gel filtration (Pharmacia) in the presence of phosphate-buffered saline. The F(ab′)2 samples were passed through a sterile 0.2 μm filter and stored either at 4° C. or flash frozen in liquid nitrogen and stored at −70° C.
  • DETAILED DESCRIPTION OF THE INVENTION Definitions
  • In general, the following words or phrases have the indicated definitions when used in the description, examples, and claims:
  • The term Fv is defined to be a covalently or noncovalently-associated heavy and light chain heterodimer which does not contain constant domains.
  • The term Fab′ is defined herein as a polypeptide comprising a heterodimer of the variable domain and the first constant domain of an antibody heavy chain, plus the variable domain and constant domain of an antibody light chain, plus at least one additional amino acid residue at the carboxy terminus of the heavy chain C H1 domain including one or more cysteine residues. F(ab′)2 antibody fragments are pairs of Fab′ antibody fragments which are linked by a covalent bond(s).
  • The Fab′ heavy chain may include a hinge region. This may be any desired hinge amino acid sequence. Alternatively the hinge may be entirely omitted in favor of one or more cysteine residues or, preferably a short (about 1-10 residues) cysteine-containing polypeptide. In certain applications, a common naturally occurring antibody hinge sequence (cysteine followed by two prolines and then another cysteine) is used; this sequence is found in the hinge of human IgG1 molecules (E. A. Kabat, et al., Sequences of Proteins of Immunological Interest 3rd edition (National Institutes of Health, Bethesda, Md., 1987)). In other embodiments, the hinge region is selected from another desired antibody class or isotype. In certain preferred embodiments of this invention, the C-terminus of the C H1 of Fab′ is fused to the sequence Cys X X. X preferably is Ala, although it may be any other residue such as Arg, Asp, or Pro. One or both X amino acid residues may be deleted.
  • The “hinge region” is the amino acid sequence located between C H1 and C H2 in native immunoglobulins or any sequence variant thereof. In the case of the humanized 4D5 antibody described infra, the hinge region is located between residues 224 (asp in . . . Cys Asp Lys . . . ) and 233 (Pro in . . . Cys Pro Ala). Analogous regions of other immunoglobulins will be employed, although it will be understood that the size and sequence of the hinge region may vary widely. For example, the hinge region of a human IgG1 is only about 10 residues, whereas that of human IgG3 is about 60 residues.
  • The term Fv-SH or Fab′-SH is defined herein as a Fv or Fab′ polypeptide having at least one cysteinyl free thiol. Preferably the free thiol is in the hinge region, with the light and heavy chain cysteine residues that ordinarily participate in inter-chain bonding being present in their native form. In the most preferred embodiments of this invention, the Fab′-SH polypeptide composition is free of heterogenous proteolytic degradation fragments. In certain embodiments, the Fab′-SH polypeptide is also substantially (greater than about 90 mole percent) free of Fab′ fragments wherein heavy and light chains have been reduced or otherwise derivatized so as not to be present in their native state, e.g. by the formation of aberrant disulfides or sulfhydryl addition products. In alternative embodiments, the Fab′-SH has heavy and light chains which are not covalently coupled.
  • A humanized antibody for the purposes herein is an immunoglobulin amino acid sequence variant or fragment thereof which is capable of binding to a predetermined antigen and which comprises a FR region having substantially the amino acid sequence of a human immunoglobulin and a CDR having substantially the amino acid sequence of a non-human immunoglobulin or a sequence engineered to bind to a preselected antigen.
  • The term “control sequences” refers to DNA sequences necessary for the expression of an operably linked coding sequence in a particular host organism. The control sequences that are suitable for prokaryotes, for example, include a promoter, optionally an operator sequence, a ribosome binding site, and transcriptional terminators. Particularly preferred are highly regulated inducible promoters that suppress Fab′ polypeptide synthesis at levels below growth-inhibitory amounts while the cell culture is growing and maturing, for example, during the log phase.
  • Nucleic acid is “operably linked” when it is placed into a functional relationship with another nucleic acid sequence. For example, DNA for a presequence or secretory leader is operably linked to DNA for a polypeptide if it is expressed as a preprotein that participates in the secretion of the polypeptide; a promoter or enhancer is operably linked to a coding sequence if it affects the transcription of the sequence; or a ribosome binding site is operably linked to a coding sequence if it is positioned so as to facilitate translation. Generally, “operably linked” means that the DNA sequences being linked are contiguous and, in the case of a secretory leader, contiguous and in same reading frame. However enhancers do not have to be contiguous. Linking is accomplished by ligation at convenient restriction sites. If such sites do not exist, then synthetic oligonucleotide adaptors or linkers are used in accord with conventional practice.
  • An “exogenous” element is defined herein to mean a nucleic acid sequence that is foreign to the cell, or homologous to the cell but in a position within the host cell nucleic acid in which the element is ordinarily not found.
  • As used herein, the expressions “cell” and “cell culture” are used interchangeably and all such designations include progeny. Thus, the words “transformants” and “transformed cells” include the primary subject cell and cultures derived therefrom without regard for the number of transfers. It is also understood that all progeny may not be precisely identical in DNA content, due to deliberate or inadvertent mutations. Mutant progeny that have the same function or biological activity as screened for in the originally transformed cell are included. Different designations are will be clear from the contextually clear.
  • “Plasmids” are designated by a lower case p preceded and/or followed by capital letters and/or numbers. The starting plasmids herein are commercially available, are publicly available on an unrestricted basis, or can be constructed from such available plasmids in accord with published procedures. In addition, other equivalent plasmids are known in the art and will be apparent to the ordinary artisan.
  • “Recovery” or “isolation” of a given fragment of DNA from a restriction digest means separation of the digest on polyacrylamide or agarose gel by electrophoresis, identification of the fragment of interest by comparison of its mobility versus that of marker DNA fragments of known molecular weight, removal of the gel section containing the desired fragment, and separation of the gel from DNA. This procedure is known generally. For example, see Lawn et al., Nucleic Acids Res., 9: 6103-6114 (1981), and Goeddel et al., Nucleic Acids Res. 8:4057 (1980).
  • “Preparation” of DNA from cells means isolating the plasmid DNA from a culture of the host cells. Commonly used methods for DNA preparation are the large and small scale plasmid preparations described in sections 1.25-1.33 of Sambrook et al., (Molecular Cloning: A Laboratory Manual New York: Cold Spring Harbor Laboratory Press, 1989). DNA preparations are purified by methods well known in the art (see section 1.40 of Sambrook et al., supra).
  • Suitable Methods for Practicing the Invention
  • Typically a cultured microbial host cell is transformed with a vector comprising Fab′-encoding nucleic acid (i.e., nucleic acid encoding heavy chain Fd fragment and light chain) operably linked to control sequences recognized by the host cell transformed with the vector (hereafter, “Fab” will be referred to as a specific embodiment, but it will be understood that any Fv-containing antibody fragments or fusion/sequence derivative thereof can be used provided that a cysteine residue capable of forming a periplasmic free thiol is present in the Fv region or sequence fused thereto). The cells are cultured under conditions suitable for the secretion of Fab′ into the periplasmic space of the host cell and formation of the free thiol. In general, a dicistronic operon is used to direct the co-expression of corresponding light and heavy chain fragments. Alternatively, separate chains are expressed from separate promoters on the same or different plasmids. Secondly, the Fab chains are preceded by signal sequences to direct secretion into the periplasmic space, where it is believed that the redox environment favors disulfide bond formation for assembly of the light and heavy chain fragments but not disulfide bond formation between hinge cysteine residues. In particularly preferred embodiments, the expression control sequence is the E. coli phoA promoter (C. N. Chang et al., Gene 44: 121 (1986)) inducible by phosphate starvation and the signal sequence is the heat-stable enterotoxin II signal sequence (R. N. Picken et al, Infect. Immun. 42: 269 (1983)).
  • It is currently preferred that the antibody fragments be expressed in bacterial cells grown at high cell density in a fermentor. Suitable fermentation conditions are described in the Example below.
  • The polypeptides containing free thiol are recovered from the fermentation media and/or recovered from freeze-thawed cells (typically by osmotic shock) and subsequently purified. Recovery (including purification) is most successful if the Fab′-SH is maintained in the protonated form. Other conditions for maintaining the protonated form include the use of organic solvents or other agents for shifting the pKa of dissociation of -SH. This is conveniently accomplished at acid pH, i.e., preferably 2 or more pH units below the pKa of the hinge or unpaired cysteinyl thiol. Alternatively, the Fab′-SH is reacted with a protective group such as TNB or p-methoxybenzyl in order to maintain the Fab′ in a homogenous state suitable for further reaction. In yet another alternative, pyridine disulfide is added to the Fab′-SH to form a mixed disulfide; this stabilizes the free sulfhydryl until it is deprotected for coupling or other processing. In still another alternative embodiment, the free sulfhydryl is not protected but is reduced prior to coupling or further processing. Suitable protecting groups, known in the art, are described in E. Gross & J. Meiemhofer, The Peptides: Analysis, Structure, Biology Vol 3: Protection of Functional Groups in Peptide Synthesis (Academic Press, New York, 1981).
  • Affinity purification, such as on streptococcal protein G sepharose or staphylococcal protein A at acidic pH (typically, about pH 4 to pH 6, preferably about pH 5.0) is preferred. Alternatively, two-phase liquid extraction may be used. Small amounts of contaminating proteolytic fragments are readily removed by hydrophobic interaction chromatography, using, for example, silica gel and/or alkyl or aryl-substituted chromatography resins such as phenyl Toyopearl. It is preferred that a cocktail of protease inhibitors be used (such as phenylmethylsulfonyl fluoride (PMSF), leupeptin, pepstatin and/or benzamidine) to inactivate or inhibit host proteases, and to include a metal ion chelating agent such as EDTA in the culture and recovery procedures. The chelating agent is selected and included in an amount to prevent metal ion catalysis of disulfide bond formation.
  • In certain embodiments, Fab′-(SH)n (where n is equal to or greater than one) form F(ab′)2 in vivo during recombinant production. In these embodiments, the Fab′-(SH) amino acid sequence has been modified to contain preferably more than one cysteinyl residue. For example, F(ab′)2 having three disulfide bonds between heavy chains are recovered directly from an E. coli cell paste, following the culture in E. coli of Fab′-SH3.
  • In other embodiments, F(ab′)2 is prepared from purified Fab′-(SH)n (where n is equal to or greater than one) by in vitro chemical coupling using cross-linking agents or adventitious oxidants such as dissolved oxygen. In the latter instance, purified Fab′ will form F(ab′)2 due simply to air oxidation. In addition, bispecific F(ab′)2 is produced by the use of Fab′-SH derivatives which direct the coupling of discrete Fab′ and prevent the formation of bivalent monospecific F(ab′)2. One suitable chemistry for mono- or bi-specific F(ab′)2 is that of Brennan et al., supra. A Fab′-TNB derivative is prepared in a similar manner to Fab′-SH, except that Fab′-SH released from freeze-thawed cells by osmotic shock is adjusted to about pH 7.5 in the presence of excess DTNB. Equimolar quantities of Fab′-SH and Fab′-TNB are coupled together efficiently to form the F(ab′)2 fragment by a disulfide exchange reaction in the presence of EDTA.
  • The linkless Fv, Fab′, Fab′-SH and F(ab′)2 polypeptides of this invention do not have a disulfide bond between the light and heavy chains. Typically, the polypeptide is modified as the result of direct expression of a modified polypeptide, or by chemical or enzymatic means. Typical amino acid sequence modifications of the polypeptide involve substituting or deleting one or, preferably, both of the two cysteines which form the inter-chain (heavy-light) disulfide bond. Typically, these cysteines are replaced with serines, although it is within the scope hereof to covalently modify one or both of the cysteine side chain so as to be incapable of forming a disulfide bond.
  • One or both of the cysteines may be modified with fatty acids or other chemical groups and rendered incapable of forming a disulfide bond by a variety of known methods, including but not limited to the following methods: (1) covalent modification using dehydrating or activating agents such as N,N′-dicyclohexylcarbodiimide (DCC) or ethyoxy-ethoxycarbonyl-dihydroquinoline (EEDQ); (2) acylation, using ketenes, anhydrides, isothiocyanates, or beta-lactones; (3) carbamoylation using cyanates; (4) hemimercaptal or hemimercaptol formation using aldehydes and some keto acids; (5) alkylation and arylation, by addition to activated double bonds (using N-ethylmaleimide), by reactions with quinones, by reaction with haloacids and their amides (using iodoacetic acid, or alpha-bromo-hexadecanoic acid), by methylation reactions (such as with dimethylsulfate), by sulfoalkylation, by arylation (with nitrobenzene compounds), or by reaction with diazo compounds; (6) reaction with metal ions such as silver and organic mercury compounds such as mercuric chloride; (7) reaction with arsenic compounds; (8) reaction with sulfites; (9) oxidation reactions; and (10) reaction with sulfenyl halides to form mixed disulfides.
  • The polypeptide may be modified within a host cell, or as a post-translational modification to the recombinantly produced polypeptide. It is currently preferred that any post-translational modifications take place within 24, and preferably within a few hours of recovery from a host cell or microorganism.
  • Methods for detecting the presence of modifications to the cysteines of the polypeptides of this invention lung surfactant protein are commonly known, such as through the analysis of the mass spectra of a sample of the polypeptide. Alternatively, thin layer chromatography (TLC) is performed on a sample. While this approach to peptide analysis is common in the field, see e.g. Stuart and Young, Solid Phase Peptide Synthesis, pp 103-107, and 118-122, (Pierce Chem. Co., 2d. ed., 1984).
  • In certain embodiments, there is a very strong interaction between the light and heavy chains such that eliminating the interchain disulfide does not result undesirable levels of dissociation between the light and heavy chains. The linkless Fab′-SH polypeptides advantageously allow homogeneous F(ab′)2 to be prepared by chemical coupling.
  • The Fab sequences of this invention are obtained from conventional sources of antibodies. Polyclonal antibodies to an antigen generally are raised in animals by multiple subcutaneous (sc) or intraperitoneal (ip) injections of the antigen and an adjuvant. It may be useful to conjugate the antigen or a fragment containing the target antigen amino acid sequence to a protein that is immunogenic in the species to be immunized, e.g., keyhole limpet hemocyanin, serum albumin, bovine thyroglobulin, or soybean trypsin inhibitor using a bifunctional or derivatizing agent, for example, maleimidobenzoyl sulfosuccinimide ester (conjugation through cysteine residues), N-hydroxysuccinimide (through lysine residues), glutaraldehyde, succinic anhydride, SOCl2, or R1N═C═NR, where R and R1 are different alkyl groups.
  • The route and schedule of immunization of the animal or cultured antibody-producing cells therefrom are generally in keeping with established and conventional techniques for antibody stimulation and production. While mice are frequently employed as the test model, it is contemplated that any mammalian subject or antibody-producing cells obtained therefrom can be employed.
  • After immunization, monoclonal antibodies are prepared by recovering immune lymphoid cells—typically spleen cells or lymphocytes from lymph node tissue—from immunized animals and immortalizing the cells in conventional fashion, e.g. by fusion with myeloma cells or by Epstein-Barr (EB)-virus transformation and screening for clones expressing the desired antibody. The hybridoma technique described originally by Köhler, G. and Milstein, C., Nature 256: 52-53 (1975) has been widely applied to produce hybrid cell lines that secrete high levels of monoclonal antibodies against many specific antigens. Hybridomas secreting the desired antibody are identified by conventional methods. Routine methods are then employed to obtain DNA from hybridomas that encode the heavy and light chains of the selected antibody. Alternatively, one extracts antibody-specific messenger RNAs from B-cells of an immunized animal, reverse transcribes these into complementary DNA (cDNA), and amplifies the cDNA by PCR or by cloning it in a bacterial expression system. Another technique suitable for obtaining source heavy and light chain sequences uses a bacteriophage lambda vector system (which contains a leader sequence that secretes the expressed Fab protein into the periplasmic space) together with the generation and screening of great numbers of functional antibody fragments for those which demonstrate the desired activity. This system is commercially available.
  • Amino Acid Sequence Variants
  • This invention also encompasses amino acid sequence variants of the native Fab polypeptide sequences. These variants are prepared by introducing appropriate nucleotide changes into the DNA encoding the Fab or by in vitro synthesis of the desired Fab. Such variants include, for example, humanized variants of non-human antibodies, as well as deletions from, or insertions or substitutions of, residues within particular amino acid sequences. Any combination of deletion, insertion, and substitution can be made to arrive at the final construct, provided that the final construct possesses the desired characteristics. The amino acid changes also may alter post-translational processing of the target polypeptide, such as changing the number or position of glycosylation sites, introducing a membrane anchoring sequence into the constant domain or modifying the leader sequence of the native Fab.
  • In designing amino acid sequence variants of target polypeptides, the location of the mutation site and the nature of the mutation will depend on the target polypeptide characteristic(s) to be modified. The sites for mutation can be modified individually or in series, e.g., by (1) substituting first with conservative amino acid choices and then with more radical selections depending upon the results achieved, (2) deleting the target residue, or (3) inserting residues of the same or a different class adjacent to the located site, or combinations of options 1-3.
  • A useful method for identification of certain residues or regions of the target polypeptide that are preferred locations for mutagenesis is called “alanine scanning mutagenesis” as described by Cunningham and Wells (Science, 244: 1081-1085 [1989]), and Duncan, A. R. and Winter, G. (Nature, 322: 738-740 [1988]). Here, a residue or group of target residues are identified (e.g., charged residues such as arg, asp, his, lys, and glu) and replaced by a neutral or negatively charged amino acid (most preferably alanine or polyalanine) to affect the interaction of the amino acids with the surrounding aqueous environment in or outside the cell. Thus, while the site for introducing an amino acid sequence variation is predetermined, the nature of the mutation per se need not be predetermined. For example, to optimize the performance of a mutation at a given site, Ala scanning or random mutagenesis may be conducted at the target codon or region and the expressed target polypeptide variants are screened for the optimal combination of desired activity.
  • There are two principal variables in the construction of amino acid sequence variants: the location of the mutation site and the nature of the mutation. In general, the location and nature of the mutation chosen will depend upon the target polypeptide characteristic to be modified.
  • Amino acid sequence insertions include amino- and/or carboxyl-terminal fusions ranging in length from one residue to polypeptides containing a hundred or more residues, as well as intrasequence insertions of single or multiple amino acid residues. Intrasequence insertions (i.e., insertions within the target polypeptide sequence) may range generally from about 1 to 10 residues, more preferably 1 to 5, most preferably 1 to 3. Examples of terminal insertions include fusion of a heterologous N-terminal signal sequence to the N-terminus of the Fv polypeptide to facilitate the secretion of the mature Fv polypeptide from recombinant host cells. Such signal sequences generally will be obtained from, and thus homologous to, the intended host cell species. Suitable sequences for E. coli include STII or Ipp.
  • Other insertional variants of the target polypeptide include the fusion to the N- or C-terminus of the target polypeptide of immunogenic polypeptides, e.g., bacterial polypeptides such as beta-lactamase or an enzyme encoded by the E. coli trp locus, or yeast protein, and C-terminal fusions with proteins having a long half-life such as immunoglobulin constant regions (or other immunoglobulin regions), albumin, or ferritin, as described in WO 89/02922 published 6 Apr. 1989. Additional suitable polypeptide sequences include but are not limited to sequences derived from immunoglobulins, carrier proteins, receptors, growth factors, nutrient substances, cellular adhesive molecules, tissue-specific adhesion factors, enzymes, toxins and the like. These examples will be in addition to insertions of cysteine or cysteine-containing polypeptides such as hinge regions which provide free thiol cysteinyl.
  • Another group of variants are amino acid substitution variants. These variants have at least one amino acid residue in the immunoglobulin polypeptide removed and a different residue inserted in its place. The sites of greatest interest for substitutional mutagenesis include the CDRs, FR and hinge regions. They include substitutions of cysteine for other residue and insertions which are substantially different in terms of side-chain bulk, charge, and/or hydrophobicity. Other sites for substitution are described infra, considering the effect of the substitution of the antigen binding, affinity and other characteristics of a particular target antibody.
  • Fab itself is a deletional variant of intact immunoglobulin in which the heavy chain constant domain downstream from C H1 is deleted. Further, in preferred embodiments the C H1 domain is followed C-terminally by a cysteine-containing sequence such as Cys Ala Ala, or sequences having more than one Cys.
  • DNA encoding Fab amino acid sequence variants is prepared by a variety of methods known in the art. These methods include, but are not limited to, isolation from a natural source (in the case of naturally occurring amino acid sequence variants) or preparation by oligonucleotide-mediated (or site-directed) mutagenesis, PCR mutagenesis, and cassette mutagenesis of an earlier prepared variant or a non-variant version of the target polypeptide or by total gene synthesis. These techniques may utilize target polypeptide nucleic acid (DNA or RNA), or nucleic acid complementary to the target polypeptide nucleic acid. Oligonucleotide-mediated mutagenesis is a preferred method for preparing substitution, deletion, and insertion variants of target polypeptide DNA.
  • PCR mutagenesis is also suitable for making amino acid variants of the Fab polypeptide. While the following discussion refers to DNA, it is understood that the technique also finds application with RNA. The PCR technique generally refers to the following procedure (see Erlich, supra, the chapter by R. Higuchi, p. 61-70): When small amounts of template DNA are used as starting material in PCR, primers that differ slightly in sequence from the corresponding region in a template DNA can be used to generate relatively large quantities of a specific DNA fragment that differs from the template sequence only at the positions where the primers differ from the template. For introduction of a mutation into a plasmid DNA, one of the primers is designed to overlap the position of the mutation and to contain the mutation; the sequence of the other primer must be identical to a stretch of sequence of the opposite strand of the plasmid, but this sequence can be located anywhere along the plasmid DNA. It is preferred, however, that the sequence of the second primer is located within 200 nucleotides from that of the first, such that in the end the entire amplified region of DNA bounded by the primers can be easily sequenced. PCR amplification using a primer pair like the one just described results in a population of DNA fragments that differ at the position of the mutation specified by the primer, and possibly at other positions, as template copying is somewhat error-prone.
  • If the ratio of template to product material is extremely low, the vast majority of product DNA fragments incorporate the desired mutation(s). This product material is used to replace the corresponding region in the plasmid that served as PCR template using standard DNA technology. Mutations at separate positions can be introduced simultaneously by either using a mutant second primer, or performing a second PCR with different mutant primers and ligating the two resulting PCR fragments simultaneously to the vector fragment in a three (or more)-part ligation.
  • Another method for preparing variants, cassette mutagenesis, is based on the technique described by Wells et al. (Gene, 34: 315 [1985]). The starting material is the plasmid (or other vector) comprising the Fab DNA to be mutated. The codon(s) in the Fab polypeptide DNA to be mutated are identified. There must be a unique restriction endonuclease site on each side of the identified mutation site(s). If no such restriction sites exist, they may be generated using the above-described oligonucleotide-mediated mutagenesis method to introduce them at appropriate locations in the Fab polypeptide DNA. After the restriction sites have been introduced into the plasmid, the plasmid is cut at these sites to linearize it. A double-stranded oligonucleotide encoding the sequence of the DNA between the restriction sites but containing the desired mutation(s) is synthesized using standard procedures. The two strands are synthesized separately and then hybridized together using standard techniques. This double-stranded oligonucleotide is referred to as the cassette. This cassette is designed to have 3′ and 5′ ends that are compatible with the ends of the linearized plasmid, such that it can be directly ligated to the plasmid. This plasmid now contains the mutated Fab polypeptide DNA sequence.
  • Insertion of DNA into a Vector
  • The cDNA or genomic DNA encoding the Fab polypeptide is inserted into a replicable vector for further cloning (amplification of the DNA) or for expression. Many vectors are available, and selection of the appropriate vector will depend on 1) whether it is to be used for DNA amplification or for expression of the encoded protein, 2) the size of the DNA to be inserted into the vector, and 3) the host cell to be transformed with the vector. Each vector contains various components depending on its function (amplification of DNA or expression of DNA) and the host cell for which it is compatible. The vector components generally include, but are not limited to, one or more of the following: a signal sequence, an origin of replication, one or more marker genes, a promoter, and a transcription termination sequence.
  • (a) Signal Sequence Component
  • In general, the signal sequence may be a component of the vector, or it may be a part of the target polypeptide DNA that is inserted into the vector. Included within the scope of this invention are Fab polypeptides with any native signal sequence deleted and replaced with a heterologous signal sequence. The heterologous signal sequence selected should be one that is recognized and processed (i.e. cleaved by a signal peptidase) by the host cell. For prokaryotic host cells that do not recognize and process the native Fab polypeptide signal sequence, the signal sequence is substituted by a prokaryotic signal sequence selected, for example, from the group of the alkaline phosphatase, penicillinase, lpp, or heat-stable enterotoxin II leaders.
  • (b) Origin of Replication Component
  • Expression and cloning vectors may, but need not, contain a nucleic acid sequence that enables the Fab nucleic acid to replicate in one or more selected host cells. Generally, in cloning vectors this sequence is one that enables the vector to replicate independently of the host chromosomal DNA, and includes origins of replication or autonomously replicating sequences. Such sequences are well known for a variety of microbes. The origin of replication from the plasmid pBR322 is suitable for most Gram-negative bacteria.
  • DNA may also be replicated by insertion into the host genome. This is readily accomplished using Bacillus species as hosts, for example, by including in the vector a DNA sequence that is complementary to a sequence found in Bacillus genomic DNA. Transfection of Bacillus with this vector results in homologous recombination with the genome and insertion of the target polypeptide DNA. However, the recovery of genomic DNA encoding the target polypeptide is more complex than that of an exogenously replicated vector because restriction enzyme digestion is required to excise the target polypeptide DNA. Similarly, DNA also can be inserted into the genome of vertebrate and mammalian cells by conventional methods.
  • (c) Selection Gene Component
  • Expression and cloning vectors should contain a selection gene, also termed a selectable marker. This gene encodes a protein necessary for the survival or growth of transformed host cells grown in a selective culture medium. Host cells not transformed with the vector containing the selection gene will not survive in the culture medium. Typical selection genes encode proteins that (a) confer resistance to antibiotics or other toxins, e.g. ampicillin, neomycin, methotrexate, or tetracycline, (b) complement auxotrophic deficiencies, or (c) supply critical nutrients not available from complex media, e.g. the gene encoding D-alanine racemase for Bacilli.
  • One example of a selection scheme utilizes a drug to arrest growth of a host cell. Those cells that are successfully transformed with a heterologous gene express a protein conferring drug resistance and thus survive the selection regimen. Examples of such dominant selection use the drugs neomycin (Southern et al., J. Molec. Appl. Genet., 1: 327 [1982]), mycophenolic acid (Mulligan et al., Science, 209: 1422 [1980]) or hygromycin (Sugden et al., Mol. Cell. Biol., 5: 410-413 [1985]). The three examples given above employ bacterial genes under eukaryotic control to convey resistance to the appropriate drug G418 or neomycin (geneticin), xgpt (mycophenolic acid), or hygromycin, respectively.
  • (d) Promoter Component
  • Expression and cloning vectors will usually contain a promoter that is recognized by the host organism and is operably linked to the Fab polypeptide nucleic acid. Promoters are untranslated sequences located upstream (5′) to the start codon of a the Fab structural gene (generally within about 100 to 1000 bp) that control its transcription and translation. Such promoters typically fall into two classes, inducible and constitutive. Inducible promoters are promoters that initiate increased levels of transcription from DNA under their control in response to some change in culture conditions, e.g. the presence or absence of a nutrient or a change in temperature.
  • Inducible promoters under high regulation are preferred for the microbial expression of Fv-containing polypeptides. At this time a large number of promoters recognized by a variety of potential host cells are well known. These promoters are operably linked to DNA encoding the Fab polypeptide by removing the promoter from the source DNA by restriction enzyme digestion and inserting the isolated promoter sequence into the vector. Both the native Fab polypeptide promoter sequence and many heterologous promoters may be used to direct amplification and/or expression of the Fab polypeptide DNA. However, heterologous promoters are preferred, as they generally permit greater transcription and higher yields of expressed target polypeptide as compared to the native target polypeptide promoter.
  • Promoters suitable for use with prokaryotic hosts include the β-lactamase and lactose promoter systems (Chang et al., Nature, 275: 615 [1978]; and Goeddel et al., Nature, 281: 544 [1979]), alkaline phosphatase, a tryptophan (trp) promoter system (Goeddel, Nucleic Acids Res., 8: 4057 [1980] and EP 36,776) and hybrid promoters such as the tac promoter (deBoer et al., Proc. Natl. Acad. Sci. USA, 80: 21-25 [1983]). However, other known bacterial promoters are suitable. Their nucleotide sequences have been published, thereby enabling a skilled worker operably to ligate them to DNA encoding the target polypeptide (Siebenlist et al., Cell, 20: 269 [1980]) using linkers or adaptors to supply any required restriction sites. Promoters for use in bacterial systems also generally will contain a Shine-Dalgarno (S.D.) sequence operably linked to the DNA encoding the target polypeptide.
  • Construction of suitable vectors containing one or more of the above listed components employs standard ligation techniques. Isolated plasmids or DNA fragments are cleaved, tailored, and religated in the form desired to generate the plasmids required.
  • Selection and Transformation of Host Cells
  • Suitable host cells for expressing Fab are microbial cells such as yeast, fungi, and prokaryotes. Suitable prokaryotes include eubacteria, such as Gram-negative or Gram-positive organisms, for example, E. coli, Bacilli such as B. subtilis, Pseudomonas species such as P. aeruginosa, Salmonella typhimurium, or Serratia marcescans. One preferred E. coli cloning host is E. coli 294 (ATCC 31,446), although other strains such as E. coli B, E. coli X1776 (ATCC 31,537), E. coli RV308 (ATCC 31,608) and E. coli W3110 (ATCC 27,325) are suitable. These examples are illustrative rather than limiting. Preferably the host cell should secrete minimal amounts of proteolytic enzymes, and additional protease inhibitors may desirably be incorporated in the cell culture.
  • Host cells are transfected and preferably transformed with the above-described expression or cloning vectors of this invention and cultured in conventional nutrient media modified as appropriate for inducing promoters, selecting transformants, or amplifying the genes encoding the desired sequences.
  • Culturing the Host Cells
  • Cells used to produce the Fab polypeptide of this invention are cultured in suitable media as described generally in Sambrook et al., (Molecular Cloning: A Laboratory Manual New York: Cold Spring Harbor Laboratory Press, 1989). Any other necessary supplements may also be included at appropriate concentrations that would be known to those skilled in the art. The culture conditions, such as temperature, pH, and the like, are those previously used with the host cell selected for expression, and will be apparent to the ordinarily skilled artisan.
  • It is currently preferred that the bacterial host cells be cultured at temperatures from 37° C. to 29° C., although temperatures as low as 20° C. may be suitable. Optimal temperatures will depend on the host cells, the Fab sequence and other parameters. 37° C. is generally preferred.
  • Purification of Fab Polypeptides
  • Soluble polypeptides are recovered from recombinant cell culture to obtain preparations that are substantially homogeneous as to Fab. As a first step, the culture medium or periplasmic preparation is centrifuged to remove particulate cell debris. Periplasmic preparations are obtained in conventional fashion, e.g. by freeze-thaw or osmotic shock methods. The membrane and soluble protein fractions are then separated. The Fab polypeptide is then purified from the soluble protein fraction. The following procedures are exemplary of suitable purification procedures: fractionation on immunoaffinity or ion-exchange columns; ethanol precipitation; reverse phase HPLC; chromatography on silica or on a cation exchange resin such as DEAE; chromatofocusing; SDS-PAGE; ammonium sulfate precipitation; gel filtration using, for example, Sephadex G-75; protein A or protein G affinity matrix (e.g. Sepharose) columns; and hydrophobic interaction chromatography.
  • Fab polypeptide variants in which residues have been deleted, inserted or substituted are recovered in the same fashion, taking account of any substantial changes in properties occasioned by the variation. For example, preparation of a Fab polypeptide fusion with another protein or polypeptide, e.g. a bacterial or viral antigen, facilitates purification since an immunoaffinity column containing antibody to the antigen is used to adsorb the fusion. Immunoaffinity columns such as a rabbit polyclonal anti-target polypeptide column can be employed to absorb the target polypeptide variant by binding it to at least one remaining immune epitope. A protease inhibitor also is useful to inhibit proteolytic degradation during purification, and antibiotics may be included to prevent the growth of adventitious contaminants.
  • Utility of the Fab-Containing Polypeptides
  • The antibody fragments of this invention are useful in diagnostic assays for antigen in specific cells, fluids or tissues, for immunoaffinity purification of the antigens and for therapies which are based on antigen antagonism.
  • Analytical methods for the antigen bound by the Fab polypeptide are conventional and may use a label bound to the Fab. The label used with the Fab polypeptide is any detectable functionality that does not interfere with its binding to Fab. Numerous labels are known, including the radioisotopes 32P, 32S, 14C, 125I, 3H, and 131I, fluorophores such as rare earth chelates or fluorescein and its derivatives, rhodamine and its derivatives, dansyl, umbelliferone, luceriferases, e.g., firefly luciferase and bacterial luciferase (U.S. Pat. No. 4,737,456), luciferin, 2,3-dihydrophthalazinediones, horseradish peroxidase (HRP), alkaline phosphatase, β-galactosidase, glucoamylase, lysozyme, saccharide oxidases, e.g., glucose oxidase, galactose oxidase, and glucose-6-phosphate dehydrogenase, heterocyclic oxidases such as uricase and xanthine oxidase, lactoperoxidase, biotin/avidin, spin labels, bacteriophage labels, stable free radicals, imaging radionuclides (such as Technetium) and the like.
  • Conventional methods are available to bind these labels covalently to proteins or polypeptides. For instance, coupling agents such as dialdehydes, carbodiimides, dimaleimides, bis-imidates, bis-diazotized benzidine, and the like may be used to tag the antibodies with the above-described fluorescent, chemiluminescent, and enzyme labels. See, for example, U.S. Pat. No. 3,940,475 (fluorimetry) and U.S. Pat. No. 3,645,090 (enzymes); Hunter et al., Nature, 144: 945 (1962); David et al., Biochemistry, 13: 1014-1021 (1974); Pain et al., J. Immunol. Methods, 40: 219-230 (1981); and Nygren, J. Histochem, and Cytochem., 30: 407-412 (1982). Preferred labels herein are enzymes such as horseradish peroxidase and alkaline phosphatase. The conjugation of such label, including the enzymes, to the Fab-containing polypeptide is a standard manipulative procedure for one of ordinary skill in immunoassay techniques. See, for example, O'Sullivan et al., “Methods for the Preparation of Enzyme-antibody Conjugates for Use in Enzyme Immunoassay,” in Methods in Enzymology, ed. J. J. Langone and H. Van Vunakis, Vol. 73 (Academic Press, New York, N.Y., 1981), pp. 147-166. Such bonding methods are suitable for use with the Fab polypeptides of this invention.
  • The Fab-containing polypeptides also may comprise an immunotoxin. For example, the Fab heavy chain is optionally conjugated to a cytotoxin such as ricin for use in AIDS therapy. Alternatively, the toxin may be a cytotoxic drug or an enzymatically active toxin of bacterial, fungal, plant or animal origin, or an enzymatically active fragment of such a toxin. Enzymatically active toxins and fragments thereof include diphtheria A chain, nonbinding active fragments of diphtheria toxin, exotoxin A chain (from Pseudomonas aeruginosa), ricin A chain, abrin A chain, modeccin A chain, alpha-sarcin, Aleurites fordii proteins, dianthin proteins, Phytolaca americana proteins (PAPI, PAPII, and PAP-S), momordica charantia inhibitor, curcin, crotin, sapaonaria officinalis inhibitor, gelonin, mitogellin, restrictocin, phenomycin, enomycin and the tricothecenes. In another embodiment, the antibodies are conjugated to nonpeptidyl drugs such as cis-platin or 5FU. Conjugates of the monoclonal antibody and such cytotoxic moieties are made using a variety of bifunctional protein coupling agents. Examples of such reagents are SPDP, IT, bifunctional derivatives of imidoesters such as dimethyl adipimidate HCl, active esters such as disuccinimidyl suberate, aldehydes such as glutaraldehyde, bis-azido compounds such as bis (p-azidobenzoyl) hexanediamine, bis-diazonium derivatives such as bis-(p-diazoniumbenzoyl)- -ethylenediamine, diisocyanates such as tolylene 2,6-diisocyanate and bis-active fluorine compounds such as 1,5-difluoro-2,4-dinitrobenzene. The lysing portion of a toxin may be joined to the Fab antibody fragment.
  • Immunotoxins can be made in a variety of ways, as discussed herein. Commonly known crosslinking reagents can be used to yield stable conjugates.
  • When used in vivo for therapy, the Fab-containing fragments of the subject invention are administered to the patient in therapeutically effective amounts (i.e. amounts that have desired therapeutic effect) in the same fashion as intact immunoglobulins. The products prepared in accord with the methods of this invention offer the advantage of substantial molecular homogeneity and are devoid of toxic contaminants heretofore used in preparing F(ab′)2.
  • The antibody compositions used in therapy are formulated and dosages established in a fashion consistent with good medical practice taking into account the disorder to be treated, the condition of the individual patient, the site of delivery of the composition, the method of administration and other factors known to practitioners. The antibody compositions are prepared for administration according to the description of preparation of polypeptides for administration, infra.
  • EXAMPLE Expression of Active Fab, Fab′, and F(ab′)2, Antibody Fragments
  • Overexpression of the HER2 proto-oncogene product (p185HER2) has been associated with a variety of aggressive human malignancies. An Escherichia coli expression system has been developed that secretes functional Fab and Fab′ fragments of a humanized antibody, huMAb4D5-8, at titers of about 1 to in excess of about 2 grams per liter as judged by binding to antigen, p185HER2. The Fab′ fragment was recovered with the single hinge region cysteine present mainly as the free thiol (up to about 90 mole %) permitting efficient directed disulfide bond formation in vitro to form the bivalent F(ab′)2 antibody fragment. This molecule is indistinguishable from F(ab′)2 derived from proteolysis of intact antibody in antigen binding affinity and in anti-proliferative activity against the human breast tumor cell line, SK-BR-3, which over-expresses p185HER2, but unlike the proteolytic product, the F(ab′)2 here is C-terminally homogenous. This invention facilitates the construction of monospecific and bispecific F(ab′)2 antibody fragments, including naturally derived or humanized antibody fragments for research and therapeutic purposes. This invention is particularly applicable for developing antibody fragments capable of directing diagnostic or therapeutic moieties to target antigens such as tumor foci characterized by overexpression of the HER2 proto-oncogene.
  • The murine monoclonal antibody known as muMAb4D5 (Fendly, B. M. et al., Cancer Res. 50:1550-1558 (1990)) is directed against the extracellular domain (ECD) of p185HER2. The muMAb4D5 and its uses are described in copending PCT application WO 89/06692 published 27 Jul. 1989. This murine antibody was deposited with the ATCC and designated ATCC CRL 10463. In this description, the terms muMAb4D5, chMAb4D5 and huMAb4D5 represent murine, chimerized and humanized versions of the monoclonal antibody 4D5, respectively.
  • muMAb4D5 has potential for clinical intervention in that it specifically inhibits the growth of human tumor cell lines overexpressing p185HER2 (2, 3) and is rapidly internalized by target cells (data not shown). Amplification and/or overexpression of HER2 is associated with multiple human malignancies and appears to be integrally involved in progression of 25-30% of primary human breast and ovarian cancers (5). The muMAb4D5 molecule was previously “humanized” (6) in an attempt to improve its clinical efficacy by reducing immunogenicity and allowing it to support human effector functions. The humanized antibody, huMAb4D5-8, contains essentially only the antigen binding loops from the murine parent antibody together with human variable region framework residues and constant domains. This humanized antibody has 3-fold higher affinity for p185HER2 ECD than the murine parent, comparable anti-proliferative activity against p185HER2 overexpressing tumor cells and supports antibody-dependent cellular cytotoxicity.
  • It was desired to enlarge the repertoire of anti-p185HER2 antibody reagents to include the Fab and F(ab′)2 antibody fragments of huMAb4D5-8. The smaller size of these fragments compared to the intact antibody is likely to enhance their specific localization to solid tumors by improving tumor penetration and promoting more rapid removal from serum (reviewed in ref. 8). huMAb4D5-8 Fab and F(ab′)2, fragments were obtained by direct recombinant expression to facilitate engineering of these fragments. Furthermore this strategy provided more homogeneous preparations of antibody fragments than could be obtained by limited proteolysis and partial reduction of intact antibodies (reviewed in ref. 9). Functional Fv and Fab fragments had been secreted from E. coli (10).
  • The strategy here for the E. coli secretion of antibody fragments (FIG. 1) shares two basic similarities with the work of others (10). Firstly a dicistronic operon is used to direct the co-expression of corresponding light and heavy chain fragments. Secondly the antibody chains are preceded by bacterial signal sequences to direct secretion into the periplasmic space of E. coli where the redox environment favors disulfide bond formation and the light and heavy chain fragments may assemble. The system here differs from earlier strategies in three basic ways. Firstly the transcription unit utilizes the a highly regulated promoter, the E. coli PhoA promoter (11) inducible by phosphate starvation, and heat-stable enterotoxin II signal sequence (12). Secondly, the gene segment for the light chain precedes that for the heavy chain Fd fragment (VH and C H1 domains). Thirdly, in order to express the Fab′ fragment of huMAb4D5-8 the C H1 gene segment was extended to encode part of the cysteine-containing antibody hinge region. The sequence Cysteine followed by two Prolines and another Cysteine (CPC terminus) was initially chosen since it is found in the hinge region of human IgG1 molecules (17) including the full length version of huMAb4D5-8 (6). The construction of additional Fab′ variants by cassette mutagenesis (18) of the pBR322-based expression vector was facilitated by installing unique Sal I and Sph I restriction sites towards the end of the C H1 gene segment and immediately 3′ to the stop codon, respectively.
  • The huMAb4D5-8 Fab fragment was expressed in a phage resistant derivative of E. coli RV308 (19) grown at high cell density in a fermentor (20). The titer of functional huMAb4D5-8 Fab in fermentation media is routinely 1 to 2 grams per liter as judged by p185HER2 ECD binding ELISA (6). Modest amounts of huMAb4D5-8 Fab (usually <200 mg/l) are found associated with the cell paste and may be released by osmotic shock. The consensus framework region of the huMAb4D5-8 Fab fragment was found to bind tightly to both staphylococcal protein A and to streptococcal protein G, allowing their use for affinity purification. Very similar estimates of titers are obtained for culture media or cell paste samples after affinity purification on protein A prior to antigen-binding ELISA. Similar expression titers of p185HER2 ECD binding activity have been obtained for the huMAb4D5-8 Fab variant (cysteine, two prolines and another cysteine) and the additional Fab′ variant described below.
  • Formation of F(ab′)2 molecules requires chance encounters of Fab′ hinge cysteinyl thiols to form disulfide bonds without the assistance of extensive interactions between C H3 domains possible in the case of intact antibodies. Thus high level expression of Fab′ in the periplasmic space of E. coli was anticipated to drive formation of F(ab′)2 in vivo. In fact <10% of the Fab′ molecule having the CPC terminus (isolated from either media or cell paste) were recovered as the bivalent form as judged by SDS-PAGE analysis after protein A purification. High resolution mass spectrometry and other studies suggested that substantial formation of an intramolecular disulfide bond between the two hinge cysteine residues had occurred. This possibility was precluded by the construction of an additional Fab′ variant with a single hinge cysteine residue having the C-terminal sequence, Cys Ala Ala. Negligible quantities of F(ab′)2 are formed when this Fab′ variant is secreted from E. coli and DTNB analysis does not detect free thiol.
  • The Fab′ molecules are recovered under conditions that maintain the hinge cysteine present as the free thiol and then readily and efficiently formed into F(ab′)2 by directed coupling in vitro. For example, Brennan et al. (23) reacted a Fab′ free thiol (Fab′-SH) with DTNB to form the thionitrobenzoate derivative (Fab′-TNB) which was then coupled to a second Fab′(Fab′-SH) to form the bispecific F(ab′)2. The following strategy allows the routine purification of intact functional huMAb4D5-8 Fab′ Cys Ala Ala variant with 75-90% of the molecules containing a free hinge thiol as judged by DTNB analysis (FIG. 2): firstly, growth conditions were judiciously modified (20) to target secretion of Fab′ to the periplasmic space of E. coli rather than into the culture media where the Fab′ hinge thiol was found to be quantitatively and covalently blocked. Secondly, the Fab′ fragment was isolated from the cell paste and affinity purified on protein G sepharose at low pH (pH 5.0) to maintain the cysteinyl thiol in the less reactive protonated form. Thirdly, EDTA was added to chelate metal ions capable of catalyzing disulfide bond formation and to inactivate metallo proteases. Finally a cocktail of additional protease inhibitors (phenylmethylsulfonyl fluoride (PMSF), leupeptin, pepstatin and benzamidine) virtually eliminated proteolysis of Fab′ by E. coli proteases during the purification. Small amounts of contaminating proteolytic fragments in Fab′ preparations were readily removed by hydrophobic interaction chromatography. The Fab′-TNB derivative was prepared in a similar manner except that Fab′-SH released from freeze-thawed cells by osmotic shock was adjusted to neutral pH in the presence of excess DTNB.
  • Equimolar quantities of Fab′-SH and Fab-TNB were coupled together to efficiently form the F(ab′)2 antibody fragment by a disulfide exchange reaction (FIG. 2). The coupling reaction was followed by monitoring the increase in absorbance at 412 nm upon release of the thionitrobenzoate anion and found to reach completion after 30 to 60 min at 37° C. No free thiol was detected in the reaction mix after coupling and the amount of remaining Fab′ is consistent with that amount of unreactive material in the Fab′-SH and Fab′-TNB preparations. F(ab′)2 was separated from Fab′ by gel filtration on a S100-HR sizing column. Only trace quantities of huMAb4D5-8 F(ab′)2 are were formed in mock coupling reactions containing either Fab′-SH or Fab′-TNB alone, as anticipated (23).
  • The physical and chemical integrity of purified huMAb4D5-8 Fab and F(ab′)2 was evaluated by SDS-PAGE (FIG. 2), analysis of the amino terminal sequence, amino acid composition plus free thiol content, and by circular dichroism. Purified huMAb4D5-8 Fab (Mr=47.7 kdal) and F(ab′)2 (Mr=96.0 kdal) fragments analyzed by SDS-PAGE under non-reducing conditions each gave a single major band of the expected mobility. After SDS-PAGE under reducing conditions both Fab and F(ab′)2 antibody fragments gave a doublet of bands of similar intensities as expected from release of stoichiometric quantity of free light chain (23.4 kdal) and heavy chain Fd (24.3 kdal) or Fd′ (24.6 kdal) fragments (not shown). Amino terminal sequence analysis (8 cycles) of Fab and F(ab′)2 antibody fragments gave the expected mixed sequence from a stoichiometric 1:1 mixture of light and heavy chains (VL/VH: Asp/Glu, Ile/Val, Gln/Gln, Met/Leu, Thr/Val, Gln/Glu, Ser/Ser, and Pro/Gly with no evidence of additional sequences. No free thiol was detected in either Fab or F(ab′)2 preparations by DTNB analysis as expected. Amino acid analysis (27) of acid hydrolysed Fab or F(ab′)2 was in excellent agreement with the expected composition (6). The circular dichroism spectrum of the Fab fragment is characteristic of an immunoglobulin fold.
  • The function of huMAb4D5-8 Fab and F(ab′)2 antibody fragments was investigated by measuring the binding affinity for the p185HER2 ECD and by investigating their effect upon the proliferation of the p185HER2 overexpressing human breast carcinoma line, SK-BR-3 (Table 1).
    TABLE 1
    Analysis of huMAb4D5-8 fragments by p185HER2 ECD binding affinity
    and anti-proliferative activity with breast carcinoma, SK-BR-3 cells.
    huMAb4D5-8 variant Source Kd · pM Relative cell proliferation
    Fab E. coli 570 91
    F(ab′)2 E. coli 290 53
    F(ab′)2 293 cells 300 50

    *Kd values for the p185HER2 ECD were determined as previously described (5) and the standard error of the estimates are ≦ ± 10%.

    Proliferation of SK-BR-3 cells incubated for 96 hr with huMAb4D5 variants shown as a percentage of the untreated control as described (5). Data represent the maximal anti-proliferative effect for each variant calculated as the mean of triplicate determinations at a fragment concentration of 10 μg/ml. Data are all taken from the same experiment and the estimated standard error ≦ ± 15%.

    Cys Ala Ala variant.

    The binding affinity of huMAb4D5-8 F(ab′)2 antibody fragment for p185HER2 ECD is identical to that of the corresponding fragment derived from limited proteolysis of whole antibody expressed in mammalian cells. The bivalent F(ab′)2 antibody fragment derived from E. coli has identical anti-proliferative activity with SK-BR-3 cells to both the intact bivalent huMAb4D5-8 parent antibody derived from 293 cells (6) and the F(ab′)2 antibody fragment derived from limited pepsin digestion of intact antibody. In contrast, the monovalent Fab molecule does not significantly affect the growth of SK-BR-3 cells. This suggests that the crosslinking of p185HER2 on the surface of cells may be required for inhibiting their proliferation. It appears exceedingly unlikely that the 2-fold weaker antigen binding affinity of the Fab compared to the F(ab′)2 could account for the lack of anti-proliferative activity of the Fab at concentrations up to several hundred fold above the Kd. Furthermore, it is possible to block the anti-proliferative activity of the bivalent parent antibody, muMAb4D5, with a monovalent huMAb4D4 Fab fragment.
  • In this example, the expression titer of functional Fab fragments was increased compared to the reports in the literature for E. coli, from about 1000-fold to 1 to 2 grams per liter. Additionally, Fab′ molecules were recovered. This enhanced expression is very likely due only in part to the higher cell densities (10 to 20-fold) and more precisely controlled environment of the fermentor than the simple shake flask, the very tight control of pre-induction expression and the characteristics of the humanized variable domain sequence employed. The titer of Fab′ obtained here using the phoA promoter are surprisingly high and may result from a combination of the use of this powerful promoter in a low copy number (pBR322-based) vector. Thus the repressor is not titered to less effective levels. The cells also could be transformed to make surplus repressor. What is important is that the promoter be inactive prior to induction. It is possible that vector design and the high thermal stability of the Fab fragment (Tm>80° C.) also may be important. This system should greatly facilitate clinical or biophysical studies requiring large quantities of antibody fragments.
  • Similar high expression levels have been observed for several additional variants of huMAb4D5-8 Fab which contain one or more amino acid changes in the antigen binding loops or nearby framework residues (6). Two alternative antigen-binding specificities have been recruited into huMAb4D5-8 Fab′ by judicious replacement of antigen binding residues and found to give high expression titers. This is consistent with the notion that the framework of a polypeptide comprising substantially huMAb4D5-8 Fab′ might be generically useful for highly expressed humanized Fab′ molecules.
  • The huMAb4D5-8 Fab′ Cys Ala Ala shows very little tendency to form F(ab′)2 in vivo despite the apparently quantitative formation of intra-domain disulfides in the variable regions. However, in vitro F(ab′)2 forms readily by air oxidation of Fab′-SH at pH 7.5 in the absence of EDTA at concentrations that are at least 10-fold lower than are found in vivo.
  • Without committing to any particular mechanism, it is believed that the redox potential of the periplasmic space of E. coli is sufficiently oxidizing to allow formation of the intra-domain disulfide bonds but not the inter-heavy chain disulfide which is presumably thermodynamically less favorable. Nevertheless, recovery of functional Fab′ fragments secreted into the periplasmic space of E. coli with the unpaired hinge cysteine mainly as the free thiol provides the essential starting material for directed coupling (23, 32, 33). We have additionally exploited the free thiol for immobilization of the huMAb4D5-8 Fab′ fragment on an activated thiol support as previously described (34), enabling the p185HER2 ECD to be affinity purified from solution. The free hinge thiol has also been used for attachment of fluorescent probes for fluorescence-activated cell sorting. It is also within the scope of this invention to use the free cysteinyl thiol for the site-directed attachment of radionuclides for imaging or therapy. This would offer the advantage over conventional labelling strategies of a defined stoichiometry and attachment site without the risk of compromising antigen binding affinity.
  • BIBLIOGRAPHY
    • 1. B. M. Fendly et al., Cancer Res. 50: 1550 (1990).
    • 2. R. M. Hudziak et al., Molec. Cell. Biol. 9: 1165 (1989).
    • 3. R. Lupu et al., Science 249: 1552 (1990).
    • 5. D. J. Slamon et al., Science 235: 177 (1987); D. J. Slamon et al., Science 244: 707 (1989).
    • 6. P. Carter et al., Proc. Natl. Acad. Sci. U.S.A. 89(10):4285-9 (1992).
    • 7. P. T. Jones et al., Nature 321: 522 (1986); L. Riechmann et al., Nature 332: 323 (1988); M. Verhoeyen et al., Science 239: 1534 (1988).
    • 8. R. D. Blumenthal et al., Adv. Drug Del. Rev. 4: 279 (1990).
    • 9. P. Parham in Cellular Immunology (E. M. Weir, Ed., Blackwell Scientific, CA) 4th edition, vol 1 chapter 14 (1983).
    • 10. A. Skerra and A. Plückthun, Science 240: 1038 (1988); M. Better et al., ibid p. 1041.
    • 11. C. N. Chang et al., Gene 44: 121 (1986).
    • 12. R. N. Picken et al., Infect. Immun. 42: 269 (1983).
    • 13. W. Palm and N. Hilschmann, Z. Physiol. Chem. 356: 167 (1975).
    • 14. J. W. Ellison et al., Nucleic Acids Res. 10: 4071 (1982).
    • 15. F. Bolivar et al., Gene 2: 95 (1977).
    • 16. S. Scholtissek, et al., Nucleic Acids Res. 15: 3185 (1987)
    • 17. E. A. Kabat, et al., Sequences of Proteins of Immunological Interest 3rd edition (National Institutes of Health, Bethesda, Md., 1987).
    • 18. J. A. Wells et al., Gene 34: 315 (1985).
    • 19. R. A. Maurer, Ph.D. thesis, Harvard University (1978).
    • 20. The huMAb4D5-8 Fab′ fragment was expressed in E. coli strain 25F2 derived from the strain RV308 (ref. 22, ATCC#31608) by inactivating the tonA gene. Cells were grown for 32-40 hours in an aerated 10 liter fermentor at 37° C. at a low agitation rate (650 rpm, KIa ˜600 mmol l−1hr−1atm−1) in a medium that initially contained 12 g l−1 digested casein, 17 mM glucose, 2.4 mM isoleucine hydrochloride, 47 mM (NH4)2SO4, 10 mM NaH2PO4, 18 mM K2HPO4, 4.1 mM trisodium citrate, 12 mM MgSO4, 125 μM FeCl3 and 20 μM each of ZnSO4, MnSO4, CuSO4, CoCl2, H3BO3 and NaMoO4) plus 12 mg l−1 tetracycline and received automated feeds of ammonia to maintain the pH at 7.0 and also glucose to maintain a slight excess or avoid anaerobisis depending upon cell density of 80 to 100 OD550. The cell density at harvest is usually 120 to 150 OD550.
    • 21. G. L. Ellman, Arch. Biochem. Biophys. 82: 70 (1959).
    • 23. M. Brennan et al., Science 229: 81 (1985).
    • 24. E. Lamoyi, et al., Methods Enzymol. 121: 652 (1986).
    • 25. T. E. Creighton, Protein Structure, a Practical Approach (IRL Press, Oxford, UK, 1990), p. 157.
    • 26. P. Matsudaira, J. Biol. Chem. 262: 10035 (1987)
    • 27. S. Moore and W. H. Stein, Methods Enzymol. 6: 819 (1963)
    • 32. M. J. Glennie et al., J. Immunol. 139: 2367 (1987); M. J. Glennie et al., J. Immunol. 141: 3662 (1988).
    • 33. T. Nitta et al., J. Immunol. 19: 1437 (1989). T. Nitta et al., Lancet 335: 368 (1990).
    • 34. P. Carter and J. A. Wells, Science 237: 394 (1987).

Claims (3)

1-21. (canceled)
22. A method for high yield production of an immunoglobulin polypeptide comprising culturing a host cell transformed with nucleic acid encoding an immunoglobulin polypeptide under the transcriptional control of an inducible promoter/operator system wherein the promoter/operator system is subsequently induced, thereby resulting in polypeptide levels in the cell culture of greater than about 1 gram of polypeptide per liter of cell culture.
23-24. (canceled)
US11/173,653 1991-09-19 2005-07-01 Expression of functional antibody fragments Abandoned US20050244929A1 (en)

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US08/199,268 US7018809B1 (en) 1991-09-19 1992-09-18 Expression of functional antibody fragments
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Publication number Priority date Publication date Assignee Title
US4816567A (en) 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US5576195A (en) * 1985-11-01 1996-11-19 Xoma Corporation Vectors with pectate lyase signal sequence
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US5747654A (en) * 1993-06-14 1998-05-05 The United States Of America As Represented By The Department Of Health And Human Services Recombinant disulfide-stabilized polypeptide fragments having binding specificity
US5641870A (en) 1995-04-20 1997-06-24 Genentech, Inc. Low pH hydrophobic interaction chromatography for antibody purification
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US5980895A (en) * 1995-10-13 1999-11-09 The United States Of America As Represented By The Department Of Health And Human Services Immunotoxin containing a disulfide-stabilized antibody fragment joined to a Pseudomonas exotoxin that does not require proteolytic activation
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US20020062010A1 (en) 1997-05-02 2002-05-23 Genentech, Inc. Method for making multispecific antibodies having heteromultimeric and common components
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AU2873999A (en) 1998-02-24 1999-09-06 Sisters Of Providence In Oregon Compositions containing an OX-40 receptor binding agent or nucleic acid encoding the same and methods for enhancing antigen-specific immune response
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JP4931347B2 (en) 2002-10-01 2012-05-16 ファンクショナル・ジェネティクス・インコーポレイテッド Anti-TSG101 antibodies and their use for the treatment of viral infections
NZ538996A (en) * 2002-10-31 2008-04-30 Genentech Inc Methods and compositions for increasing antibody production
US8420086B2 (en) 2002-12-13 2013-04-16 Immunomedics, Inc. Camptothecin conjugates of anti-CD22 antibodies for treatment of B cell diseases
PT1572744E (en) 2002-12-16 2010-09-07 Genentech Inc Immunoglobulin variants and uses thereof
AU2004205684A1 (en) * 2003-01-23 2004-08-05 Genentech, Inc. Methods for producing humanized antibodies and improving yield of antibodies or antigen binding fragments in cell culture
US8084582B2 (en) 2003-03-03 2011-12-27 Xencor, Inc. Optimized anti-CD20 monoclonal antibodies having Fc variants
US20090010920A1 (en) 2003-03-03 2009-01-08 Xencor, Inc. Fc Variants Having Decreased Affinity for FcyRIIb
US8388955B2 (en) * 2003-03-03 2013-03-05 Xencor, Inc. Fc variants
US20070275460A1 (en) * 2003-03-03 2007-11-29 Xencor.Inc. Fc Variants With Optimized Fc Receptor Binding Properties
US9051373B2 (en) 2003-05-02 2015-06-09 Xencor, Inc. Optimized Fc variants
CA2525899C (en) 2003-05-09 2016-03-08 Diadexus, Inc. Ovr110 antibody compositions and methods of use
US8088387B2 (en) 2003-10-10 2012-01-03 Immunogen Inc. Method of targeting specific cell populations using cell-binding agent maytansinoid conjugates linked via a non-cleavable linker, said conjugates, and methods of making said conjugates
CA2527020A1 (en) 2003-07-01 2005-01-13 Celltech R & D Limited Modified antibody fab fragments
US7538010B2 (en) * 2003-07-24 2009-05-26 S.O.I.Tec Silicon On Insulator Technologies Method of fabricating an epitaxially grown layer
EP1664115A2 (en) * 2003-08-01 2006-06-07 Genentech, Inc. Antibody cdr polypeptide sequences with restricted diversity
US7785830B2 (en) * 2003-08-13 2010-08-31 Sandoz Ag Expression vectors, transformed host cells and fermentation process for the production of recombinant polypeptides
ES2391457T3 (en) * 2003-08-13 2012-11-26 Sandoz Ag Procedure for purification of recombinant polypeptides
GB0319601D0 (en) * 2003-08-20 2003-09-24 Sandoz Ag Production process
CA2534959A1 (en) * 2003-09-05 2005-03-31 Genentech, Inc. Antibodies with altered effector functions
US20070148170A1 (en) * 2005-10-03 2007-06-28 Desjarlais John R Fc Variants With Optimized Fc Receptor Binding Properties
US8101720B2 (en) * 2004-10-21 2012-01-24 Xencor, Inc. Immunoglobulin insertions, deletions and substitutions
US9714282B2 (en) 2003-09-26 2017-07-25 Xencor, Inc. Optimized Fc variants and methods for their generation
KR100570422B1 (en) * 2003-10-16 2006-04-11 한미약품 주식회사 Expression vectors for secreting and producing antibody fragments using E. coli secretion sequences and methods for mass production of antibody fragments using the same
ATE498691T1 (en) 2003-10-21 2011-03-15 Cargill Inc PRODUCTION OF MONATIN AND MONATIN PRECURSORS
NZ596984A (en) 2003-11-17 2013-10-25 Genentech Inc Compositions and methods for the treatment of tumor of hematopoietic origin
WO2005063816A2 (en) 2003-12-19 2005-07-14 Genentech, Inc. Monovalent antibody fragments useful as therapeutics
WO2005077981A2 (en) * 2003-12-22 2005-08-25 Xencor, Inc. Fc POLYPEPTIDES WITH NOVEL Fc LIGAND BINDING SITES
CA2560074A1 (en) * 2004-03-18 2005-11-03 Board Of Regents, The University Of Texas System Combinatorial protein library screening by periplasmic expression
EP2053062A1 (en) * 2004-03-24 2009-04-29 Xencor, Inc. Immunoglobin variants outside the Fc region
CA2561686C (en) * 2004-03-31 2014-12-02 Genentech, Inc. Humanized anti-tgf-beta antibodies
JP2007532681A (en) * 2004-04-16 2007-11-15 ジェネンテック・インコーポレーテッド Methods for increasing B cell depletion
US20150017671A1 (en) 2004-04-16 2015-01-15 Yaping Shou Methods for detecting lp-pla2 activity and inhibition of lp-pla2 activity
US20150010550A1 (en) 2004-07-15 2015-01-08 Xencor, Inc. OPTIMIZED Fc VARIANTS
US8765488B2 (en) * 2004-07-22 2014-07-01 The Board Of Trustees Of The University Of Illinois Sensors employing single-walled carbon nanotubes
WO2006022664A2 (en) 2004-07-30 2006-03-02 Cargill Incorporated Alanine 2, 3 aminomutases
US7476724B2 (en) * 2004-08-05 2009-01-13 Genentech, Inc. Humanized anti-cmet antibodies
CA2577082A1 (en) * 2004-09-02 2006-03-16 Genentech, Inc. Heteromultimeric molecules
SI1784426T1 (en) 2004-09-03 2012-03-30 Genentech Inc Humanized anti-beta7 antagonists and uses therefor
US20060074225A1 (en) * 2004-09-14 2006-04-06 Xencor, Inc. Monomeric immunoglobulin Fc domains
AU2005295640B2 (en) 2004-10-15 2011-07-28 The Government Of The United States Of America As Represented By The Secretary Of The Department Of Health And Human Services Multi-domain amphipathic helical peptides and methods of their use
EP1814918A1 (en) * 2004-10-29 2007-08-08 Elusys Therapeutics, Inc. Use of cr1-binding molecules in clearance and induction of immune responses
US8802820B2 (en) 2004-11-12 2014-08-12 Xencor, Inc. Fc variants with altered binding to FcRn
US20070135620A1 (en) * 2004-11-12 2007-06-14 Xencor, Inc. Fc variants with altered binding to FcRn
US8367805B2 (en) 2004-11-12 2013-02-05 Xencor, Inc. Fc variants with altered binding to FcRn
BRPI0517837A (en) 2004-11-12 2008-10-21 Xencor Inc fc variants with altered link to fcrn
US8546543B2 (en) 2004-11-12 2013-10-01 Xencor, Inc. Fc variants that extend antibody half-life
GB0425537D0 (en) * 2004-11-19 2004-12-22 Celltech R&D Ltd Process for obtaining antibodies
GB0425534D0 (en) * 2004-11-19 2004-12-22 Celltech R&D Ltd Process for obtaining antibodies
ATE462726T1 (en) 2005-01-07 2010-04-15 Diadexus Inc OVR110 ANTIBODY COMPOSITIONS AND METHODS OF USE THEREOF
WO2006076594A2 (en) * 2005-01-12 2006-07-20 Xencor, Inc. Antibodies and fc fusion proteins with altered immunogenicity
MX2007008768A (en) 2005-01-21 2007-10-19 Genentech Inc Fixed dosing of her antibodies.
JP2008530123A (en) * 2005-02-09 2008-08-07 ジェネンテック・インコーポレーテッド Inhibition of HER2 shedding using matrix metalloprotease antagonists
US9707302B2 (en) 2013-07-23 2017-07-18 Immunomedics, Inc. Combining anti-HLA-DR or anti-Trop-2 antibodies with microtubule inhibitors, PARP inhibitors, bruton kinase inhibitors or phosphoinositide 3-kinase inhibitors significantly improves therapeutic outcome in cancer
US10058621B2 (en) 2015-06-25 2018-08-28 Immunomedics, Inc. Combination therapy with anti-HLA-DR antibodies and kinase inhibitors in hematopoietic cancers
TW200642695A (en) * 2005-03-08 2006-12-16 Genentech Inc Methods for identifying tumors responsive to treatment with her dimerization inhibitors (HDIs)
JP2006316040A (en) 2005-05-13 2006-11-24 Genentech Inc Herceptin(r) adjuvant treatment
WO2007024649A2 (en) * 2005-08-19 2007-03-01 X-Cell Medical Incorporated Methods of treating and preventing acute myocardial infarction
US7422899B2 (en) * 2005-10-05 2008-09-09 Biogen Idec Ma Inc. Antibodies to the human prolactin receptor
CA2625998C (en) * 2005-10-06 2015-12-01 Xencor, Inc. Optimized anti-cd30 antibodies
EP2465870A1 (en) 2005-11-07 2012-06-20 Genentech, Inc. Binding polypeptides with diversified and consensus VH/VL hypervariable sequences
US20070161089A1 (en) * 2005-11-08 2007-07-12 Genentech, Inc. Method of Producing Pan-Specific Antibodies
US8957187B2 (en) * 2005-12-02 2015-02-17 Genentech, Inc. Binding polypeptides and uses thereof
EP1954719A2 (en) 2005-12-02 2008-08-13 Genentech Inc. Compositions and methods for the treatment of diseases and disorders associated with cytokine signaling involving antibodies that bind to il-22 and il-22r
RU2008128134A (en) 2005-12-15 2010-01-20 Дженентек, Инк. (Us) METHODS AND COMPOSITIONS FOR OBJECTIVING POLYUBIKVITIN
WO2007130697A2 (en) 2006-01-05 2007-11-15 Genentech, Inc. Anti-ephb4 antibodies and methods using same
DE102006004871A1 (en) * 2006-02-02 2007-08-09 Wacker Chemie Ag Microbial strain useful for producing recombinant proteins comprises a gene coding for a recombinant protein and a gene that codes for a host protein and is mutated to reduce expression of the host protein
AR059851A1 (en) 2006-03-16 2008-04-30 Genentech Inc ANTIBODIES OF EGFL7 AND METHODS OF USE
EP2614839A3 (en) 2006-04-05 2015-01-28 Genentech, Inc. Method for using BOC/CDO to modulate hedgehog signaling
HRP20140172T1 (en) 2006-05-30 2014-03-28 Genentech, Inc. ANTI-ANTIBODIES AND IMMUNOCONSULATES AS THEIR USES
US20080206142A1 (en) * 2006-06-16 2008-08-28 Lipid Sciences, Inc. Novel Peptides That Promote Lipid Efflux
EP2041174A2 (en) * 2006-06-16 2009-04-01 Lipid Sciences, Inc. Novel peptides that promote lipid efflux
US20080227686A1 (en) * 2006-06-16 2008-09-18 Lipid Sciences, Inc. Novel Peptides that Promote Lipid Efflux
ME01786B (en) * 2006-08-14 2014-09-20 Xencor Inc Optimized antibodies that target cd19
CA2660795C (en) * 2006-09-18 2014-11-18 Xencor, Inc. Optimized antibodies that target hm1.24
EP1903115B1 (en) * 2006-09-22 2011-03-09 Wacker Chemie AG Process for the fermentative production of antibodies
US20080138284A1 (en) * 2006-09-26 2008-06-12 Lipid Sciences, Inc. Novel Peptides That Promote Lipid Efflux
JP5298021B2 (en) 2006-10-12 2013-09-25 ジェネンテック, インコーポレイテッド Antibodies against lymphotoxin-α
MX2009003938A (en) 2006-10-27 2009-04-24 Genentech Inc Antibodies and immunoconjugates and uses therefor.
EP2094282A4 (en) * 2006-11-15 2010-05-05 Functional Genetics Inc Anti-tsg101 antibodies and their uses for treatment of viral infections
AU2007325283B2 (en) 2006-11-27 2012-08-30 Diadexus, Inc. Ovr110 antibody compositions and methods of use
US20100119526A1 (en) * 2007-01-26 2010-05-13 Bioinvent International Ab DLL4 Signaling Inhibitors and Uses Thereof
JP2010518115A (en) 2007-02-09 2010-05-27 ジェネンテック, インコーポレイテッド Anti-Robo4 antibodies and uses therefor
NZ578980A (en) 2007-02-22 2012-03-30 Genentech Inc Methods for detecting inflammatory bowel disease
US7960139B2 (en) 2007-03-23 2011-06-14 Academia Sinica Alkynyl sugar analogs for the labeling and visualization of glycoconjugates in cells
US20080260738A1 (en) * 2007-04-18 2008-10-23 Moore Margaret D Single chain fc, methods of making and methods of treatment
US20100113355A1 (en) 2007-04-27 2010-05-06 Naresh Chennamsetty Novel antibody molecules and nucleic acids binding to fungal stress protein hsp90
US9551033B2 (en) * 2007-06-08 2017-01-24 Genentech, Inc. Gene expression markers of tumor resistance to HER2 inhibitor treatment
ES2417148T3 (en) 2007-06-08 2013-08-06 Genentech, Inc. Gene expression markers of tumor resistance to HER2 inhibitor treatment
US7580304B2 (en) * 2007-06-15 2009-08-25 United Memories, Inc. Multiple bus charge sharing
MY150531A (en) 2007-07-16 2014-01-30 Genentech Inc Anti-cd79b antibodies and immunoconjugates and methods of use
RU2557319C2 (en) 2007-07-16 2015-07-20 Дженентек, Инк. HUMANISED ANTIBODIES AGAINST CD79b AND IMMUNOCONJUGATES AND METHODS OF APPLICATION
ES2687808T3 (en) 2007-09-26 2018-10-29 Chugai Seiyaku Kabushiki Kaisha Constant region of modified antibody
CL2008003218A1 (en) 2007-10-30 2009-03-06 Genentech Inc Method for the purification of an antibody from a composition comprising the antibody and at least one contaminant.
HUE038588T2 (en) 2007-11-07 2018-10-29 Genentech Inc For use in the treatment of IL-22 microbial disorders
CN102089324B (en) 2007-11-12 2014-04-16 特罗科隆科学有限公司 Compositions and methods for treating and diagnosing influenza
US20110033476A1 (en) * 2007-11-12 2011-02-10 Theraclone Sciences Inc. Compositions and methods for the therapy and diagnosis of influenza
TWI580694B (en) 2007-11-30 2017-05-01 建南德克公司 Anti-vegf antibodies
US20090162359A1 (en) 2007-12-21 2009-06-25 Christian Klein Bivalent, bispecific antibodies
US8242247B2 (en) * 2007-12-21 2012-08-14 Hoffmann-La Roche Inc. Bivalent, bispecific antibodies
US9266967B2 (en) 2007-12-21 2016-02-23 Hoffmann-La Roche, Inc. Bivalent, bispecific antibodies
ES2742268T3 (en) 2007-12-26 2020-02-13 Xencor Inc Fc variants with altered FcRn binding
CA2709399C (en) 2007-12-28 2021-01-19 Genentech, Inc. Anti-hedgehog antibodies
DK2657253T3 (en) 2008-01-31 2017-10-09 Genentech Inc Anti-CD79b antibodies and immune conjugates and methods of use
US12492253B1 (en) 2008-02-25 2025-12-09 Xencor, Inc. Anti-human C5 antibodies
US20090226455A1 (en) * 2008-03-06 2009-09-10 Genentech, Inc. Combination therapy with c-met and her antagonists
ES2542308T3 (en) * 2008-03-10 2015-08-04 Theraclone Sciences, Inc. Compositions and methods for the therapy and diagnosis of cytomegalovirus infections
RU2607569C2 (en) * 2008-03-31 2017-01-10 Дженентек, Инк. Compositions and methods for treating and diagnosing asthma
CR20170001A (en) 2008-04-28 2017-08-10 Genentech Inc ANTI FACTOR D HUMANIZED ANTIBODIES
US8680020B2 (en) 2008-07-15 2014-03-25 Academia Sinica Glycan arrays on PTFE-like aluminum coated glass slides and related methods
US8268314B2 (en) 2008-10-08 2012-09-18 Hoffmann-La Roche Inc. Bispecific anti-VEGF/anti-ANG-2 antibodies
WO2010077634A1 (en) 2008-12-09 2010-07-08 Genentech, Inc. Anti-pd-l1 antibodies and their use to enhance t-cell function
AU2009335788A1 (en) 2008-12-17 2011-07-07 Genentech, Inc. Hepatitis C virus combination therapy
WO2010078376A2 (en) 2008-12-30 2010-07-08 Ventana Medical Systems, Inc. Fc-specific polymer-conjugated antibodies and their diagnostic use
HRP20161194T1 (en) 2009-03-10 2016-11-04 Biogen Ma Inc. ANTI-BCMA ANTIBODIES
SI3260136T1 (en) 2009-03-17 2021-05-31 Theraclone Sciences, Inc. Human immunodeficiency virus (hiv) -neutralizing antibodies
CN102356092B (en) 2009-03-20 2014-11-05 霍夫曼-拉罗奇有限公司 Bispecific anti-HER antibodies
AU2010229994B2 (en) 2009-03-25 2016-08-18 Genentech, Inc. Anti-FGFR3 antibodies and methods using same
SG174992A1 (en) 2009-04-01 2011-11-28 Genentech Inc Anti-fcrh5 antibodies and immunoconjugates and methods of use
BRPI1014089A2 (en) 2009-04-02 2016-04-19 Roche Glycart Ag multispecific antibodies comprising full length antibodies and single chain fab fragments
DK2417156T3 (en) 2009-04-07 2015-03-02 Roche Glycart Ag Trivalent, bispecific antibodies
WO2010118243A2 (en) 2009-04-08 2010-10-14 Genentech, Inc. Use of il-27 antagonists to treat lupus
US8609101B2 (en) * 2009-04-23 2013-12-17 Theraclone Sciences, Inc. Granulocyte-macrophage colony-stimulating factor (GM-CSF) neutralizing antibodies
EP2432803A2 (en) 2009-05-20 2012-03-28 Theraclone Sciences, Inc. Compositions and methods for the therapy and diagnosis of influenza
SG10201507044PA (en) 2009-05-29 2015-10-29 Hoffmann La Roche Modulators for her2 signaling in her2 expressing patients with gastric cancer
US9676845B2 (en) 2009-06-16 2017-06-13 Hoffmann-La Roche, Inc. Bispecific antigen binding proteins
PL3354277T3 (en) 2009-07-28 2021-12-13 Takeda Pharmaceutical Company Limited Compositions and methods for treating gaucher disease
CN102471383B (en) 2009-08-04 2014-09-17 霍夫曼-拉罗奇有限公司 Beta Cell Marker Antibody
US9321823B2 (en) 2009-09-02 2016-04-26 Genentech, Inc. Mutant smoothened and methods of using the same
US9493578B2 (en) 2009-09-02 2016-11-15 Xencor, Inc. Compositions and methods for simultaneous bivalent and monovalent co-engagement of antigens
CA2781519A1 (en) 2009-09-16 2011-03-24 Genentech, Inc. Coiled coil and/or tether containing protein complexes and uses thereof
JP5889794B2 (en) 2009-10-19 2016-03-22 ジェネンテック, インコーポレイテッド Regulation of hepatocyte growth factor activator
US20110206704A1 (en) * 2009-10-19 2011-08-25 Genentech, Inc. Methods and compositions for modulating hepatocyte growth factor activator
CA2778442A1 (en) 2009-10-22 2011-04-28 Genentech, Inc. Methods and compositions for modulating hepsin activation of macrophage-stimulating protein
WO2011050188A1 (en) 2009-10-22 2011-04-28 Genentech, Inc. Anti-hepsin antibodies and methods using same
WO2011056497A1 (en) 2009-10-26 2011-05-12 Genentech, Inc. Activin receptor type iib compositions and methods of use
WO2011056502A1 (en) 2009-10-26 2011-05-12 Genentech, Inc. Bone morphogenetic protein receptor type ii compositions and methods of use
WO2011056494A1 (en) 2009-10-26 2011-05-12 Genentech, Inc. Activin receptor-like kinase-1 antagonist and vegfr3 antagonist combinations
TWI600760B (en) 2009-11-05 2017-10-01 建南德克公司 Method and composition for secreting heterologous polypeptide
JP5698254B2 (en) 2009-11-26 2015-04-08 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Marker protein for type 2 diabetes
WO2011066511A1 (en) 2009-11-30 2011-06-03 The U.S.A., As Represented By The Secretary Department Of Health And Human Services Synthetic apoa-1 mimetic amphipathic peptides and methods of use thereof
AU2010324686B2 (en) 2009-11-30 2016-05-19 Genentech, Inc. Antibodies for treating and diagnosing tumors expressing SLC34A2 (TAT211 = SEQID2 )
US11377485B2 (en) 2009-12-02 2022-07-05 Academia Sinica Methods for modifying human antibodies by glycan engineering
US10087236B2 (en) 2009-12-02 2018-10-02 Academia Sinica Methods for modifying human antibodies by glycan engineering
AR078377A1 (en) 2009-12-11 2011-11-02 Genentech Inc ANTI-VEGF-C ANTIBODIES (ISOLATED ANTI-VASCULAR ENDOTELIAL GROWTH FACTOR C) AND ITS METHODS OF USE
ES2765657T3 (en) 2009-12-21 2020-06-10 Hoffmann La Roche Pharmaceutical formulation of bevacizumab
EP2516465B1 (en) 2009-12-23 2016-05-18 F.Hoffmann-La Roche Ag Anti-bv8 antibodies and uses thereof
WO2011091078A2 (en) 2010-01-19 2011-07-28 Xencor, Inc. Antibody fc variants with enhanced complement activity
CA2784211C (en) 2010-02-18 2019-12-24 Genentech, Inc. Neuregulin antagonists and use thereof in treating cancer
MX2012009215A (en) 2010-02-23 2012-11-23 Genentech Inc Compositions and methods for the diagnosis and treatment of tumor.
AU2011220536B2 (en) 2010-02-26 2012-05-24 Life Technologies Corporation Modified proteins and methods of making and using same
SG184033A1 (en) 2010-03-24 2012-10-30 Genentech Inc Anti-lrp6 antibodies
TWI426920B (en) 2010-03-26 2014-02-21 Hoffmann La Roche Bispecific, bivalent anti-VEGF/anti-ANG-2 antibody
TW201138821A (en) 2010-03-26 2011-11-16 Roche Glycart Ag Bispecific antibodies
US10338069B2 (en) 2010-04-12 2019-07-02 Academia Sinica Glycan arrays for high throughput screening of viruses
WO2011133931A1 (en) 2010-04-22 2011-10-27 Genentech, Inc. Use of il-27 antagonists for treating inflammatory bowel disease
DK2560683T4 (en) 2010-04-23 2022-08-29 Hoffmann La Roche PRODUCTION OF HETEROMULTIMERIC PROTEINS
MX342239B (en) 2010-05-03 2016-09-21 Genentech Inc * Compositions and methods for the diagnosis and treatment of tumor.
AU2011250970B2 (en) 2010-05-10 2016-12-15 Sinica, Academia Zanamivir phosphonate congeners with anti-influenza activity and determining oseltamivir susceptibility of influenza viruses
WO2011146568A1 (en) 2010-05-19 2011-11-24 Genentech, Inc. Predicting response to a her inhibitor
WO2011147834A1 (en) 2010-05-26 2011-12-01 Roche Glycart Ag Antibodies against cd19 and uses thereof
RU2613886C2 (en) 2010-06-03 2017-03-21 Дженентек, Инк. Antibodies and immunoconjugates rendered by immuno-positron emission tomography, methods of application
WO2011159980A1 (en) 2010-06-18 2011-12-22 Genentech, Inc. Anti-axl antibodies and methods of use
WO2011161119A1 (en) 2010-06-22 2011-12-29 F. Hoffmann-La Roche Ag Antibodies against insulin-like growth factor i receptor and uses thereof
WO2011161189A1 (en) 2010-06-24 2011-12-29 F. Hoffmann-La Roche Ag Anti-hepsin antibodies and methods of use
RU2571226C2 (en) 2010-07-09 2015-12-20 Дженентек, Инк. Antibodies against neyropilin and methods of their application
WO2012007495A1 (en) 2010-07-15 2012-01-19 F. Hoffmann-La Roche Ag Antibodies specifically binding to human tslpr and methods of use
WO2012010582A1 (en) 2010-07-21 2012-01-26 Roche Glycart Ag Anti-cxcr5 antibodies and methods of use
KR20130049196A (en) 2010-08-05 2013-05-13 에프. 호프만-라 로슈 아게 Anti-mhc antibody anti-viral cytokine fusion protein
AU2011289275A1 (en) 2010-08-12 2013-02-21 Theraclone Sciences, Inc. Anti-hemagglutinin antibody compositions and methods of use thereof
CA2806640A1 (en) 2010-08-13 2012-02-16 Roche Glycart Ag Anti-tenascin-c a2 antibodies and methods of use
PL2603530T3 (en) 2010-08-13 2018-03-30 Roche Glycart Ag Anti-fap antibodies and methods of use
CA2807278A1 (en) 2010-08-24 2012-03-01 F. Hoffmann - La Roche Ag Bispecific antibodies comprising a disulfide stabilized - fv fragment
CA2805054A1 (en) 2010-08-25 2012-03-01 F. Hoffmann-La Roche Ag Antibodies against il-18r1 and uses thereof
EP2611465A4 (en) 2010-08-31 2014-06-04 Theraclone Sciences Inc NEUTRALIZING ANTI-VIRUS ANTIBODIES FOR HUMAN IMMUNODEFICIENCY (HIV)
EP2625197B1 (en) 2010-10-05 2016-06-29 Genentech, Inc. Mutant smoothened and methods of using the same
US20130330350A1 (en) * 2010-11-09 2013-12-12 Medimmune, Llc Antibody Scaffold For Homogenous Conjugation
AR083819A1 (en) 2010-11-10 2013-03-27 Genentech Inc AN ANTIBODY THAT JOINS BACE1 (ENZYME 1 OF DISSOLATION OF PROTEIN PRECURSORY OF THE SITE AMILOID), METHODS AND COMPOSITIONS FOR IMMUNOTHERAPY FOR NEURAL DISEASE
US20130245233A1 (en) 2010-11-24 2013-09-19 Ming Lei Multispecific Molecules
KR101615474B1 (en) 2010-12-16 2016-04-25 제넨테크, 인크. Diagnosis and treatments relating to th2 inhibition
UA115641C2 (en) 2010-12-20 2017-11-27 Дженентек, Інк. DETERMINED ANTIBODY Binds Mesothelin and Immunoconjugate Containing It
WO2012088313A1 (en) 2010-12-22 2012-06-28 Genentech, Inc. Anti-pcsk9 antibodies and methods of use
WO2012085111A1 (en) 2010-12-23 2012-06-28 F. Hoffmann-La Roche Ag Polypeptide-polynucleotide-complex and its use in targeted effector moiety delivery
WO2012092539A2 (en) 2010-12-31 2012-07-05 Takeda Pharmaceutical Company Limited Antibodies to dll4 and uses thereof
CA2822481A1 (en) 2011-01-03 2012-07-12 F. Hoffmann-La Roche Ag A pharmaceutical composition of a complex of an anti-dig antibody and digoxigenin that is conjugated to a peptide
JP6161540B2 (en) 2011-02-04 2017-07-12 ジェネンテック, インコーポレイテッド Fc variants and methods for producing them
US10689447B2 (en) 2011-02-04 2020-06-23 Genentech, Inc. Fc variants and methods for their production
CA2827301A1 (en) 2011-02-14 2012-08-23 Theraclone Sciences, Inc. Compositions and methods for the therapy and diagnosis of influenza
JP5764677B2 (en) 2011-02-28 2015-08-19 エフ・ホフマン−ラ・ロシュ・アクチェンゲゼルシャフト Antigen binding protein
CN103403025B (en) 2011-02-28 2016-10-12 弗·哈夫曼-拉罗切有限公司 Monovalent antigen binding protein
AU2012229188A1 (en) 2011-03-15 2013-09-26 Theraclone Sciences, Inc. Compositions and methods for the therapy and diagnosis of influenza
KR20160044598A (en) 2011-03-29 2016-04-25 로슈 글리카트 아게 Antibody fc variants
WO2012138975A1 (en) 2011-04-07 2012-10-11 Genentech, Inc. Anti-fgfr4 antibodies and methods of use
BR112013026306A2 (en) 2011-04-20 2017-09-05 Roche Glycart Ag METHOD AND CONSTRUCTS FOR PASSING THE pH GRADE OF THE BLOOD-BRAIN BARRIER
WO2012146630A1 (en) 2011-04-29 2012-11-01 F. Hoffmann-La Roche Ag N-terminal acylated polypeptides, methods for their production and uses thereof
CA2833212C (en) 2011-05-12 2020-06-09 Genentech, Inc. Multiple reaction monitoring lc-ms/ms method to detect therapeutic antibodies in animal samples using framework signature peptides
DK2710035T3 (en) 2011-05-16 2017-06-19 Hoffmann La Roche FGFR1 agonists and methods of use
MX343117B (en) 2011-06-15 2016-10-25 Hoffmann La Roche Anti-human epo receptor antibodies and methods of use.
RU2013158594A (en) 2011-06-15 2015-07-20 Ф. Хоффманн-Ля Рош Аг ANTIBODY BINDING WITH ABCA1 POLYPEPTIDE
ES2667864T3 (en) 2011-06-22 2018-05-14 F. Hoffmann-La Roche Ag Removal of target cells by specific cytotoxic T lymphocytes from circulating viruses using complexes comprising MHC class I
AU2012275233A1 (en) 2011-06-30 2013-11-28 Genentech, Inc. Anti-c-met antibody formulations
JP2013040160A (en) 2011-07-01 2013-02-28 Genentech Inc Use of anti-cd83 agonist antibody for treating autoimmune disease
WO2013019722A1 (en) 2011-08-01 2013-02-07 Massachusetts Institute Of Technology Photoluminescent nanostructure-based sensors
MX2014001766A (en) 2011-08-17 2014-05-01 Genentech Inc Neuregulin antibodies and uses thereof.
JP2014534806A (en) 2011-08-23 2014-12-25 ロシュ グリクアート アーゲー Anti-MCSP antibody
WO2013033069A1 (en) 2011-08-30 2013-03-07 Theraclone Sciences, Inc. Human rhinovirus (hrv) antibodies
RU2014109395A (en) 2011-09-15 2015-10-20 Дженентек, Инк. WAYS TO STIMULATE DIFFERENTIATION
EP2758435A1 (en) 2011-09-23 2014-07-30 Roche Glycart AG Bispecific anti-egfr/anti igf-1r antibodies
ES2971444T3 (en) 2011-10-11 2024-06-05 F Hoffmann Lar Roche Ag Improved assembly of bispecific antibodies
PE20141562A1 (en) 2011-10-14 2014-11-12 Genentech Inc ANTI-HTRA1 ANTIBODIES AND METHODS OF USE
CA2850836A1 (en) 2011-10-15 2013-04-18 Genentech, Inc. Methods of using scd1 antagonists
WO2013059531A1 (en) 2011-10-20 2013-04-25 Genentech, Inc. Anti-gcgr antibodies and uses thereof
US9327023B2 (en) 2011-10-25 2016-05-03 The Regents Of The University Of Michigan HER2 targeting agent treatment in non-HER2-amplified cancers having HER2 expressing cancer stem cells
KR20140090997A (en) 2011-10-26 2014-07-18 더 리전트 오브 더 유니버시티 오브 캘리포니아 Cd44 monoclonal antibody for the treatment of b-cell chronic lymphocytic leukemia and other hematological maliganacies
CA2850034A1 (en) 2011-10-28 2013-05-02 Genentech, Inc. Therapeutic combinations and methods of treating melanoma
HK1201857A1 (en) 2011-10-31 2015-09-11 F. Hoffmann-La Roche Ag Antibody formulations
AU2012340826A1 (en) 2011-11-21 2014-05-29 Genentech, Inc. Purification of anti-c-met antibodies
EP2786151B1 (en) 2011-11-29 2019-07-03 F.Hoffmann-La Roche Ag Methods for prostate cancer analysis
SG11201402510TA (en) 2011-11-30 2014-06-27 Genentech Inc Erbb3 mutations in cancer
CN110078831A (en) 2011-12-01 2019-08-02 圆祥生命科技股份有限公司 The protein inhibitor and its application method of complement and VEGF pathway
EP2788020A4 (en) 2011-12-05 2015-04-29 Immunomedics Inc Therapeutic use of anti-cd22 antibodies for inducing trogocytosis
US9757458B2 (en) 2011-12-05 2017-09-12 Immunomedics, Inc. Crosslinking of CD22 by epratuzumab triggers BCR signaling and caspase-dependent apoptosis in hematopoietic cancer cells
US20140335084A1 (en) 2011-12-06 2014-11-13 Hoffmann-La Roche Inc. Antibody formulation
WO2013083810A1 (en) 2011-12-09 2013-06-13 F. Hoffmann-La Roche Ag Identification of non-responders to her2 inhibitors
CA3149402A1 (en) 2011-12-22 2013-06-27 F. Hoffman-La Roche Ag Expression vector element combinations, novel production cell generation methods and their use for the recombinant production of polypeptides
EP2794662A1 (en) 2011-12-22 2014-10-29 F.Hoffmann-La Roche Ag Full length antibody display system for eukaryotic cells and its use
WO2013091903A1 (en) 2011-12-22 2013-06-27 Novo Nordisk A/S Anti-crac channel antibodies
EP3816284A1 (en) 2011-12-22 2021-05-05 F. Hoffmann-La Roche AG Expression vector for antibody production in eukaryotic cells
WO2013096791A1 (en) 2011-12-23 2013-06-27 Genentech, Inc. Process for making high concentration protein formulations
JP2015509091A (en) 2012-01-09 2015-03-26 ザ スクリプス リサーチ インスティテュート Humanized antibody
CA2863224A1 (en) 2012-01-09 2013-07-18 The Scripps Research Institute Ultralong complementarity determining regions and uses thereof
NZ626520A (en) 2012-01-18 2016-09-30 Genentech Inc Anti-lrp5 antibodies and methods of use
BR112014017626A2 (en) 2012-01-18 2018-05-22 Genentech Inc methods for treating a disease or dysfunction, methods for identifying an individual, method for predicting whether an individual with a disease or dysfunction is more or less likely to develop treatment toxicity, method for determining whether an individual with a disease or dysfunction should continue or suspend treatment comprising an fgf19 modulator, therapeutic efficacy optimization method and assay method.
JP2015506950A (en) 2012-01-31 2015-03-05 ジェネンテック, インコーポレイテッド Anti-IG-EM1 'antibody and method using the same
WO2013119966A2 (en) 2012-02-10 2013-08-15 Genentech, Inc. Single-chain antibodies and other heteromultimers
EP2812350B1 (en) 2012-02-11 2019-04-03 F.Hoffmann-La Roche Ag R-spondin translocations and methods using the same
SI2814587T1 (en) 2012-02-15 2018-08-31 F. Hoffmann-La Roche Ag Fc-receptor based affinity chromatography
NZ626955A (en) 2012-03-08 2016-01-29 Hoffmann La Roche Abeta antibody formulation
JP2015514710A (en) 2012-03-27 2015-05-21 ジェネンテック, インコーポレイテッド Diagnosis and treatment of HER3 inhibitors
KR20140138971A (en) 2012-03-28 2014-12-04 제넨테크, 인크. Anti-hcmv idiotypic antibodies and uses thereof
AR090549A1 (en) 2012-03-30 2014-11-19 Genentech Inc ANTI-LGR5 AND IMMUNOCATE PLAYERS
US10130714B2 (en) 2012-04-14 2018-11-20 Academia Sinica Enhanced anti-influenza agents conjugated with anti-inflammatory activity
EP2839011B1 (en) 2012-04-17 2016-09-14 F. Hoffmann-La Roche AG Method for the expression of polypeptides using modified nucleic acids
AR090903A1 (en) 2012-05-01 2014-12-17 Genentech Inc ANTI-PMEL ANTIBODIES AND IMMUNOCADES17
WO2013170191A1 (en) 2012-05-11 2013-11-14 Genentech, Inc. Methods of using antagonists of nad biosynthesis from nicotinamide
KR101843614B1 (en) 2012-05-23 2018-03-29 제넨테크, 인크. Selection method for therapeutic agents
EP3508497A1 (en) 2012-05-24 2019-07-10 Mountgate Group Limited Compositions and methods related to prevention and treatment of rabies infection
RU2015101113A (en) 2012-06-15 2016-08-10 Дженентек, Инк. ANTIBODIES AGAINST PCSK9, COMPOSITIONS, DOSES AND METHODS OF APPLICATION
WO2013192131A1 (en) 2012-06-21 2013-12-27 Indiana University Research And Technology Corporation Incretin receptor ligand polypeptide fc-region fusion polypeptides and conjugates with altered fc-effector function
RU2639287C2 (en) 2012-06-27 2017-12-20 Ф. Хоффманн-Ля Рош Аг Method for selection and obtaining of highly selective and multispecific targeting groups with specified properties, including at least two different binding groups, and their applications
RU2644263C2 (en) 2012-06-27 2018-02-08 Ф. Хоффманн-Ля Рош Аг Method for selection and production of selective and multispecific therapeutic molecules with specified properties, including, at least two, different target groups, and their applications
KR20150030744A (en) 2012-06-27 2015-03-20 에프. 호프만-라 로슈 아게 Method for making antibody fc-region conjugates comprising at least one binding entity that specifically binds to a target and uses thereof
KR102090849B1 (en) 2012-07-04 2020-03-19 에프. 호프만-라 로슈 아게 Covalently linked antigen-antibody conjugates
EP3339328A1 (en) 2012-07-04 2018-06-27 F. Hoffmann-La Roche AG Anti-biotin antibodies and methods of use
EP2869837B1 (en) 2012-07-04 2016-09-14 F. Hoffmann-La Roche AG Anti-theophylline antibodies and methods of use
CN104428416B (en) 2012-07-05 2019-01-29 弗·哈夫曼-拉罗切有限公司 expression and secretion system
CA2873884A1 (en) 2012-07-09 2014-01-16 Genentech, Inc. Immunoconjugates comprising anti-cd79b antibodies
CA2873889A1 (en) 2012-07-09 2014-01-16 Genentech, Inc. Anti-cd22 antibodies and immunoconjugates
EP2869847B1 (en) 2012-07-09 2017-12-06 Genentech, Inc. Immunoconjugates comprising anti-cd79b antibodies
PE20150325A1 (en) 2012-07-09 2015-03-05 Genentech Inc IMMUNOCONJUGATES INCLUDING ANTI-CD22 ANTIBODIES AND DERIVATIVES OF NEMORUBICIN.
SG11201408538PA (en) 2012-07-13 2015-02-27 Roche Glycart Ag Bispecific anti-vegf/anti-ang-2 antibodies and their use in the treatment of ocular vascular diseases
KR20150038511A (en) 2012-08-02 2015-04-08 에프. 호프만-라 로슈 아게 METHOD FOR PRODUCING SOLUBLE FcR AS Fc-FUSION WITH INERT IMMUNOGLOBULIN Fc-REGION AND USES THEREOF
EP2885311B1 (en) 2012-08-18 2020-01-01 Academia Sinica Cell-permeable probes for identification and imaging of sialidases
CA2883168A1 (en) 2012-08-21 2014-02-27 Academia Sinica Benzocyclooctyne compounds and uses thereof
WO2014041072A1 (en) 2012-09-14 2014-03-20 F. Hoffmann-La Roche Ag Method for the production and selection of molecules comprising at least two different entities and uses thereof
WO2014047311A1 (en) 2012-09-19 2014-03-27 Genentech, Inc. Methods and compositions for preventing norleucine misincorporation into proteins
US9725512B2 (en) 2012-11-08 2017-08-08 Hoffmann-La Roche Inc. HER3 antibodies binding to the beta-hairpin of HER3
SG11201503734UA (en) 2012-11-13 2015-06-29 Genentech Inc Anti-hemagglutinin antibodies and methods of use
BR112015012644A2 (en) 2012-11-30 2017-12-19 Hoffmann La Roche method for determining a cancer patient's need, cancer treatment method, pharmaceutical composition, use of a nucleic acid or antibody and kit;
US9353150B2 (en) 2012-12-04 2016-05-31 Massachusetts Institute Of Technology Substituted pyrazino[1′,2′:1 ,5]pyrrolo[2,3-b]-indole-1,4-diones for cancer treatment
US10744129B2 (en) 2012-12-13 2020-08-18 Immunomedics, Inc. Therapy of small-cell lung cancer (SCLC) with a topoisomerase-I inhibiting antibody-drug conjugate (ADC) targeting Trop-2
US12310958B2 (en) 2012-12-13 2025-05-27 Immunomedics, Inc. Antibody-drug conjugates and uses thereof
US10413539B2 (en) 2012-12-13 2019-09-17 Immunomedics, Inc. Therapy for metastatic urothelial cancer with the antibody-drug conjugate, sacituzumab govitecan (IMMU-132)
US9492566B2 (en) 2012-12-13 2016-11-15 Immunomedics, Inc. Antibody-drug conjugates and uses thereof
US9931417B2 (en) 2012-12-13 2018-04-03 Immunomedics, Inc. Antibody-SN-38 immunoconjugates with a CL2A linker
ES2819573T3 (en) 2012-12-13 2021-04-16 Immunomedics Inc Method for Producing Antibody-SN-38 Immunoconjugates with a CL2A Linker
PL2900277T3 (en) 2012-12-13 2022-05-16 Immunomedics, Inc. DOSAGE OF ANTIBODY IMMUNOCONJUGATES AND SN-38 TO IMPROVE EFFECTIVENESS AND REDUCE TOXICITY
US10206918B2 (en) 2012-12-13 2019-02-19 Immunomedics, Inc. Efficacy of anti-HLA-DR antiboddy drug conjugate IMMU-140 (hL243-CL2A-SN-38) in HLA-DR positive cancers
US20240139324A1 (en) 2012-12-13 2024-05-02 Immunomedics, Inc. Dosages of immunoconjugates of antibodies and sn-38 for improved efficacy and decreased toxicity
US10137196B2 (en) 2012-12-13 2018-11-27 Immunomedics, Inc. Dosages of immunoconjugates of antibodies and SN-38 for improved efficacy and decreased toxicity
RU2015129640A (en) 2012-12-21 2017-01-26 Ф.Хоффманн-Ля Рош Аг MULTI-VALVE MULTI-FUNCTIONAL PROTEINS CONNECTED BY DISULPHIDE, CONTAINING SCHC CLASS 1 MOLECULES
WO2014107739A1 (en) 2013-01-07 2014-07-10 Eleven Biotherapeutics, Inc. Antibodies against pcsk9
WO2014116749A1 (en) 2013-01-23 2014-07-31 Genentech, Inc. Anti-hcv antibodies and methods of using thereof
KR102447350B1 (en) 2013-02-08 2022-09-23 노파르티스 아게 Specific sites used to modify the antibody for the production of immunoconjugates
HK1211301A1 (en) 2013-02-26 2016-05-20 罗切格利卡特公司 Anti-mcsp antibodies
BR112015022210A8 (en) 2013-03-13 2018-01-23 Genentech Inc antibody formulations
US20140314778A1 (en) 2013-03-13 2014-10-23 Genentech, Inc. Formulations with reduced oxidation
RS60534B1 (en) 2013-03-13 2020-08-31 Hoffmann La Roche Formulations with reduced oxidation
MY174679A (en) 2013-03-13 2020-05-06 Genentech Inc Formulations with reduced oxidation
US10653779B2 (en) 2013-03-13 2020-05-19 Genentech, Inc. Formulations with reduced oxidation
US9562099B2 (en) 2013-03-14 2017-02-07 Genentech, Inc. Anti-B7-H4 antibodies and immunoconjugates
KR20150127203A (en) 2013-03-14 2015-11-16 제넨테크, 인크. Combinations of a mek inhibitor compound with an her3/egfr inhibitor compound and methods of use
AU2014244424A1 (en) 2013-03-14 2015-08-27 Genentech, Inc. Anti-B7-H4 antibodies and immunoconjugates
JP2016513478A (en) 2013-03-15 2016-05-16 ジェネンテック, インコーポレイテッド Cell culture medium and method for producing antibodies
EP2970452A2 (en) 2013-03-15 2016-01-20 AC Immune S.A. Anti-tau antibodies and methods of use
EA035645B1 (en) 2013-03-15 2020-07-21 Дженентек, Инк. IL-22 POLYPEPTIDES, IL-22 Fc FUSION PROTEINS AND USE THEREOF
MX2015012326A (en) 2013-03-15 2016-03-08 Genentech Inc Anti-crth2 antibodies and their use.
WO2014151866A1 (en) 2013-03-15 2014-09-25 Genentech, Inc. Compositions and methods for diagnosis and treatment of hepatic cancers
EP3712252A1 (en) 2013-03-15 2020-09-23 F. Hoffmann-La Roche AG Cell culture compositions with antioxidants and methods for polypeptide production
US20140283157A1 (en) 2013-03-15 2014-09-18 Diadexus, Inc. Lipoprotein-associated phospholipase a2 antibody compositions and methods of use
US20160053023A1 (en) 2013-04-09 2016-02-25 Annexon, Inc. Methods of treatment for neuromyelitis optica
JP2016528167A (en) 2013-04-29 2016-09-15 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Human FcRn binding modified antibody and method of use
KR102266819B1 (en) 2013-04-29 2021-06-18 에프. 호프만-라 로슈 아게 Fc-receptor binding modified asymmetric antibodies and methods of use
TWI653243B (en) 2013-04-29 2019-03-11 赫孚孟拉羅股份公司 Anti-IGF-1R antibody against FcRn binding and use thereof for treating vascular eye diseases
EP4324480A3 (en) 2013-05-20 2024-05-08 F. Hoffmann-La Roche AG Anti-transferrin receptor antibodies and methods of use
EP3013365B1 (en) 2013-06-26 2019-06-05 Academia Sinica Rm2 antigens and use thereof
US9981030B2 (en) 2013-06-27 2018-05-29 Academia Sinica Glycan conjugates and use thereof
KR102321320B1 (en) 2013-07-09 2021-11-03 애넥슨, 인코포레이티드 Anti-complement factor c1q antibodies and uses thereof
ES2705700T3 (en) 2013-07-12 2019-03-26 Hoffmann La Roche Elucidation of the input optimization in ion exchange chromatography
US20160168231A1 (en) 2013-07-18 2016-06-16 Fabrus, Inc. Antibodies with ultralong complementarity determining regions
CN105814074B (en) 2013-07-18 2020-04-21 图鲁斯生物科学有限责任公司 Humanized antibodies with ultralong complementarity determining regions
US11253606B2 (en) 2013-07-23 2022-02-22 Immunomedics, Inc. Combining anti-HLA-DR or anti-Trop-2 antibodies with microtubule inhibitors, PARP inhibitors, Bruton kinase inhibitors or phosphoinositide 3-kinase inhibitors significantly improves therapeutic outcome in cancer
EP2832854A1 (en) 2013-08-02 2015-02-04 F. Hoffmann-La Roche AG Method for improving the recombinant expression of a polypeptide by C-terminal fusion to human neprilysin
MX2016001862A (en) 2013-08-12 2016-08-03 Genentech Inc 1-(chloromethyl)-2,3-dihydro-1h-benzo[e]indole dimer antibody-drug conjugate compounds, and methods of use and treatment.
PE20160674A1 (en) 2013-08-28 2016-07-21 Stemcentrx Inc METHODS OF CONJUGATION OF SITE-SPECIFIC ANTIBODIES AND COMPOSITIONS
KR102298172B1 (en) 2013-09-06 2021-09-06 아카데미아 시니카 HUMAN iNKT CELL ACTIVATION USING GLYCOLIPIDS WITH ALTERED GLYCOSYL GROUPS
JP6431920B2 (en) 2013-09-17 2018-11-28 オービーアイ ファーマ,インコーポレイテッド Composition of carbohydrate vaccine to induce immune response and its use in cancer treatment
JP2016537399A (en) 2013-09-17 2016-12-01 ジェネンテック, インコーポレイテッド Method using anti-LGR5 antibody
EP3049437A1 (en) 2013-09-27 2016-08-03 F. Hoffmann-La Roche AG Thermus thermophilus slyd fkbp domain specific antibodies
RS59880B1 (en) 2013-09-27 2020-03-31 Hoffmann La Roche Anti-pdl1 antibody formulations
CA2926087C (en) 2013-10-10 2023-03-14 Beth Israel Deaconess Medical Center, Inc. Tm4sf1 binding proteins and methods of using same
JP2016537965A (en) 2013-10-11 2016-12-08 ジェネンテック, インコーポレイテッド NSP4 inhibitors and methods of use
RU2016115866A (en) 2013-10-11 2017-11-16 Ф. Хоффманн-Ля Рош Аг MULTI-SPECIFIC ANTIBODIES WITH EXCHANGED DOMAINS AND SAME VARIABLE DOMAINS OF EASY CHAIN
BR112016008477A2 (en) 2013-10-18 2017-10-03 Genentech Inc BODIES, NUCLEIC ACID, HOST CELL, METHOD OF PRODUCING AN ANTIBODY, IMMUNOCONJUGATE, PHARMACEUTICAL FORMULATION AND USES OF THE ANTIBODY
AR098155A1 (en) 2013-10-23 2016-05-04 Genentech Inc METHODS TO DIAGNOSTIC AND TREAT EOSYNOPHYL DISORDERS
RU2016122041A (en) 2013-11-06 2017-12-11 ЭББВИ СТЕМСЕНТРКС ЭлЭлСи NEW ANTI-CLAUDIN ANTIBODIES AND WAYS OF THEIR APPLICATION
JP2016538283A (en) 2013-11-13 2016-12-08 ザイムワークス,インコーポレイテッド Monovalent antigen binding constructs targeting EGFR and / or HER2 and uses thereof
CA2924268C (en) 2013-11-21 2021-05-18 F. Hoffmann-La Roche Ag Anti-alpha-synuclein antibodies and methods of use
MX376384B (en) 2013-11-27 2025-03-07 Zymeworks Bc Inc BISPECIFIC ANTIGEN-BINDING CONSTRUCTS TARGETED AT HER2.
SMT201900714T1 (en) 2013-12-09 2020-01-14 Allakos Inc Anti-siglec-8 antibodies and methods of use thereof
JP2017500028A (en) 2013-12-12 2017-01-05 アッヴィ・ステムセントルクス・エル・エル・シー Novel anti-DPEP3 antibody and method of use
AU2014362238A1 (en) 2013-12-13 2016-06-09 Genentech, Inc. Anti-CD33 antibodies and immunoconjugates
JP6980384B2 (en) 2013-12-16 2021-12-15 ジェネンテック, インコーポレイテッド 1- (Chloromethyl) -2,3-dihydro-1H-benzo [E] indole dimer antibody-drug conjugate compound, and methods of use and treatment
KR20160089532A (en) 2013-12-17 2016-07-27 제넨테크, 인크. Methods of treating cancer using pd-1 axis binding antagonists and an anti-cd20 antibody
MX2016007965A (en) 2013-12-17 2016-10-28 Genentech Inc Combination therapy comprising ox40 binding agonists and pd-1 axis binding antagonists.
KR102630750B1 (en) 2013-12-17 2024-01-30 제넨테크, 인크. Methods of treating cancers using pd-1 axis binding antagonists and taxanes
CN106029087A (en) 2013-12-20 2016-10-12 印第安纳大学研究及科技有限公司 Lipidated incretin receptor ligand human immunoglobulin fc-region fusion polypeptides
CA2932958A1 (en) 2013-12-20 2015-06-25 F. Hoffmann-La Roche Ag Humanized anti-tau(ps422) antibodies and methods of use
TWI670283B (en) 2013-12-23 2019-09-01 美商建南德克公司 Antibodies and methods of use
EP3089759B1 (en) 2014-01-03 2018-12-05 F. Hoffmann-La Roche AG Covalently linked polypeptide toxin-antibody conjugates
PL3089996T3 (en) 2014-01-03 2021-12-13 F. Hoffmann-La Roche Ag Bispecific anti-hapten/anti-blood brain barrier receptor antibodies, complexes thereof and their use as blood brain barrier shuttles
JP6602304B2 (en) 2014-01-03 2019-11-06 エフ.ホフマン−ラ ロシュ アーゲー Covalently linked helicer-anti-helicer antibody conjugates and uses thereof
BR112016015589A2 (en) 2014-01-06 2017-10-31 Hoffmann La Roche monovalent transit modules for the blood-brain barrier
BR112016016416A2 (en) 2014-01-15 2017-10-03 Hoffmann La Roche "Fc"-REGION VARIANTS WITH MODIFIED 'FcRn' AND MAINTAINED "A" PROTEIN BINDING PROPERTIES
US10150818B2 (en) 2014-01-16 2018-12-11 Academia Sinica Compositions and methods for treatment and detection of cancers
WO2016114819A1 (en) 2015-01-16 2016-07-21 Academia Sinica Compositions and methods for treatment and detection of cancers
KR20160104727A (en) 2014-01-16 2016-09-05 아카데미아 시니카 Compositions and methods for treatment and detection of cancers
US20170043034A1 (en) 2014-01-24 2017-02-16 Genentech, Inc. Methods of using anti-steap1 antibodies and immunoconjugates
WO2015116902A1 (en) 2014-01-31 2015-08-06 Genentech, Inc. G-protein coupled receptors in hedgehog signaling
WO2015120075A2 (en) 2014-02-04 2015-08-13 Genentech, Inc. Mutant smoothened and methods of using the same
EP3900738A1 (en) 2014-02-08 2021-10-27 F. Hoffmann-La Roche AG Methods of treating alzheimer's disease
NZ723884A (en) 2014-02-08 2023-02-24 Genentech Inc Methods of treating alzheimer’s disease
KR102030891B1 (en) 2014-02-12 2019-10-11 제넨테크, 인크. Anti-jagged1 antibodies and methods of use
JP2017507939A (en) 2014-02-21 2017-03-23 ジェネンテック, インコーポレイテッド Anti-IL-13 / IL-17 bispecific antibody and use thereof
EA201691683A1 (en) 2014-02-21 2017-04-28 ЭББВИ СТЕМСЕНТРКС ЭлЭлСи ANTIBODIES AGAINST DLL3 AND CONJUGATES ANTIBODY AND MEDICINE FOR USE FOR MELANOMA
EP4014995A1 (en) 2014-02-28 2022-06-22 Allakos Inc. Methods and compositions for treating siglec-8 associated diseases
WO2015139046A1 (en) 2014-03-14 2015-09-17 Genentech, Inc. Methods and compositions for secretion of heterologous polypeptides
KR20160134687A (en) 2014-03-21 2016-11-23 에프. 호프만-라 로슈 아게 In vitro prediction of in vivo half-life of antibodies
US20170107294A1 (en) 2014-03-21 2017-04-20 Nordlandssykehuset Hf Anti-cd14 antibodies and uses thereof
EP3122900A1 (en) 2014-03-24 2017-02-01 F. Hoffmann-La Roche AG Cancer treatment with c-met antagonists and correlation of the latter with hgf expression
EP3122782A4 (en) 2014-03-27 2017-09-13 Dyax Corp. Compositions and methods for treatment of diabetic macular edema
TWI797430B (en) 2014-03-27 2023-04-01 中央研究院 Reactive labelling compounds and uses thereof
EP3632934A1 (en) 2014-03-31 2020-04-08 F. Hoffmann-La Roche AG Anti-ox40 antibodies and methods of use
RU2016142476A (en) 2014-03-31 2018-05-07 Дженентек, Инк. COMBINED THERAPY, INCLUDING ANTI-ANGIOGENESIS AGENTS AND AGONISTS BINDING OX40
EP3126389B1 (en) 2014-04-02 2024-10-23 F. Hoffmann-La Roche AG Method for detecting multispecific antibody light chain mispairing
WO2015164615A1 (en) 2014-04-24 2015-10-29 University Of Oslo Anti-gluten antibodies and uses thereof
ES2955736T3 (en) 2014-05-06 2023-12-05 Hoffmann La Roche Production of heteromultimeric proteins using mammalian cells
MX2016015162A (en) 2014-05-22 2017-03-03 Genentech Inc Anti-gpc3 antibodies and immunoconjugates.
JP2017524371A (en) 2014-05-23 2017-08-31 ジェネンテック, インコーポレイテッド MIT biomarkers and methods of use
US10118969B2 (en) 2014-05-27 2018-11-06 Academia Sinica Compositions and methods relating to universal glycoforms for enhanced antibody efficacy
KR20240096599A (en) 2014-05-27 2024-06-26 아카데미아 시니카 Anti-cd20 glycoantibodies and uses thereof
AU2015267052A1 (en) 2014-05-27 2016-12-15 Academia Sinica Compositions and methods relating to universal glycoforms for enhanced antibody efficacy
US10005847B2 (en) 2014-05-27 2018-06-26 Academia Sinica Anti-HER2 glycoantibodies and uses thereof
JP7063538B2 (en) 2014-05-28 2022-05-09 アカデミア シニカ Anti-TNFα sugar-manipulated antibody group and its use
WO2015191715A1 (en) 2014-06-11 2015-12-17 Genentech, Inc. Anti-lgr5 antibodies and uses thereof
US20170131287A1 (en) 2014-06-13 2017-05-11 Massachusetts Institute Of Technology Saccharide responsive optical nanosensors
WO2015197736A1 (en) 2014-06-26 2015-12-30 F. Hoffmann-La Roche Ag Anti-brdu antibodies and methods of use
AR100978A1 (en) 2014-06-26 2016-11-16 Hoffmann La Roche ANTI-Tau HUMANIZED ANTIBODY BRAIN LAUNCHERS (pS422) AND USES OF THE SAME
WO2016005931A1 (en) 2014-07-09 2016-01-14 Lupin Limited Dual cistronic bacterial expression system
EP3309174B1 (en) 2014-07-11 2022-05-11 Ventana Medical Systems, Inc. Anti-pd-l1 antibodies and diagnostic uses thereof
KR20170029490A (en) 2014-07-11 2017-03-15 제넨테크, 인크. Notch pathway inhibition
SG11201700901SA (en) 2014-08-08 2017-03-30 Alector Llc Anti-trem2 antibodies and methods of use thereof
US11111284B2 (en) 2014-08-21 2021-09-07 The General Hospital Corporation Tumor necrosis factor superfamily and TNF-like ligand muteins and methods of preparing
TW201617368A (en) 2014-09-05 2016-05-16 史坦森特瑞斯公司 Novel anti-MFI2 antibodies and methods of use
CN107001404B (en) 2014-09-08 2021-06-29 中央研究院 Activation of human iNKT cells using glycolipids
CA2958479A1 (en) 2014-09-12 2016-03-17 Genentech, Inc. Anti-cll-1 antibodies and immunoconjugates
CN107001479B (en) 2014-09-12 2021-09-28 基因泰克公司 anti-HER 2 antibodies and immunoconjugates
JP6622293B2 (en) 2014-09-12 2019-12-18 ジェネンテック, インコーポレイテッド Anthracycline disulfide intermediates, antibody-drug conjugates, and methods
CN113698485A (en) 2014-09-12 2021-11-26 基因泰克公司 anti-B7-H4 antibodies and immunoconjugates
JP7072384B2 (en) 2014-09-15 2022-05-20 ジェネンテック, インコーポレイテッド Antibody preparation
JP6730261B2 (en) 2014-09-17 2020-07-29 ジェネンテック, インコーポレイテッド Immune complex containing anti-HER2 antibody
DK3262071T3 (en) 2014-09-23 2020-06-15 Hoffmann La Roche Method of using anti-CD79b immune conjugates
JP2017536102A (en) 2014-10-16 2017-12-07 ジェネンテック, インコーポレイテッド Anti-alpha-synuclein antibodies and methods of use
MX2017005750A (en) 2014-11-03 2017-12-15 Genentech Inc Assays for detecting t cell immune subsets and methods of use thereof.
CA2966507A1 (en) 2014-11-03 2016-05-12 Genentech, Inc. Methods and biomarkers for predicting efficacy and evaluation of an ox40 agonist treatment
US10316081B2 (en) 2014-11-05 2019-06-11 Annexon, Inc. Humanized anti-complement factor C1Q antibodies
EP3215525B1 (en) 2014-11-05 2020-07-29 Genentech, Inc. Methods of producing two chain proteins in bacteria
CN107108740B (en) 2014-11-05 2021-09-17 豪夫迈·罗氏有限公司 anti-FGFR 2/3 antibodies and methods of use thereof
US10112994B2 (en) 2014-11-05 2018-10-30 Genentech, Inc. Methods of producing two chain proteins in bacteria
EP3215524B1 (en) 2014-11-06 2021-01-13 F.Hoffmann-La Roche Ag Fc-region variants with modified fcrn- and protein a-binding properties
WO2016073157A1 (en) 2014-11-06 2016-05-12 Genentech, Inc. Anti-ang2 antibodies and methods of use thereof
SI3215528T1 (en) 2014-11-06 2019-11-29 Hoffmann La Roche Fc-region variants with modified fcrn-binding and methods of use
CA2960297A1 (en) 2014-11-10 2016-05-19 Genentech, Inc. Anti-interleukin-33 antibodies and uses thereof
CN107105632A (en) 2014-11-10 2017-08-29 豪夫迈·罗氏有限公司 Nephrosis animal model and its therapeutic agent
MX2017006320A (en) 2014-11-17 2017-08-10 Genentech Inc Combination therapy comprising ox40 binding agonists and pd-1 axis binding antagonists.
EP3221361B1 (en) 2014-11-19 2021-04-21 Genentech, Inc. Anti-transferrin receptor / anti-bace1 multispecific antibodies and methods of use
JP6859259B2 (en) 2014-11-19 2021-04-14 ジェネンテック, インコーポレイテッド Antibodies to BACEl and its use for neurological disease immunotherapy
EP3221362B1 (en) 2014-11-19 2019-07-24 F.Hoffmann-La Roche Ag Anti-transferrin receptor antibodies and methods of use
CA2968258A1 (en) 2014-11-27 2016-06-02 Zymeworks Inc. Methods of using bispecific antigen-binding constructs targeting her2
CN113444183B (en) 2014-12-01 2025-06-17 佩利肯科技控股公司 Fusion partners for peptide production
PL3227332T3 (en) 2014-12-03 2020-06-15 F. Hoffmann-La Roche Ag Multispecific antibodies
ES2744540T3 (en) 2014-12-05 2020-02-25 Hoffmann La Roche Anti-CD79b antibodies and usage procedures
JP2018502840A (en) 2014-12-10 2018-02-01 ジェネンテック, インコーポレイテッド Blood brain barrier receptor antibodies and methods of use
JP6618539B2 (en) 2014-12-17 2019-12-11 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Method for enzyme-mediated polypeptide conjugation using sortase
BR112017011170A2 (en) 2014-12-18 2018-02-27 Hoffmann La Roche method for determining the complement-dependent cytotoxicity of a composition
MX2017005774A (en) 2014-12-19 2017-07-28 Chugai Pharmaceutical Co Ltd Anti-myostatin antibodies, polypeptides containing variant fc regions, and methods of use.
HUE056489T2 (en) 2014-12-19 2022-02-28 Chugai Pharmaceutical Co Ltd Anti-c5 antibodies and methods of use
US10495645B2 (en) 2015-01-16 2019-12-03 Academia Sinica Cancer markers and methods of use thereof
US9975965B2 (en) 2015-01-16 2018-05-22 Academia Sinica Compositions and methods for treatment and detection of cancers
JP2018511557A (en) 2015-01-22 2018-04-26 中外製薬株式会社 Combination and use of two or more anti-C5 antibodies
TWI736523B (en) 2015-01-24 2021-08-21 中央研究院 Novel glycan conjugates and methods of use thereof
CN107430127B (en) 2015-01-24 2020-08-28 中央研究院 Cancer markers and methods of use thereof
TWI717333B (en) 2015-01-30 2021-02-01 中央研究院 Compositions and methods relating to universal glyoforms for enhanced antibody efficacy
CA2975875A1 (en) 2015-02-04 2016-08-11 Genentech, Inc. Mutant smoothened and methods of using the same
SG11201706014PA (en) 2015-02-05 2017-08-30 Chugai Pharmaceutical Co Ltd Antibodies comprising an ion concentration dependent antigen-binding domain, fc region variants, il-8-binding antibodies, and uses therof
ES2761726T3 (en) 2015-03-06 2020-05-20 Hoffmann La Roche Ultra-purified DsbA and DsbC and their preparation and use procedures
CN107430117A (en) 2015-03-16 2017-12-01 豪夫迈·罗氏有限公司 Detection and quantitative IL 13 method and the purposes in diagnosing and treating Th2 relevant diseases
LT3280441T (en) 2015-04-07 2021-11-25 Alector Llc ANTI-SORTILIN ANTIBODIES AND THEIR USES
AU2016246695A1 (en) 2015-04-07 2017-10-26 Genentech, Inc. Antigen binding complex having agonistic activity and methods of use
BR112017022255A2 (en) 2015-04-17 2018-08-28 Centre Nat Rech Scient isolated humanized or human antibody, isolated nucleic acid molecule, vector, host cell, method for producing an antibody, and pharmaceutical composition
CN108064343B (en) 2015-04-21 2021-07-09 基因泰克公司 Compositions and methods for prostate cancer analysis
CA2981543A1 (en) 2015-04-22 2016-10-27 Immunomedics, Inc. Isolation, detection, diagnosis and/or characterization of circulating trop-2-positive cancer cells
PL3286315T3 (en) 2015-04-24 2021-11-02 F. Hoffmann-La Roche Ag METHODS OF IDENTIFICATION OF BACTERIA CONTAINING BINDING POLYPEPTIDES
HK1250997A1 (en) 2015-05-01 2019-01-18 基因泰克公司 Masked anti-cd3 antibodies and methods of use
CN107592812A (en) 2015-05-11 2018-01-16 豪夫迈·罗氏有限公司 Compositions and methods for treating lupus nephritis
KR102583058B1 (en) 2015-05-28 2023-09-25 제넨테크, 인크. Cell-based assay to detect anti-CD3 homodimers
EP3303619B1 (en) 2015-05-29 2020-06-10 H. Hoffnabb-La Roche Ag Pd-l1 promoter methylation in cancer
JP2018520658A (en) 2015-05-29 2018-08-02 ジェネンテック, インコーポレイテッド Humanized anti-Ebola virus glycoprotein antibodies and uses thereof
EP3302552A1 (en) 2015-06-02 2018-04-11 H. Hoffnabb-La Roche Ag Compositions and methods for using anti-il-34 antibodies to treat neurological diseases
EP3303386B1 (en) 2015-06-05 2024-08-28 Genentech, Inc. Anti-tau antibodies and methods of use
KR20180011839A (en) 2015-06-08 2018-02-02 제넨테크, 인크. Treatment of Cancer Using Anti-OX40 Antibody
WO2016200835A1 (en) 2015-06-08 2016-12-15 Genentech, Inc. Methods of treating cancer using anti-ox40 antibodies and pd-1 axis binding antagonists
CN107922480B (en) 2015-06-12 2022-09-23 艾利妥 anti-CD 33 antibodies and methods of use thereof
HK1252675A1 (en) 2015-06-12 2019-05-31 Alector Llc Anti-cd33 antibodies and methods of use thereof
CN108064246A (en) 2015-06-15 2018-05-22 基因泰克公司 Antibody and immune conjugate
US10323094B2 (en) 2015-06-16 2019-06-18 Genentech, Inc. Humanized and affinity matured antibodies to FcRH5 and methods of use
WO2016204966A1 (en) 2015-06-16 2016-12-22 Genentech, Inc. Anti-cd3 antibodies and methods of use
JP6996983B2 (en) 2015-06-16 2022-02-21 ジェネンテック, インコーポレイテッド Anti-CLL-1 antibody and how to use
CA2986263A1 (en) 2015-06-17 2016-12-22 Genentech, Inc. Methods of treating locally advanced or metastatic breast cancers using pd-1 axis binding antagonists and taxanes
US10774145B2 (en) 2015-06-17 2020-09-15 Allakos Inc. Methods and compositions for treating fibrotic diseases
CN107787331B (en) 2015-06-17 2022-01-11 豪夫迈·罗氏有限公司 anti-HER 2 antibodies and methods of use
ES2809728T3 (en) 2015-06-24 2021-03-05 Hoffmann La Roche Humanized anti-tau (pS422) antibodies and procedures for use
IL302486A (en) 2015-06-24 2023-06-01 Hoffmann La Roche Anti-transferrin receptor antibodies with tailored affinity
US10195175B2 (en) 2015-06-25 2019-02-05 Immunomedics, Inc. Synergistic effect of anti-Trop-2 antibody-drug conjugate in combination therapy for triple-negative breast cancer when used with microtubule inhibitors or PARP inhibitors
ES2898065T3 (en) 2015-06-29 2022-03-03 Ventana Med Syst Inc Materials and Procedures for Performing Histochemical Assays for Human Proepiregulin and Amphiregulin
KR20180021864A (en) 2015-06-29 2018-03-05 제넨테크, 인크. Type II anti-CD20 antibodies for use in organ transplantation
SI3124976T1 (en) 2015-07-28 2018-12-31 F. Hoffmann-La Roche Ag Improved bacterial endotoxin test for the determination of endotoxins
TW202440903A (en) 2015-08-04 2024-10-16 美商再生元醫藥公司 Taurine supplemented cell culture medium and methods of use
BR102016018074A2 (en) 2015-08-07 2021-11-16 ALX Oncology Inc. SIRP-ALFA VARIANT CONSTRUCTION, ITS METHOD OF PREPARATION AND USES, NUCLEIC ACID MOLECULE, VECTOR, HOST CELL, AND PHARMACEUTICAL COMPOSITION
JP6898303B2 (en) 2015-08-07 2021-07-07 エーエルエックス オンコロジー インコーポレイテッド SIRP-Structures with alpha domain or variants thereof
CN105384825B (en) 2015-08-11 2018-06-01 南京传奇生物科技有限公司 A kind of bispecific chimeric antigen receptor and its application based on single domain antibody
CA2938333A1 (en) 2015-08-12 2017-02-12 Pfizer Inc. Capped and uncapped antibody cysteines, and their use in antibody-drug conjugation
JP7525980B2 (en) 2015-08-28 2024-07-31 アレクトル エルエルシー Anti-Siglec-7 Antibodies and Methods of Use Thereof
JP6914919B2 (en) 2015-08-28 2021-08-04 ジェネンテック, インコーポレイテッド Anti-hypusine antibody and its use
JP2018532990A (en) 2015-09-04 2018-11-08 オービーアイ ファーマ,インコーポレイテッド Glycan arrays and methods of use
AR105634A1 (en) 2015-09-18 2017-10-25 Chugai Pharmaceutical Co Ltd ANTIBODIES THAT JOIN IL 8 AND ITS USES
CA2999369C (en) 2015-09-22 2023-11-07 Spring Bioscience Corporation Anti-ox40 antibodies and diagnostic uses thereof
KR102725051B1 (en) 2015-09-23 2024-11-04 제넨테크, 인크. Optimized variants of anti-VEGF antibodies
PH12018500645B1 (en) 2015-09-24 2022-10-21 Abvitro Llc Hiv antibody compositions and methods of use
EP3353291B1 (en) 2015-09-25 2021-06-09 F. Hoffmann-La Roche AG Novel soluble sortase a
CN108271375A (en) 2015-09-25 2018-07-10 豪夫迈·罗氏有限公司 The recombination immunoglobulin heavy chain and its conjugate of ring are conjugated comprising sorting enzyme
EP3353210B8 (en) 2015-09-25 2024-12-18 F. Hoffmann-La Roche AG Anti-tigit antibodies and methods of use
WO2017050872A1 (en) 2015-09-25 2017-03-30 F. Hoffmann-La Roche Ag Transamidation employing sortase a in deep eutectic solvents
EP3353310B1 (en) 2015-09-25 2020-04-29 H. Hoffnabb-La Roche Ag Process for producing thioesters employing a sortase a
JP6657392B2 (en) 2015-10-02 2020-03-04 エフ・ホフマン−ラ・ロシュ・アクチェンゲゼルシャフト Bispecific anti-human CD20 / human transferrin receptor antibodies and methods of use
CA2997799A1 (en) 2015-10-02 2017-04-06 F. Hoffmann-La Roche Ag Anti-pd1 antibodies and methods of use
PE20180773A1 (en) 2015-10-02 2018-05-07 Hoffmann La Roche BI-SPECIFIC ANTIBODIES FOR PD1 AND TIM3
MA43345A (en) 2015-10-02 2018-08-08 Hoffmann La Roche PYRROLOBENZODIAZEPINE ANTIBODY-DRUG CONJUGATES AND METHODS OF USE
EP3150636A1 (en) 2015-10-02 2017-04-05 F. Hoffmann-La Roche AG Tetravalent multispecific antibodies
AR106189A1 (en) 2015-10-02 2017-12-20 Hoffmann La Roche BIESPECTIFIC ANTIBODIES AGAINST HUMAN A-b AND THE HUMAN TRANSFERRINE RECEIVER AND METHODS OF USE
JP7725185B2 (en) 2015-10-06 2025-08-19 アレクトル エルエルシー Anti-TREM2 antibodies and methods of use thereof
MA45326A (en) 2015-10-20 2018-08-29 Genentech Inc CALICHEAMICIN-ANTIBODY-DRUG CONJUGATES AND METHODS OF USE
US10604577B2 (en) 2015-10-22 2020-03-31 Allakos Inc. Methods and compositions for treating systemic mastocytosis
CN114891102A (en) 2015-10-29 2022-08-12 豪夫迈·罗氏有限公司 Anti-variant Fc region antibodies and methods of use
EP3184547A1 (en) 2015-10-29 2017-06-28 F. Hoffmann-La Roche AG Anti-tpbg antibodies and methods of use
JP7060502B2 (en) 2015-10-29 2022-04-26 アレクトル エルエルシー Anti-Sigma-9 antibody and its usage
HRP20220064T1 (en) 2015-10-30 2022-04-15 F. Hoffmann - La Roche Ag Hinge modified antibody fragments and methods of making
SI3368578T1 (en) 2015-10-30 2021-08-31 F. Hoffmann-La Roche Ag Anti-htra1 antibodies and methods of use thereof
EP3368074A2 (en) 2015-10-30 2018-09-05 Hoffmann-La Roche AG Anti-factor d antibodies and conjugates
EP3371217B1 (en) 2015-11-08 2025-06-11 F. Hoffmann-La Roche AG Methods of screening for multispecific antibodies
CA3002095A1 (en) 2015-11-10 2017-05-18 Yale University Compositions and methods for treating autoimmune diseases and cancers
CA3002422C (en) 2015-12-18 2024-04-16 Chugai Seiyaku Kabushiki Kaisha Anti-myostatin antibodies, polypeptides containing variant fc regions, and methods of use
DK3390442T5 (en) 2015-12-18 2024-09-23 Chugai Pharmaceutical Co Ltd Anti-C5 antibodies and method of use thereof
US10525137B2 (en) 2015-12-30 2020-01-07 Genentech, Inc. Formulations with reduced degradation of polysorbate
KR20180093078A (en) 2015-12-30 2018-08-20 제넨테크, 인크. Use of tryptophan derivatives for protein preparations
KR20180097615A (en) 2016-01-08 2018-08-31 에프. 호프만-라 로슈 아게 Methods for the treatment of CEA-positive cancers using PD-1 axis-binding antagonists and anti-CEA / anti-CD3 bispecific antibodies
CN114019170A (en) 2016-01-20 2022-02-08 基因泰克公司 High dose treatment for alzheimer's disease
EP3408671B1 (en) 2016-01-25 2023-11-01 F. Hoffmann-La Roche AG Methods for assaying t-cell dependent bispecific antibodies
BR112018015480A2 (en) 2016-01-29 2019-05-21 Sorrento Therapeutics, Inc. pd-l1-binding antigen binding proteins
WO2017136558A1 (en) 2016-02-04 2017-08-10 Curis, Inc. Mutant smoothened and methods of using the same
EP3413914A4 (en) 2016-02-10 2019-10-16 Immunomedics, Inc. COMBINATION INHIBITORS ABCG2-SACITUZUMAB GOVITECAN (IMMU-132) OVERCOMES RESISTANCE TO SN-38 IN CANCERS EXPRESSING TOO 2
US11472877B2 (en) 2016-03-04 2022-10-18 Alector Llc Anti-TREM1 antibodies and methods of use thereof
WO2017156032A1 (en) 2016-03-07 2017-09-14 Charlestonpharma, Llc Anti-nucleolin antibodies
US12128102B2 (en) 2016-03-08 2024-10-29 Takeda Pharmaceutical Company Limited Constrained conditionally activated binding proteins
CA3016170A1 (en) 2016-03-08 2017-09-14 Academia Sinica Methods for modular synthesis of n-glycans and arrays thereof
CN109153719B (en) 2016-03-15 2022-12-30 中外制药株式会社 Methods of treating cancer using PD-1 axis binding antagonists and anti-GPC 3 antibodies
EP3433621A1 (en) 2016-03-25 2019-01-30 H. Hoffnabb-La Roche Ag Multiplexed total antibody and antibody-conjugated drug quantification assay
US10980894B2 (en) 2016-03-29 2021-04-20 Obi Pharma, Inc. Antibodies, pharmaceutical compositions and methods
WO2017172990A1 (en) 2016-03-29 2017-10-05 Obi Pharma, Inc. Antibodies, pharmaceutical compositions and methods
JP6727325B2 (en) 2016-03-30 2020-07-22 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Improved sortase
EP3865511A1 (en) 2016-04-14 2021-08-18 F. Hoffmann-La Roche AG Anti-rspo3 antibodies and methods of use
MY200886A (en) 2016-04-22 2024-01-22 Obi Pharma Inc Cancer Immunotherapy by Immune Activation or Immune Modulation Via Globo Series Antigens
AU2017257254B2 (en) 2016-04-27 2022-02-24 Immunomedics, Inc. Efficacy of anti-Trop-2-SN-38 antibody drug conjugates for therapy of tumors relapsed/refractory to checkpoint inhibitors
JP6675017B2 (en) 2016-05-02 2020-04-01 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Contrast body-single chain target binding substance
US20190151346A1 (en) 2016-05-10 2019-05-23 INSERM (Institute National de la Santé et de la Recherche Médicale) Combinations therapies for the treatment of cancer
WO2017197045A1 (en) 2016-05-11 2017-11-16 Movassaghi Mohammad Convergent and enantioselective total synthesis of communesin analogs
CN109071640B (en) 2016-05-11 2022-10-18 豪夫迈·罗氏有限公司 Modified anti-tenascin antibodies and methods of use
CA3024465A1 (en) 2016-05-17 2017-11-23 Genentech, Inc. Stromal gene signatures for diagnosis and use in immunotherapy
PL3458101T3 (en) 2016-05-20 2021-05-31 F. Hoffmann-La Roche Ag Protac antibody conjugates and methods of use
WO2017205741A1 (en) 2016-05-27 2017-11-30 Genentech, Inc. Bioanalytical method for the characterization of site-specific antibody-drug conjugates
CN109476648B (en) 2016-06-06 2022-09-13 豪夫迈·罗氏有限公司 Sevelamer antibody-drug conjugates and methods of use
JP6921943B2 (en) 2016-06-06 2021-08-18 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Ophthalmic fusion protein with increased eye retention
EP3472177B1 (en) 2016-06-17 2024-08-14 F. Hoffmann-La Roche AG Purification of multispecific antibodies
CN109311969B (en) 2016-06-17 2022-09-27 中外制药株式会社 Anti-myostatin antibodies and methods of use
CN109563160B (en) 2016-06-24 2023-02-28 豪夫迈·罗氏有限公司 Anti-polyubiquitin multispecific antibody
WO2018007314A1 (en) 2016-07-04 2018-01-11 F. Hoffmann-La Roche Ag Novel antibody format
WO2018014260A1 (en) 2016-07-20 2018-01-25 Nanjing Legend Biotech Co., Ltd. Multispecific antigen binding proteins and methods of use thereof
JP2019527690A (en) 2016-07-27 2019-10-03 オービーアイ ファーマ,インコーポレイテッド Immunogenic / therapeutic glycan compositions and uses thereof
CN117986372A (en) 2016-07-29 2024-05-07 中外制药株式会社 Bispecific antibodies showing increased alternative FVIII cofactor functional activity
US11643456B2 (en) 2016-07-29 2023-05-09 Obi Pharma, Inc. Human antibodies, pharmaceutical compositions and methods
KR102538749B1 (en) 2016-08-05 2023-06-01 추가이 세이야쿠 가부시키가이샤 Composition for prophylaxis or treatment of il-8 related diseases
WO2018027204A1 (en) 2016-08-05 2018-02-08 Genentech, Inc. Multivalent and multiepitopic anitibodies having agonistic activity and methods of use
EP3497129A1 (en) 2016-08-08 2019-06-19 H. Hoffnabb-La Roche Ag Therapeutic and diagnostic methods for cancer
CN109716127B (en) 2016-08-15 2022-06-14 豪夫迈·罗氏有限公司 Chromatographic method for quantifying nonionic surfactant in composition containing nonionic surfactant and polypeptide
AU2017316663B2 (en) 2016-08-22 2024-02-22 CHO Pharma Inc. Antibodies, binding fragments, and methods of use
US11168148B2 (en) 2016-09-07 2021-11-09 The Regents Of The University Of California Antibodies to oxidation-specific epitopes
SG10201607778XA (en) 2016-09-16 2018-04-27 Chugai Pharmaceutical Co Ltd Anti-Dengue Virus Antibodies, Polypeptides Containing Variant Fc Regions, And Methods Of Use
EP3515932B1 (en) 2016-09-19 2023-11-22 F. Hoffmann-La Roche AG Complement factor based affinity chromatography
JP6995844B2 (en) 2016-09-23 2022-02-04 ジェネンテック, インコーポレイテッド Use of IL-13 antagonists to treat atopic dermatitis
EP3522933B1 (en) 2016-10-05 2021-12-15 F. Hoffmann-La Roche AG Methods for preparing antibody drug conjugates
WO2018068201A1 (en) 2016-10-11 2018-04-19 Nanjing Legend Biotech Co., Ltd. Single-domain antibodies and variants thereof against ctla-4
CN110366558A (en) 2016-10-28 2019-10-22 班扬生物标记公司 Antibodies against ubiquitin C-terminal hydrolase L1 (UCH-L1) and glial fibrillary acidic protein (GFAP) and related methods
US11555076B2 (en) 2016-10-29 2023-01-17 Genentech, Inc. Anti-MIC antibodies and methods of use
TW201829463A (en) 2016-11-18 2018-08-16 瑞士商赫孚孟拉羅股份公司 anti-HLA-G antibody and use thereof
TWI767959B (en) 2016-11-21 2022-06-21 台灣浩鼎生技股份有限公司 Conjugated biological molecules, pharmaceutical compositions and methods
NZ750948A (en) 2016-11-21 2020-06-26 Cureab Gmbh Anti-gp73 antibodies and immunoconjugates
CN110248959B (en) 2016-12-07 2023-06-30 基因泰克公司 Anti-TAU antibodies and methods of use
AU2017373889B2 (en) 2016-12-07 2025-01-02 Ac Immune Sa Anti-Tau antibodies and methods of use
AU2017381657B2 (en) 2016-12-21 2020-07-23 F. Hoffmann-La Roche Ag Method for in vitro glycoengineering of antibodies
EP3559250A1 (en) 2016-12-21 2019-10-30 H. Hoffnabb-La Roche Ag Re-use of enzymes in in vitro glycoengineering of antibodies
JP6850351B2 (en) 2016-12-21 2021-03-31 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft In vitro sugar chain engineering of antibodies
CN108239150A (en) 2016-12-24 2018-07-03 信达生物制药(苏州)有限公司 Anti- PCSK9 antibody and application thereof
WO2018136553A1 (en) 2017-01-18 2018-07-26 Genentech, Inc. Idiotypic antibodies against anti-pd-l1 antibodies and uses thereof
PE20191548A1 (en) 2017-02-10 2019-10-24 Genentech Inc ANTIBODIES AGAINST TRYPTASE, COMPOSITIONS OF THESE AND USES OF THEM
WO2018152496A1 (en) 2017-02-17 2018-08-23 The Usa, As Represented By The Secretary, Dept. Of Health And Human Services Compositions and methods for the diagnosis and treatment of zika virus infection
SG11201908127WA (en) 2017-03-10 2019-10-30 Hoffmann La Roche Method for producing multispecific antibodies
AR111249A1 (en) 2017-03-22 2019-06-19 Genentech Inc OPTIMIZED ANTIBODY COMPOSITIONS FOR THE TREATMENT OF OCULAR DISORDERS
CA3055985A1 (en) 2017-03-22 2018-09-27 Genentech, Inc. Hydrogel cross-linked hyaluronic acid prodrug compositions and methods
CN108623686A (en) 2017-03-25 2018-10-09 信达生物制药(苏州)有限公司 Anti- OX40 antibody and application thereof
RU2758234C2 (en) 2017-03-27 2021-10-26 Иммьюномедикс, Инк. TREATMENT OF TRIPLE-NEGATIVE BREAST CANCER CHARACTERIZED BY Trop-2 EXPRESSION USING SATSITUZUMAB GOVITECAN AND Rad51 INHIBITOR
CA3055758A1 (en) 2017-03-28 2018-10-04 Genentech, Inc. Methods of treating neurodegenerative diseases
WO2018187074A1 (en) 2017-04-03 2018-10-11 Immunomedics, Inc. Subcutaneous administration of antibody-drug conjugates for cancer therapy
LT3606954T (en) 2017-04-05 2022-09-26 F. Hoffmann-La Roche Ag Anti-lag3 antibodies
CN116375876A (en) 2017-04-05 2023-07-04 豪夫迈·罗氏有限公司 Bispecific antibodies that specifically bind PD1 and LAG3
WO2018200742A1 (en) 2017-04-25 2018-11-01 The Usa, As Represented By The Secretary, Dept. Of Health And Human Services Antibodies and methods for the diagnosis and treatment of epstein barr virus infection
NZ759517A (en) 2017-04-27 2025-02-28 Tesaro Inc Antibody agents directed against lymphocyte activation gene-3 (lag-3) and uses thereof
EA201992626A1 (en) 2017-05-05 2020-04-24 Аллакос Инк. METHODS AND COMPOSITIONS FOR TREATMENT OF ALLERGIC EYE DISEASES
WO2018209239A1 (en) 2017-05-11 2018-11-15 Massachusetts Institute Of Technology Potent agelastatin derivatives as modulators for cancer invasion and metastasis
EP3625251A1 (en) 2017-05-15 2020-03-25 University Of Rochester Broadly neutralizing anti-influenza monoclonal antibody and uses thereof
US11359014B2 (en) 2017-05-16 2022-06-14 Alector Llc Anti-siglec-5 antibodies and methods of use thereof
AU2018281337B2 (en) 2017-06-06 2022-08-25 Relinia, Inc. Single-chain TNF receptor 2 agonist fusion proteins
EP3655430A1 (en) 2017-07-19 2020-05-27 The U.S.A. as represented by the Secretary, Department of Health and Human Services Antibodies and methods for the diagnosis and treatment of hepatitis b virus infection
PE20200486A1 (en) 2017-08-03 2020-03-03 Alector Llc ANTI-CD33 ANTIBODIES AND METHODS OF USING THEM
HRP20230675T1 (en) 2017-08-03 2023-09-29 Alector Llc Anti-trem2 antibodies and methods of use thereof
CA3070297A1 (en) 2017-08-11 2019-02-14 Genentech, Inc. Anti-cd8 antibodies and uses thereof
KR20200038996A (en) 2017-08-21 2020-04-14 아다진 인크. Dynamic human heavy chain antibody library
BR112020003459A2 (en) 2017-08-21 2020-08-25 Adagene Inc. libraries, non-human animal, phage, antibody light chain, antibodies, methods for preparing a library, for producing an antibody library and for generating a bispecific antibody and kit
WO2019036855A1 (en) 2017-08-21 2019-02-28 Adagene Inc. ANTI-CD137 MOLECULES AND THEIR USE
CN109422811A (en) 2017-08-29 2019-03-05 信达生物制药(苏州)有限公司 Anti-cd 47 antibody and application thereof
MX2020002667A (en) 2017-09-08 2020-08-03 Maverick Therapeutics Inc Constrained conditionally activated binding proteins.
CN111315773A (en) 2017-09-08 2020-06-19 马弗里克治疗公司 Conditionally active binding moieties comprising an Fc region
UA128389C2 (en) 2017-09-29 2024-07-03 Чугаі Сейяку Кабусікі Кайся A MULTISPECIFIC ANTIGEN-BINDING MOLECULE HAVING THE ACTIVITY TO REPLACE THE COFACTOR FUNCTION OF BLOOD COAGULATION FACTOR VIII (FVIII) AND A PHARMACEUTICAL COMPOSITION CONTAINING SAID MOLECULE AS AN ACTIVE INGREDIENT
EP3694890A4 (en) 2017-10-12 2021-11-03 Immunowake Inc. LIGHT CHAIN ANTIBODY FUSION PROTEIN WITH VEGFR
US10640508B2 (en) 2017-10-13 2020-05-05 Massachusetts Institute Of Technology Diazene directed modular synthesis of compounds with quaternary carbon centers
CN111601616A (en) 2017-10-24 2020-08-28 美真达治疗公司 Compositions and methods for depleting CD117+ cells
EP3700567A4 (en) 2017-10-26 2021-09-29 The Regents of The University of California INHIBITION OF OXIDATION SPECIFIC EPITOPES FOR TREATMENT OF ISCHEMIC REPERFUSION DAMAGE
MX2020004100A (en) 2017-10-30 2020-07-24 Hoffmann La Roche METHOD FOR IN VIVO GENERATION OF MULTISPECIFIC ANTIBODIES FROM MONOSPECIFIC ANTIBODIES.
JP7092881B2 (en) 2017-11-01 2022-06-28 エフ.ホフマン-ラ ロシュ アーゲー TriFab Contour Body
CN111295392A (en) 2017-11-01 2020-06-16 豪夫迈·罗氏有限公司 Compbody – multivalent target conjugate
AU2018364630A1 (en) 2017-11-09 2020-05-21 Pinteon Therapeutics Inc. Methods and compositions for the generation and use of humanized conformation-specific phosphorylated tau antibodies
EP4640703A2 (en) 2017-11-14 2025-10-29 Chugai Seiyaku Kabushiki Kaisha Anti-c1s antibodies and methods of use
KR20200094181A (en) 2017-11-29 2020-08-06 마젠타 테라퓨틱스 인코포레이티드 Compositions and methods for depleting CD5+ cells
JP7402158B2 (en) 2017-11-30 2023-12-20 ジェネンテック, インコーポレイテッド Anti-PD-L1 antibodies and methods of using them to detect PD-L1
WO2019129137A1 (en) 2017-12-27 2019-07-04 信达生物制药(苏州)有限公司 Anti-lag-3 antibody and uses thereof
CN109970857B (en) 2017-12-27 2022-09-30 信达生物制药(苏州)有限公司 anti-PD-L1 antibodies and uses thereof
WO2019129136A1 (en) 2017-12-27 2019-07-04 信达生物制药(苏州)有限公司 Anti-pd-l1 antibody and uses thereof
CN117050184A (en) 2017-12-28 2023-11-14 南京传奇生物科技有限公司 Single domain antibodies to TIGIT and variants thereof
JP2021508471A (en) 2017-12-29 2021-03-11 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft How to Improve VEGF Receptor Blocking Selectivity of Anti-VEGF Antibodies
CN111886246B (en) 2017-12-29 2024-12-17 艾莱克特有限责任公司 Anti-TMEM 106B antibodies and methods of use thereof
WO2019134981A1 (en) 2018-01-05 2019-07-11 Ac Immune Sa Misfolded tdp-43 binding molecules
EP3737692A4 (en) 2018-01-09 2021-09-29 Elstar Therapeutics, Inc. CALRETICULIN-BINDING CONSTRUCTS AND GENERALLY MODIFIED T-CELLS FOR THE TREATMENT OF DISEASES
JP7366908B2 (en) 2018-01-15 2023-10-23 ナンジン レジェンド バイオテック カンパニー,リミテッド Single domain antibodies against PD-1 and variants thereof
EP3740505A1 (en) 2018-01-16 2020-11-25 Lakepharma Inc. Bispecific antibody that binds cd3 and another target
CR20200327A (en) 2018-01-26 2020-11-05 Genentech Inc Il-22 fc fusion proteins and methods of use
HRP20221448T1 (en) 2018-01-26 2023-01-20 F. Hoffmann - La Roche Ag Compositions and methods of use
EP3746476A1 (en) 2018-01-31 2020-12-09 Alector LLC Anti-ms4a4a antibodies and methods of use thereof
JP7438953B2 (en) 2018-02-01 2024-02-27 イノベント バイオロジックス (スウツォウ) カンパニー,リミテッド Fully humanized anti-B cell maturation antigen (BCMA) single chain antibody and its applications
WO2019148445A1 (en) 2018-02-02 2019-08-08 Adagene Inc. Precision/context-dependent activatable antibodies, and methods of making and using the same
WO2019148444A1 (en) 2018-02-02 2019-08-08 Adagene Inc. Anti-ctla4 antibodies and methods of making and using the same
MX2020008289A (en) 2018-02-08 2020-09-25 Genentech Inc BISPECIFIC MOLECULES FOR ANTIGEN BINDING AND METHODS OF USE.
AU2019220395B2 (en) 2018-02-14 2025-12-04 Abba Therapeutics Ag Anti-human PD-L2 antibodies
CN111757751A (en) 2018-02-21 2020-10-09 豪夫迈·罗氏有限公司 Dosage regimen for treatment with IL-22 Fc fusion protein
AU2019225249A1 (en) 2018-02-26 2020-09-17 Genentech, Inc. Dosing for treatment with anti-tigit and anti-PD-L1 antagonist antibodies
EP3533460A1 (en) 2018-03-02 2019-09-04 Diaccurate Therapeutic anti-spla2-gib antibodies and the uses thereof
EP3533459A1 (en) 2018-03-02 2019-09-04 Diaccurate Anti-pla2-gib antibodies and the uses thereof
CN111902426A (en) 2018-03-05 2020-11-06 法国血液机构 Recombinant single-chain immunoglobulins
US20200040103A1 (en) 2018-03-14 2020-02-06 Genentech, Inc. Anti-klk5 antibodies and methods of use
US12152073B2 (en) 2018-03-14 2024-11-26 Marengo Therapeutics, Inc. Multifunctional molecules that bind to calreticulin and uses thereof
KR20200132938A (en) 2018-03-15 2020-11-25 추가이 세이야쿠 가부시키가이샤 Anti-dengue virus antibodies with cross-reactivity against Zika virus and methods of use
AU2019241350B2 (en) 2018-03-30 2025-10-02 Nanjing Legend Biotech Co., Ltd. Single-domain antibodies against LAG-3 and uses thereof
WO2019192432A1 (en) 2018-04-02 2019-10-10 上海博威生物医药有限公司 Lymphocyte activation gene-3 (lag-3) binding antibody and use thereof
TW202011029A (en) 2018-04-04 2020-03-16 美商建南德克公司 Methods for detecting and quantifying FGF21
AR115052A1 (en) 2018-04-18 2020-11-25 Hoffmann La Roche MULTI-SPECIFIC ANTIBODIES AND THE USE OF THEM
AR114789A1 (en) 2018-04-18 2020-10-14 Hoffmann La Roche ANTI-HLA-G ANTIBODIES AND THE USE OF THEM
FR3080621B1 (en) 2018-04-26 2022-12-09 Univ Limoges NEW CLASS OF RECOMBINANT G-TYPE IMMUNOGLOBULIN: IGG5, ENCODED BY THE HUMAN HEAVY CHAIN GAMMA PSEUDO-GENE
US12084489B2 (en) 2018-05-02 2024-09-10 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Antibodies and methods for the diagnosis, prevention, and treatment of Epstein Barr virus infection
JP7402541B2 (en) 2018-05-03 2023-12-21 ユニバーシティ オブ ロチェスター Anti-influenza neuraminidase monoclonal antibody and its use
MX2020012252A (en) 2018-05-14 2021-04-28 Werewolf Therapeutics Inc Activatable interleukin 12 polypeptides and methods of use thereof.
CN113840832A (en) 2018-05-14 2021-12-24 狼人治疗公司 Activatable interleukin-2 polypeptides and methods of using the same
PE20210342A1 (en) 2018-05-25 2021-02-23 Alector Llc ANTI-SIRPA ANTIBODIES AND METHODS OF USING THEM
JP7372237B2 (en) 2018-06-04 2023-10-31 中外製薬株式会社 Antigen-binding molecules with altered half-lives in the cytoplasm
US20220125891A1 (en) 2018-06-06 2022-04-28 Osaka University Method for treating and/or preventing regnase-1-related disease
CN119841953A (en) 2018-06-08 2025-04-18 艾利妥 Anti-SIGLEC-7 antibodies and methods of use thereof
US12129298B2 (en) 2018-06-21 2024-10-29 Daiichi Sankyo Company, Limited Compositions including CD3 antigen binding fragments and uses thereof
EP3810653A1 (en) 2018-06-23 2021-04-28 F. Hoffmann-La Roche AG Methods of treating lung cancer with a pd-1 axis binding antagonist, a platinum agent, and a topoisomerase ii inhibitor
WO2020006176A1 (en) 2018-06-27 2020-01-02 Obi Pharma, Inc. Glycosynthase variants for glycoprotein engineering and methods of use
US12060422B2 (en) 2018-06-29 2024-08-13 Alector Llc Anti-SIRP-Beta1 antibodies and methods of use thereof
AU2019297451A1 (en) 2018-07-03 2021-01-28 Marengo Therapeutics, Inc. Anti-TCR antibody molecules and uses thereof
PE20210186A1 (en) 2018-07-13 2021-02-02 Alector Llc ANTI-SORTILINE ANTIBODIES AND METHODS FOR ITS USE
KR20210041557A (en) 2018-07-17 2021-04-15 후맙스 바이오메드 에스에이 Antibodies to Campylobacter spp.
EP3823673A4 (en) 2018-07-20 2022-05-11 Surface Oncology, Inc. ANTI-CD112R COMPOSITIONS AND METHODS
JP2021532116A (en) 2018-07-23 2021-11-25 マジェンタ セラピューティクス インコーポレイテッドMagenta Therapeutics, Inc. Use of anti-CD5 antibody drug conjugate (ADC) in allogeneic cell therapy
AU2019310803B2 (en) 2018-07-25 2022-11-03 Innovent Biologics (Suzhou) Co., Ltd. Anti-TIGIT antibody and uses thereof
SG11202100555PA (en) 2018-07-27 2021-02-25 Alector Llc Anti-siglec-5 antibodies and methods of use thereof
BR112021001693A2 (en) 2018-08-03 2021-05-04 Chugai Seiyaku Kabushiki Kaisha antigen-binding molecule containing two q antigen-binding domains linked together
AU2019319822A1 (en) 2018-08-08 2021-03-18 Genentech, Inc. Use of tryptophan derivatives and L-methionine for protein formulation
EP3835321A4 (en) 2018-08-10 2022-11-02 Chugai Seiyaku Kabushiki Kaisha Anti-cd137 antigen-binding molecule and utilization thereof
BR112021003016A2 (en) 2018-08-31 2021-05-18 Alector Llc isolated antibodies, isolated nucleic acid, vector, host cell, methods for producing an antibody and for preventing, reducing the risk or treating a disease and pharmaceutical composition
GB201814281D0 (en) 2018-09-03 2018-10-17 Femtogenix Ltd Cytotoxic agents
AU2019342133B8 (en) 2018-09-21 2025-08-07 Genentech, Inc. Diagnostic methods for triple-negative breast cancer
KR20250154552A (en) 2018-09-27 2025-10-28 실리오 디벨럽먼트, 인크. Masked cytokine polypeptides
US12173057B2 (en) 2018-10-09 2024-12-24 Ibex Biosciences, Inc. Antibodies and therapeutic uses thereof
WO2020081493A1 (en) 2018-10-16 2020-04-23 Molecular Templates, Inc. Pd-l1 binding proteins
JP2022506108A (en) 2018-10-23 2022-01-17 グリカルディアル ダイアグノスティクス エセ. エレ. Antibodies specific for glycosylated ApoJ and their use
AU2019365238A1 (en) 2018-10-24 2021-05-13 F. Hoffmann-La Roche Ag Conjugated chemical inducers of degradation and methods of use
CN111116745B (en) 2018-11-01 2022-10-14 上海新理念生物医药科技有限公司 anti-CD79b antibody, drug conjugate thereof and application thereof
JP7499760B2 (en) 2018-11-02 2024-06-14 アネクソン,インコーポレーテッド Compositions and methods for treating brain injury
KR20210090645A (en) 2018-11-05 2021-07-20 제넨테크, 인크. Methods for producing two-chain proteins in prokaryotic host cells
TWI779253B (en) 2018-11-27 2022-10-01 大陸商信達生物製藥(蘇州)有限公司 ANTI-IL-23p19 ANTIBODY AND USE THEREOF
KR20210100668A (en) 2018-12-06 2021-08-17 제넨테크, 인크. Combination therapy of diffuse large B-cell lymphoma comprising an anti-CD79b immunoconjugate, an alkylating agent and an anti-CD20 antibody
WO2020123275A1 (en) 2018-12-10 2020-06-18 Genentech, Inc. Photocrosslinking peptides for site specific conjugation to fc-containing proteins
US12304946B2 (en) 2018-12-19 2025-05-20 Humabs Biomed Sa Antibodies that neutralize hepatitis B virus and uses thereof
JP2022514290A (en) 2018-12-20 2022-02-10 ジェネンテック, インコーポレイテッド Modified antibody FC and usage
EP3898671A1 (en) 2018-12-21 2021-10-27 F. Hoffmann-La Roche AG Antibody that binds to vegf and il-1beta and methods of use
BR112021012631A2 (en) 2018-12-26 2021-12-14 Xilio Dev Inc Anti-ctla4 antibodies and methods of using them
JP7650802B2 (en) 2018-12-30 2025-03-25 エフ. ホフマン-ラ ロシュ アーゲー Anti-rabbit CD19 antibodies and methods of use
US11352445B2 (en) 2018-12-31 2022-06-07 Jecho Laboratories Inc. Method for preparing recombinant protein from bacterium and composition containing the same
MX2021008621A (en) 2019-01-22 2021-08-19 Genentech Inc IMMUNOGLOBULIN A ANTIBODIES AND METHODS OF PRODUCTION AND USE.
GB201901197D0 (en) 2019-01-29 2019-03-20 Femtogenix Ltd G-A Crosslinking cytotoxic agents
CN119661722A (en) 2019-02-21 2025-03-21 马伦戈治疗公司 Multifunctional molecules that bind to T cell-associated cancer cells and their uses
EP3927747A1 (en) 2019-02-21 2021-12-29 Marengo Therapeutics, Inc. Antibody molecules that bind to nkp30 and uses thereof
WO2020176748A1 (en) 2019-02-27 2020-09-03 Genentech, Inc. Dosing for treatment with anti-tigit and anti-cd20 or anti-cd38 antibodies
CN114173876A (en) 2019-03-05 2022-03-11 武田药品工业有限公司 Conditionally active binding proteins containing Fc regions and moieties targeting tumor antigens
CN120484127A (en) 2019-03-05 2025-08-15 武田药品工业有限公司 Constrained conditionally active binding proteins
CA3126728A1 (en) 2019-03-08 2020-09-17 Genentech, Inc. Methods for detecting and quantifying membrane-associated proteins on extracellular vesicles
KR20210152472A (en) 2019-03-11 2021-12-15 메모리얼 슬로안 케터링 캔서 센터 CD22 antibody and methods of using the same
CN113613676A (en) 2019-03-19 2021-11-05 中外制药株式会社 Antigen binding molecule comprising antigen binding domain whose binding activity to antigen is changed by MTA and library for obtaining the same
JP2022528804A (en) 2019-04-18 2022-06-15 ジェネンテック, インコーポレイテッド Antibody titer test
CN114007643A (en) 2019-04-19 2022-02-01 中外制药株式会社 Chimeric receptors that recognize altered sites in antibodies
BR112021020867A2 (en) 2019-04-19 2022-01-04 Genentech Inc Antibodies, nucleic acid, vector, host cell, method of producing an antibody, immunoconjugate, pharmaceutical formulation, uses of the antibody, method of treating an individual with cancer, and method of reducing clearance
WO2020216947A1 (en) 2019-04-24 2020-10-29 Heidelberg Pharma Research Gmbh Amatoxin antibody-drug conjugates and uses thereof
JP7688584B2 (en) 2019-04-25 2025-06-04 エフ. ホフマン-ラ ロシュ アーゲー Therapeutic multispecific polypeptides activated by exchange of polypeptide chains - Patents.com
TW202106713A (en) 2019-04-25 2021-02-16 瑞士商赫孚孟拉羅股份公司 Activatable therapeutic multispecific polypeptides with extended half-life
JP2022531128A (en) 2019-04-25 2022-07-06 エフ.ホフマン-ラ ロシュ アーゲー Production of antibody-derived polypeptides by polypeptide chain exchange
JP7550794B2 (en) 2019-05-14 2024-09-13 ジェネンテック, インコーポレイテッド Methods of using anti-cd79b immunoconjugates to treat follicular lymphoma - Patents.com
EP3969035A4 (en) 2019-05-14 2023-06-21 Werewolf Therapeutics, Inc. SEPARATION CHARACTERISTIC GROUPS, ASSOCIATED PROCESSES AND USE
CA3137882A1 (en) 2019-05-23 2020-11-26 Tamara SEREDENINA Anti-tdp-43 binding molecules and uses thereof
US11613564B2 (en) 2019-05-31 2023-03-28 ALX Oncology Inc. Methods of treating cancer
US11535634B2 (en) 2019-06-05 2022-12-27 Massachusetts Institute Of Technology Compounds, conjugates, and compositions of epipolythiodiketopiperazines and polythiodiketopiperazines and uses thereof
TWI877170B (en) 2019-06-11 2025-03-21 美商阿列克特有限責任公司 Methods of use of anti-sortilin antibodies
CN113950485A (en) 2019-07-10 2022-01-18 中外制药株式会社 Claudin-6 binding molecules and uses thereof
AR119382A1 (en) 2019-07-12 2021-12-15 Hoffmann La Roche PRE-TARGETING ANTIBODIES AND METHODS OF USE
CN114341187A (en) 2019-07-12 2022-04-12 中外制药株式会社 Anti-mutant FGFR3 antibodies and uses thereof
CA3145885A1 (en) 2019-07-31 2021-02-04 Jeonghoon Sun Anti-ms4a4a antibodies and methods of use thereof
KR102509648B1 (en) 2019-08-06 2023-03-15 아프리노이아 테라퓨틱스 리미티드 Antibodies that bind to pathological Tau species and uses thereof
EP3786180A1 (en) 2019-08-27 2021-03-03 Diaccurate Antibodies and the uses thereof
IL290752B1 (en) 2019-08-29 2025-10-01 Vir Biotechnology Inc Compositions and methods for treatment of influenza a infection
NZ785788A (en) 2019-08-29 2025-09-26 Vir Biotechnology Inc Antibody compositions and methods for treating hepatitis b virus infection
CN114616250B (en) 2019-09-04 2024-11-08 豪夫迈·罗氏有限公司 CD8 binding agents and uses thereof
EP4438057A3 (en) 2019-09-12 2025-01-01 F. Hoffmann-La Roche AG Compositions and methods of treating lupus nephritis
CR20220156A (en) 2019-09-18 2022-05-23 Genentech Inc ANTI-KLK7 ANTIBODIES, ANTI-KLK5 ANTIBODIES, MULTISPECIFIC ANTI-KLK5/KLK7 ANTIBODIES AND METHODS OF USE
WO2021055816A1 (en) 2019-09-18 2021-03-25 Molecular Templates, Inc. Pd-l1 binding molecules comprising shiga toxin a subunit scaffolds
WO2021055881A1 (en) 2019-09-20 2021-03-25 Denali Therapeutics Inc. Anti-alpha-synuclein antibodies and methods of use thereof
JP2022550067A (en) 2019-09-27 2022-11-30 ヤンセン バイオテツク,インコーポレーテツド Anti-CEACAM antibody and use thereof
JP2022548978A (en) 2019-09-27 2022-11-22 ジェネンテック, インコーポレイテッド Dosing for Treatment with Drugs Anti-TIGIT and Anti-PD-L1 Antagonist Antibodies
WO2021057978A1 (en) 2019-09-27 2021-04-01 南京金斯瑞生物科技有限公司 Anti-vhh domain antibodies and use thereof
CR20220166A (en) 2019-10-18 2022-06-15 Genentech Inc Methods of using anti-cd79b immunoconjugates to treat diffuse large b-cell lymphoma
WO2021081440A2 (en) 2019-10-24 2021-04-29 Minotaur Therapeutics, Inc. Chimeric cytokine modified antibodies and methods of use thereof
US20220389103A1 (en) 2019-11-06 2022-12-08 Genentech, Inc. Diagnostic and therapeutic methods for treatment of hematologic cancers
CN117106071B (en) 2019-11-11 2024-08-27 珠海泰诺麦博制药股份有限公司 Antibodies against varicella zoster virus
WO2021097376A1 (en) 2019-11-14 2021-05-20 Werewolf Therapeutics, Inc. Activatable cytokine polypeptides and methods of use thereof
WO2021097360A1 (en) 2019-11-15 2021-05-20 University Of Tennessee Research Foundation Modified immunoglobulins for targeting amyloid deposits
EP4057980A1 (en) 2019-11-15 2022-09-21 F. Hoffmann-La Roche AG Prevention of visible particle formation in aqueous protein solutions
US20230024528A1 (en) 2019-12-05 2023-01-26 Alector Llc Methods of use of anti-trem2 antibodies
US12076400B2 (en) 2019-12-06 2024-09-03 Zymeworks Bc Inc. Methods of using a bispecific antigen-binding construct targeting HER2 in combination with CDK4/6 inhibitors for the treatment of breast cancer
CN115066437A (en) 2019-12-12 2022-09-16 艾利妥 Methods of using anti-CD 33 antibodies
BR112022011357A2 (en) 2019-12-13 2022-08-23 Genentech Inc ISOLATED ANTIBODIES, ONE OR MORE ISOLATED NUCLEIC ACIDS, ONE OR MORE VECTORS, ONE OR MORE HOST CELLS, COMPOSITION, KIT, ANTIBODY USE, METHODS TO PRODUCE THE ANTIBODY AND METHOD TO TREAT OR DELAY PROGRESSION OF A LY6G6D POSITIVE CANCER
PH12022551398A1 (en) 2019-12-13 2023-10-09 Alector Llc Anti-mertk antibodies and methods of use thereof
EP4076663A1 (en) 2019-12-18 2022-10-26 F. Hoffmann-La Roche AG Bispecific anti-ccl2 antibodies
CR20220334A (en) 2019-12-23 2022-08-26 Genentech Inc APOLIPOPROTEIN L1 SPECIFIC ANTIBODIES AND METHODS OF USE
EP4082570A4 (en) 2019-12-27 2023-09-13 Chugai Seiyaku Kabushiki Kaisha ANTI-CTLA-4 ANTIBODY AND ITS USE
GB2609554B (en) 2020-01-03 2025-08-20 Marengo Therapeutics Inc Anti-TCR antibody molecules and uses thereof
CN110818795B (en) 2020-01-10 2020-04-24 上海复宏汉霖生物技术股份有限公司 anti-TIGIT antibodies and methods of use
MX2022008773A (en) 2020-01-15 2022-10-03 Trutino Biosciences Inc Cytokine il-2 prodrugs comprising a cleavable linker.
WO2021194481A1 (en) 2020-03-24 2021-09-30 Genentech, Inc. Dosing for treatment with anti-tigit and anti-pd-l1 antagonist antibodies
WO2022050954A1 (en) 2020-09-04 2022-03-10 Genentech, Inc. Dosing for treatment with anti-tigit and anti-pd-l1 antagonist antibodies
US20230078601A1 (en) 2020-01-31 2023-03-16 The Cleveland Clinic Foundation Anti-mullerian hormone receptor 2 antibodies and methods of use
EP4100434A1 (en) 2020-02-03 2022-12-14 VIR Biotechnology, Inc. Antibodies against sars-cov-2 and methods of using the same
KR20220139357A (en) 2020-02-10 2022-10-14 상하이 에스쿠겐 바이오테크놀로지 컴퍼니 리미티드 CLDN18.2 Antibodies and Their Uses
KR20220140786A (en) 2020-02-10 2022-10-18 상하이 에스쿠겐 바이오테크놀로지 컴퍼니 리미티드 Claudin 18.2 Antibodies and Their Uses
TWI895351B (en) 2020-02-12 2025-09-01 日商中外製藥股份有限公司 Anti-CD137 antigen binding molecules for the treatment of cancer
EP4110814A1 (en) 2020-02-24 2023-01-04 Alector LLC Methods of use of anti-trem2 antibodies
TWI859420B (en) 2020-02-26 2024-10-21 美商維爾生物科技股份有限公司 Antibodies against sars-cov-2 and methods of using the same
TW202144410A (en) 2020-03-13 2021-12-01 美商建南德克公司 Anti-interleukin-33 antibodies and uses thereof
TWI867190B (en) 2020-03-19 2024-12-21 美商建南德克公司 Isoform-selective anti-tgf-beta antibodies and methods of use
CN120757643A (en) 2020-03-24 2025-10-10 基因泰克公司 TIE2 binders and methods of use thereof
WO2021198034A1 (en) 2020-03-30 2021-10-07 F. Hoffmann-La Roche Ag Antibody that binds to vegf and pdgf-b and methods of use
JP2023519962A (en) 2020-03-31 2023-05-15 アレクトル エルエルシー ANTI-MERTK ANTIBODY AND METHOD OF USE THEREOF
EP4126970A4 (en) 2020-03-31 2024-05-01 Chugai Seiyaku Kabushiki Kaisha METHOD FOR PRODUCING MULTI-SPECIFIC ANTIGEN-BINDING MOLECULES
EP4126934A1 (en) 2020-04-01 2023-02-08 University of Rochester Monoclonal antibodies against the hemagglutinin (ha) and neuraminidase (na) of influenza h3n2 viruses
EP4130732A4 (en) 2020-04-02 2024-06-19 Chugai Seiyaku Kabushiki Kaisha ANALYSIS METHODS FOR IMPURIT MOLECULES IN A COMPOSITION WITH MULTI-SPECIFIC ANTIGEN-BINDING MOLECULES
WO2021203053A1 (en) 2020-04-03 2021-10-07 Vir Biotechnology, Inc. Immunotherapy targeting a conserved region in sars coronaviruses
IL296992A (en) 2020-04-03 2022-12-01 Alector Llc Methods for using anti-trem2 antibodies
WO2021207662A1 (en) 2020-04-10 2021-10-14 Genentech, Inc. Use of il-22fc for the treatment or prevention of pneumonia, acute respiratory distress syndrome, or cytokine release syndrome
EP4135846A1 (en) 2020-04-14 2023-02-22 VIR Biotechnology, Inc. Antibodies against sars-cov-2 and methods of using the same
CN113527482B (en) 2020-04-17 2023-07-21 珠海泰诺麦博制药股份有限公司 Antibody against human nerve growth factor
CN115916822A (en) 2020-04-24 2023-04-04 基因泰克公司 Methods of using anti-CD79b immunoconjugates
US20230265204A1 (en) 2020-04-24 2023-08-24 Hoffmann-La Roche Inc. Enzyme and pathway modulation with sulfhydryl compounds and their derivatives
CA3172880A1 (en) 2020-04-27 2021-11-04 Sotirios Tsimikas Isoform-independent antibodies to lipoprotein(a)
US11634477B2 (en) 2020-04-28 2023-04-25 The Rockefeller University Neutralizing anti-SARS-CoV-2 antibodies and methods of use thereof
WO2021222333A1 (en) 2020-04-30 2021-11-04 Genentech, Inc. Kras specific antibodies and uses thereof
TW202200212A (en) 2020-05-03 2022-01-01 中國大陸商聯寧(蘇州)生物製藥有限公司 Antibody-drug conjugates comprising an anti-trop-2 antibody
JP2023525039A (en) 2020-05-08 2023-06-14 ヴィア・バイオテクノロジー・インコーポレイテッド Antibodies against SARS-COV-2
WO2021228917A1 (en) 2020-05-15 2021-11-18 F. Hoffmann-La Roche Ag Prevention of visible particle formation in parenteral protein solutions
EP4153130A1 (en) 2020-05-19 2023-03-29 F. Hoffmann-La Roche AG The use of chelators for the prevention of visible particle formation in parenteral protein solutions
WO2021247925A1 (en) 2020-06-03 2021-12-09 Vir Biotechnology, Inc. Structure-guided immunotherapy against sars-cov-2
AR122569A1 (en) 2020-06-08 2022-09-21 Hoffmann La Roche ANTI-HBV ANTIBODIES AND METHODS OF USE
CA3180477A1 (en) 2020-06-12 2021-12-16 Elizabeth Alexander Antibody therapies for sars-cov-2 infection
EP4164627A1 (en) 2020-06-16 2023-04-19 Genentech, Inc. Methods and compositions for treating triple-negative breast cancer
US20210395366A1 (en) 2020-06-18 2021-12-23 Genentech, Inc. Treatment with anti-tigit antibodies and pd-1 axis binding antagonists
AR122722A1 (en) 2020-06-24 2022-09-28 Vir Biotechnology Inc ANTIBODIES THAT NEUTRALIZE HEPATITIS B VIRUS AND THEIR USES
EP4178529A1 (en) 2020-07-07 2023-05-17 F. Hoffmann-La Roche AG Alternative surfactants as stabilizers for therapeutic protein formulations
PE20230434A1 (en) 2020-07-10 2023-03-08 Hoffmann La Roche ANTIBODIES THAT BIND TO CANCER CELLS AND DIRECT RADIONUCLEOTIDES TO THESE CELLS
WO2022013189A1 (en) 2020-07-14 2022-01-20 F. Hoffmann-La Roche Ag Assays for fixed dose combinations
EP3939999A1 (en) 2020-07-14 2022-01-19 Fundación del Sector Público Estatal Centro Nacional de Investigaciones Oncológicas Carlos III (F.S.P. CNIO) Interleukin 11 receptor alpha subunit (il11ra) neutralizing antibodies and uses thereof
WO2022016037A1 (en) 2020-07-17 2022-01-20 Genentech, Inc. Anti-notch2 antibodies and methods of use
KR20230042032A (en) 2020-07-21 2023-03-27 제넨테크, 인크. Antibody Conjugation Chemical Inducers of BRM Degradation and Methods Thereof
GB2597532A (en) 2020-07-28 2022-02-02 Femtogenix Ltd Cytotoxic compounds
EP4188958A1 (en) 2020-07-31 2023-06-07 Genentech, Inc. Anti-integrin beta7 antibody formulations and devices
KR20230042596A (en) 2020-08-07 2023-03-28 제넨테크, 인크. FLT3 ligand fusion proteins and methods of use
JP2023537761A (en) 2020-08-14 2023-09-05 エイシー イミューン ソシエテ アノニム Humanized anti-TDP-43 binding molecules and uses thereof
EP4204448A2 (en) 2020-08-27 2023-07-05 cureab GmbH Anti-golph2 antibodies for macrophage and dendritic cell differentiation
CR20230114A (en) 2020-09-04 2023-05-18 Hoffmann La Roche Antibody that binds to vegf-a and ang2 and methods of use
WO2022066973A1 (en) 2020-09-24 2022-03-31 Fred Hutchinson Cancer Research Center Immunotherapy targeting pbk or oip5 antigens
WO2022066965A2 (en) 2020-09-24 2022-03-31 Fred Hutchinson Cancer Research Center Immunotherapy targeting sox2 antigens
EP4217385A2 (en) 2020-09-28 2023-08-02 VIR Biotechnology, Inc. Antibodies against sars-cov-2
CN116406291A (en) 2020-10-05 2023-07-07 基因泰克公司 Administration of Therapy with Anti-FCRH5/Anti-CD3 Bispecific Antibody
CN116391127A (en) 2020-10-16 2023-07-04 基因泰克公司 Anti-cleavage ICASPASE substrate antibodies and methods of use thereof
AR123855A1 (en) 2020-10-20 2023-01-18 Genentech Inc PEG-CONJUGATED ANTI-MERTK ANTIBODIES AND METHODS OF USE
US20250270302A1 (en) 2020-10-20 2025-08-28 Kantonsspital St. Gallen Antibodies or antigen-binding fragments specifically binding to gremlin-1 and uses thereof
TWI888665B (en) 2020-11-04 2025-07-01 美商建南德克公司 Subcutaneous dosing of anti-cd20/anti-cd3 bispecific antibodies
EP4240758A1 (en) 2020-11-04 2023-09-13 The Rockefeller University Neutralizing anti-sars-cov-2 antibodies
CA3196191A1 (en) 2020-11-04 2022-05-12 Chi-Chung Li Dosing for treatment with anti-cd20/anti-cd3 bispecific antibodies and anti-cd79b antibody drug conjugates
US12351643B2 (en) 2020-11-04 2025-07-08 Genentech, Inc. Dosing for treatment with anti-CD20/anti-CD3 bispecific antibodies
JP2023551667A (en) 2020-11-23 2023-12-12 ヴィア・バイオテクノロジー・インコーポレイテッド Anti-influenza antibodies and combinations thereof
WO2022109309A1 (en) 2020-11-23 2022-05-27 Vir Biotechnology, Inc. Broadly neutralizing antibodies against influenza neuraminidase
KR20230135569A (en) 2020-11-23 2023-09-25 비르 바이오테크놀로지, 인코포레이티드 Antibodies to influenza A virus
EP4251187A4 (en) 2020-11-25 2025-09-10 Xilio Dev Inc Tumor-specific cleavable linkers
WO2022115486A1 (en) 2020-11-25 2022-06-02 Vir Biotechnology, Inc. Antibodies that bind to multiple betacoronaviruses
JP2023553399A (en) 2020-12-02 2023-12-21 アレクトル エルエルシー How to use anti-Sortilin antibodies
US20220196651A1 (en) 2020-12-06 2022-06-23 ALX Oncology Inc. Multimers for reducing the interference of drugs that bind cd47 in serological assays
IL303295A (en) 2020-12-07 2023-07-01 UCB Biopharma SRL Multispecific antibodies and antibody combinations
AU2021398385A1 (en) 2020-12-07 2023-07-13 UCB Biopharma SRL Antibodies against interleukin-22
CN116917315A (en) 2020-12-08 2023-10-20 维尔生物科技有限公司 Antibodies and methods for treating influenza A infection
PE20240819A1 (en) 2020-12-17 2024-04-18 Hoffmann La Roche ANTI-HLA-G ANTIBODIES AND THEIR USE
EP4269435A4 (en) 2020-12-23 2025-06-18 Fortvita Biologics (Singapore) Pte. Ltd. ANTI-B7-H3 ANTIBODY AND ITS USES
WO2022140797A1 (en) 2020-12-23 2022-06-30 Immunowake Inc. Immunocytokines and uses thereof
IL304067A (en) 2021-01-06 2023-08-01 Hoffmann La Roche Combination therapy employing a pd1-lag3 bispecific antibody and a cd20 t cell bispecific antibody
MX2023008084A (en) 2021-01-12 2023-07-13 Hoffmann La Roche Split antibodies which bind to cancer cells and target radionuclides to said cells.
US20240115721A1 (en) 2021-01-13 2024-04-11 Memorial Sloan Kettering Cancer Center Anti-dll3 antibody-drug conjugate
CA3204628A1 (en) 2021-01-13 2022-07-21 John T. POIRIER Antibody-pyrrolobenzodiazepine derivative conjugate
US12060411B2 (en) 2021-01-15 2024-08-13 The Rockefeller University Neutralizing anti-SARS-CoV-2 antibodies
EP4281186A1 (en) 2021-01-22 2023-11-29 Elpis Biopharmaceuticals Anti-pd-l1 monoclonal antibodies and fusion proteins with interleukin-15 (il-15), interleukin-15 receptor 15 alpha or interleukin-2
WO2022159842A1 (en) 2021-01-25 2022-07-28 Vir Biotechnology, Inc. Antibody combination therapies for sars-cov-2 infection
US20240092872A1 (en) 2021-01-26 2024-03-21 Vir Biotechnology, Inc. Compositions and methods for treating hepatitis b virus infection
WO2022162587A1 (en) 2021-01-27 2022-08-04 Centre Hospitalier Universitaire Vaudois (C.H.U.V.) Anti-sars-cov-2 antibodies and use thereof in the treatment of sars-cov-2 infection
WO2022162203A1 (en) 2021-01-28 2022-08-04 Vaccinvent Gmbh Method and means for modulating b-cell mediated immune responses
CN117120084A (en) 2021-01-28 2023-11-24 维肯芬特有限责任公司 Methods and means for modulating B cell-mediated immune responses
CA3206395A1 (en) 2021-01-28 2022-08-04 Hassan JUMAA-WEINACHT Method and means for modulating b-cell mediated immune responses
WO2022169872A1 (en) 2021-02-03 2022-08-11 Genentech, Inc. Multispecific binding protein degrader platform and methods of use
EP4289865A1 (en) 2021-02-04 2023-12-13 Innovent Biologics (Suzhou) Co., Ltd. Anti-tnfr2 antibody and use thereof
WO2022169274A2 (en) 2021-02-04 2022-08-11 주식회사 지뉴브 Anti-pd-1 antibody and use thereof
US20240101648A1 (en) 2021-02-09 2024-03-28 Humabs Biomed Sa Antibodies against respiratory syncytial virus, human metapneumovirus and pneumonia virus of mice and methods of using the same
WO2022182415A1 (en) 2021-02-24 2022-09-01 Massachusetts Institute Of Technology Himastatin derivatives, and processes of preparation thereof, and uses thereof
EP4301467A1 (en) 2021-03-01 2024-01-10 Xilio Development, Inc. Combination of ctla4 and pd1/pdl1 antibodies for treating cancer
CN116917325A (en) 2021-03-01 2023-10-20 西里欧发展公司 Combination of masked CTLA4 and PD1/PDL1 antibodies for the treatment of cancer
CA3210069A1 (en) 2021-03-03 2022-09-09 Tong Zhu Antibody-drug conjugates comprising an anti-bcma antibody
AU2022232951B2 (en) 2021-03-10 2025-06-26 Immunowake Inc. Immunomodulatory molecules and uses thereof
AR125074A1 (en) 2021-03-12 2023-06-07 Genentech Inc ANTI-KLK7 ANTIBODIES, ANTI-KLK5 ANTIBODIES, ANTI-KLK5/KLK7 MULTI-SPECIFIC ANTIBODIES AND METHODS OF USE
MX2023010812A (en) 2021-03-15 2023-09-27 Genentech Inc Compositions and methods of treating lupus nephritis.
US20220306700A1 (en) 2021-03-17 2022-09-29 Molecular Templates, Inc. Pd-l1 binding proteins comprising shiga toxin a subunit scaffolds and cd8+ t cell antigens
CN116981696A (en) 2021-03-18 2023-10-31 艾莱克特有限责任公司 Anti-TMEM106B antibodies and methods of use
WO2022197877A1 (en) 2021-03-19 2022-09-22 Genentech, Inc. Methods and compositions for time delayed bio-orthogonal release of cytotoxic agents
JP2024511610A (en) 2021-03-23 2024-03-14 アレクトル エルエルシー Anti-TMEM106B antibody for treatment and prevention of coronavirus infection
WO2022204202A1 (en) 2021-03-23 2022-09-29 Vir Biotechnology, Inc. Antibodies that bind to multiple sarbecoviruses
EP4067376A1 (en) 2021-03-30 2022-10-05 Diaccurate Anti-pla2g1b monoclonal antibodies and uses thereof
AR125344A1 (en) 2021-04-15 2023-07-05 Chugai Pharmaceutical Co Ltd ANTI-C1S ANTIBODY
WO2022232321A1 (en) 2021-04-28 2022-11-03 Minotaur Therapeutics, Inc. Humanized chimeric bovine antibodies and methods of use
MX2023012408A (en) 2021-04-30 2023-10-31 Hoffmann La Roche Dosing for combination treatment with anti-cd20/anti-cd3 bispecific antibody and anti-cd79b antibody drug conjugate.
CN117642428A (en) 2021-05-03 2024-03-01 Ucb生物制药有限责任公司 Antibody
EP4334343A2 (en) 2021-05-06 2024-03-13 The Rockefeller University Neutralizing anti-sars- cov-2 antibodies and methods of use thereof
MX2023013264A (en) 2021-05-12 2023-11-30 Genentech Inc Methods of using anti-cd79b immunoconjugates to treat diffuse large b-cell lymphoma.
JP2024520902A (en) 2021-05-13 2024-05-27 エーエルエックス オンコロジー インコーポレイテッド Combination Therapies for Treating Cancer
CN117396510A (en) 2021-05-14 2024-01-12 基因泰克公司 TREM2 agonist
KR20240058050A (en) 2021-05-18 2024-05-03 유니버시티 오브 테네시 리서치 파운데이션 Antibody-peptide fusion protein for the treatment of amyloid disorders
AU2022280767A1 (en) 2021-05-24 2024-01-18 Humabs Biomed Sa Engineered polypeptides
TW202307006A (en) 2021-06-03 2023-02-16 美商表面腫瘤學公司 Methods of treating cancer with an anti-cd39 antibody and pembrolizumab
JP2024520261A (en) 2021-06-04 2024-05-24 中外製薬株式会社 Anti-DDR2 Antibodies and Uses Thereof
EP4355783A1 (en) 2021-06-16 2024-04-24 Alector LLC Monovalent anti-mertk antibodies and methods of use thereof
WO2022266223A1 (en) 2021-06-16 2022-12-22 Alector Llc Bispecific anti-mertk and anti-pdl1 antibodies and methods of use thereof
JP2024526103A (en) 2021-06-17 2024-07-17 ジェネンテック, インコーポレイテッド Anti-ubiquitination antibodies and methods of use
WO2022263638A1 (en) 2021-06-17 2022-12-22 Centre Hospitalier Universitaire Vaudois (C.H.U.V.) Anti-sars-cov-2 antibodies and use thereof in the treatment of sars-cov-2 infection
AU2022294106A1 (en) 2021-06-18 2024-01-25 Therini Bio, Inc. ANTIBODIES WHICH BIND HUMAN FIBRIN OR FIBRINOGEN γC DOMAIN AND METHODS OF USE
CA3221735A1 (en) 2021-06-18 2022-12-22 F. Hoffmann-La Roche Ag Bispecific anti-ccl2 antibodies
CA3220353A1 (en) 2021-06-25 2022-12-29 Chugai Seiyaku Kabushiki Kaisha Use of anti-ctla-4 antibody
AR126220A1 (en) 2021-06-25 2023-09-27 Chugai Pharmaceutical Co Ltd ANTI-CTLA-4 ANTIBODY
US20230048743A1 (en) 2021-07-12 2023-02-16 Genentech Inc. Structures for Reducing Antibody-Lipase Binding
IL309856A (en) 2021-07-14 2024-02-01 Genentech Inc Anti-c-c motif chemokine receptor 8 (ccr8) antibodies and methods of use
AU2022314797A1 (en) 2021-07-21 2024-02-22 Trutino Biosciences Inc. Linker polypeptides
JP2024526880A (en) 2021-07-22 2024-07-19 ジェネンテック, インコーポレイテッド Brain targeting compositions and methods of use thereof
CN117730102A (en) 2021-07-22 2024-03-19 豪夫迈·罗氏有限公司 Heterodimeric Fc domain antibodies
CN117794953A (en) 2021-08-03 2024-03-29 豪夫迈·罗氏有限公司 Bispecific antibodies and methods of use
JP2024532139A (en) 2021-08-18 2024-09-05 フィリップ・モーリス・プロダクツ・ソシエテ・アノニム Antibodies and antigen-binding fragments thereof
EP4388014A1 (en) 2021-08-19 2024-06-26 F. Hoffmann-La Roche AG Multivalent anti-variant fc-region antibodies and methods of use
GB202111905D0 (en) 2021-08-19 2021-10-06 UCB Biopharma SRL Antibodies
MX2024002295A (en) 2021-08-27 2024-03-07 Genentech Inc Methods of treating tau pathologies.
TW202315895A (en) 2021-08-27 2023-04-16 瑞士商休曼生物醫藥股份公司 Engineered compositions
WO2023034750A1 (en) 2021-08-30 2023-03-09 Genentech, Inc. Anti-polyubiquitin multispecific antibodies
WO2023034866A1 (en) 2021-09-01 2023-03-09 Vir Biotechnology, Inc. Antibody therapies for sars-cov-2 infection in pediatric subjects
WO2023034871A1 (en) 2021-09-01 2023-03-09 Vir Biotechnology, Inc. High concentration antibody therapies for sars-cov-2 infection
US20250051452A1 (en) 2021-09-07 2025-02-13 Etablissement Francais Du Sang Targeted regulation of platelet and megakaryocyte activation by heteroreceptor co-clustering
WO2023039442A1 (en) 2021-09-08 2023-03-16 Vir Biotechnology, Inc. Broadly neutralizing antibody combination therapies for sars-cov-2 infection
JPWO2023053282A1 (en) 2021-09-29 2023-04-06
TW202321308A (en) 2021-09-30 2023-06-01 美商建南德克公司 Methods for treatment of hematologic cancers using anti-tigit antibodies, anti-cd38 antibodies, and pd-1 axis binding antagonists
TW202333781A (en) 2021-10-08 2023-09-01 日商中外製藥股份有限公司 Anti-hla-dq2.5 antibody formulation
WO2023069919A1 (en) 2021-10-19 2023-04-27 Alector Llc Anti-cd300lb antibodies and methods of use thereof
JP2024540374A (en) 2021-11-05 2024-10-31 アメリカン ダイアグノスティックス アンド セラピー, エルエルシー (エーディーエックスアールエックス) Monoclonal antibodies against carcinoembryonic antigens and their uses
WO2023081898A1 (en) 2021-11-08 2023-05-11 Alector Llc Soluble cd33 as a biomarker for anti-cd33 efficacy
EP4430072A1 (en) 2021-11-10 2024-09-18 Genentech, Inc. Anti-interleukin-33 antibodies and uses thereof
CA3236006A1 (en) 2021-11-16 2023-05-25 Genentech, Inc. Methods and compositions for treating systemic lupus erythematosus (sle) with mosunetuzumab
CR20240231A (en) 2021-11-16 2024-07-09 Ac Immune Sa NOVEL MOLECULES FOR THERAPIES AND DIAGNOSTICS
WO2023092090A1 (en) 2021-11-18 2023-05-25 Matrivax, Inc. Immunogenic fusion protein compositions and methods of use thereof
KR20240116755A (en) 2021-12-17 2024-07-30 상하이 헨리우스 바이오테크, 인크. Anti-OX40 antibodies, multispecific antibodies and methods of use thereof
AU2022411573A1 (en) 2021-12-17 2024-06-27 Shanghai Henlius Biologics Co., Ltd. Anti-ox40 antibodies and methods of use
UY40097A (en) 2022-01-07 2023-07-14 Johnson & Johnson Entpr Innovation Inc MATERIALS AND METHODS FOR IL-1B BINDING PROTEINS
US20230322958A1 (en) 2022-01-19 2023-10-12 Genentech, Inc. Anti-Notch2 Antibodies and Conjugates and Methods of Use
WO2023147399A1 (en) 2022-01-27 2023-08-03 The Rockefeller University Broadly neutralizing anti-sars-cov-2 antibodies targeting the n-terminal domain of the spike protein and methods of use thereof
CR20240378A (en) 2022-02-16 2024-10-03 Ac Immune Sa Humanized anti-tdp-43 binding molecules and uses thereof
AU2023225020A1 (en) 2022-02-23 2024-09-12 Alector Llc Methods of use of anti-trem2 antibodies
EP4238988A1 (en) 2022-03-01 2023-09-06 Consejo Superior De Investigaciones Científicas Antibodies against sars-cov-2 and uses thereof
KR20240164782A (en) 2022-03-23 2024-11-20 에프. 호프만-라 로슈 아게 Combination therapy with anti-CD20/anti-CD3 bispecific antibodies and chemotherapy
AU2023240941A1 (en) 2022-03-25 2024-09-19 Shanghai Henlius Biologics Co., Ltd. Anti-msln antibodies and methods of use
CN119487067A (en) 2022-04-01 2025-02-18 基因泰克公司 Administration of Therapeutic Antibodies Using Anti-FCRH5/Anti-CD3 Bispecific Antibodies
WO2023194565A1 (en) 2022-04-08 2023-10-12 Ac Immune Sa Anti-tdp-43 binding molecules
WO2023201256A1 (en) 2022-04-12 2023-10-19 Vir Biotechnology, Inc. High dose antibody therapies for sars-cov-2 infection
KR20250004776A (en) 2022-04-13 2025-01-08 에프. 호프만-라 로슈 아게 Pharmaceutical compositions and methods of use of anti-CD20/anti-CD3 bispecific antibodies
CA3247048A1 (en) 2022-04-13 2023-10-19 Genentech Inc Pharmaceutical compositions of mosunetuzumab and methods of use
AR129062A1 (en) 2022-04-13 2024-07-10 Genentech Inc PHARMACEUTICAL COMPOSITIONS OF THERAPEUTIC PROTEINS AND METHODS OF USE
AU2023258146A1 (en) 2022-04-20 2024-09-05 Kantonsspital St. Gallen Antibodies or antigen-binding fragments pan-specifically binding to gremlin-1 and gremlin-2 and uses thereof
KR20250006932A (en) 2022-05-03 2025-01-13 제넨테크, 인크. Anti-Ly6E antibodies, immunoconjugates and uses thereof
US20250297282A1 (en) 2022-05-05 2025-09-25 Juno Therapeutics Gmbh Viral-binding protein and related reagents, articles, and methods of use
IL316738A (en) 2022-05-11 2024-12-01 Genentech Inc Dosing for treatment with anti-fcrh5/anti-cd3 bispecific antibodies
AR129268A1 (en) 2022-05-11 2024-08-07 Hoffmann La Roche ANTIBODY THAT BINDS TO VEGF-A AND IL6 AND METHODS OF USE
AR129399A1 (en) 2022-05-23 2024-08-21 Vir Biotechnology Inc DESIGNED ANTIBODIES NEUTRALIZING HEPATITIS B VIRUS AND THEIR USES
WO2023230448A1 (en) 2022-05-23 2023-11-30 Vir Biotechnology, Inc. Combination immunotherapy for influenza
JP2025522295A (en) 2022-05-23 2025-07-15 ヒューマブス・バイオメッド・ソシエテ・アノニム Broadly neutralizing antibodies against influenza neuraminidase
JP2025523387A (en) 2022-06-07 2025-07-23 ジェネンテック, インコーポレイテッド Methods for determining efficacy of lung cancer treatments including anti-PD-L1 antagonist and anti-TIGIT antagonist antibodies
WO2023237706A2 (en) 2022-06-08 2023-12-14 Institute For Research In Biomedicine (Irb) Cross-specific antibodies, uses and methods for discovery thereof
WO2023245078A1 (en) 2022-06-15 2023-12-21 Humabs Biomed Sa Anti-parvovirus antibodies and uses thereof
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WO2024006472A1 (en) 2022-06-30 2024-01-04 Vir Biotechnology, Inc. Antibodies that bind to multiple sarbecoviruses
EP4554978A1 (en) 2022-07-13 2025-05-21 Genentech, Inc. Dosing for treatment with anti-fcrh5/anti-cd3 bispecific antibodies
TW202413433A (en) 2022-07-19 2024-04-01 美商建南德克公司 Dosing for treatment with anti-fcrh5/anti-cd3 bispecific antibodies
AU2023312051A1 (en) 2022-07-22 2025-01-09 Genentech, Inc. Anti-steap1 antigen-binding molecules and uses thereof
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EP4561703A1 (en) 2022-07-29 2025-06-04 Alector LLC Anti-gpnmb antibodies and methods of use thereof
EP4577578A1 (en) 2022-08-22 2025-07-02 Abdera Therapeutics Inc. Dll3 binding molecules and uses thereof
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WO2024068996A1 (en) 2022-09-30 2024-04-04 Centre Hospitalier Universitaire Vaudois (C.H.U.V.) Anti-sars-cov-2 antibodies and use thereof in the treatment of sars-cov-2 infection
AU2023356218A1 (en) 2022-10-07 2025-04-24 Genentech, Inc. Methods of treating cancer with anti-c-c motif chemokine receptor 8 (ccr8) antibodies
WO2024079074A1 (en) 2022-10-10 2024-04-18 Universite D'aix Marseille ANTI-sCD146 ANTIBODIES AND USES THEREOF
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AU2023375342A1 (en) 2022-11-08 2025-04-24 F. Hoffmann-La Roche Ag Compositions and methods of treating childhood onset idiopathic nephrotic syndrome
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EP4619427A1 (en) 2022-11-15 2025-09-24 F. Hoffmann-La Roche AG Recombinant binding proteins with activatable effector domain
WO2024107749A1 (en) 2022-11-16 2024-05-23 Attralus, Inc. Fusion proteins that bind amyloid and the transferrin receptor and uses thereof
WO2024112818A1 (en) 2022-11-22 2024-05-30 Humabs Biomed Sa Engineered anti-sars-cov-2 antibodies and uses thereof
AR131163A1 (en) 2022-11-25 2025-02-19 Chugai Pharmaceutical Co Ltd METHODS FOR PRODUCING PROTEINS
WO2024118998A2 (en) 2022-12-01 2024-06-06 Vir Biotechnology, Inc. Engineered anti-sars-cov-2 antibodies and methods of using the same
WO2024120516A1 (en) 2022-12-08 2024-06-13 南京诺唯赞生物科技股份有限公司 Antibodies specifically binding to rsv
WO2024121632A1 (en) 2022-12-09 2024-06-13 Crispr Therapeutics Ag Use of anti-cd117 antibody drug conjugate (adc)
EP4644548A1 (en) 2022-12-27 2025-11-05 Chugai Seiyaku Kabushiki Kaisha Polypeptide with controlled association
EP4646270A2 (en) 2023-01-06 2025-11-12 Alector LLC Anti-il18 binding protein antibodies and methods of use thereof
US20240360229A1 (en) 2023-01-18 2024-10-31 Genentech, Inc. Multispecific antibodies and uses thereof
WO2024182781A1 (en) 2023-03-02 2024-09-06 Vir Biotechnology, Inc. Coronavirus compositions and uses thereof
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WO2024206788A1 (en) 2023-03-31 2024-10-03 Genentech, Inc. Anti-alpha v beta 8 integrin antibodies and methods of use
WO2024215762A1 (en) 2023-04-10 2024-10-17 Vir Biotechnology, Inc. Antibodies that bind to multiple sarbecoviruses
CN120936723A (en) 2023-04-13 2025-11-11 豪夫迈·罗氏有限公司 Improved recombinant polyadenylation signal sequences and uses thereof
AU2024257248A1 (en) 2023-04-17 2025-11-06 Peak Bio, Inc. Antibodies and antibody-drug conjugates and methods of use and synthetic processes and intermediates
WO2024233341A1 (en) 2023-05-05 2024-11-14 Genentech, Inc. Dosing for treatment with anti-fcrh5/anti-cd3 bispecific antibodies
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WO2024233646A1 (en) 2023-05-10 2024-11-14 Genentech, Inc. Methods and compositions for treating cancer
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US20250011450A1 (en) 2023-06-22 2025-01-09 Genentech, Inc. Antibodies and uses thereof
WO2024263845A1 (en) 2023-06-22 2024-12-26 Genentech, Inc. Treatment of multiple myeloma
WO2025010424A1 (en) 2023-07-06 2025-01-09 Vir Biotechnology, Inc. Antibodies against staphylococcus antigens and methods of using the same
WO2025015321A1 (en) 2023-07-13 2025-01-16 Vir Biotechnology, Inc. Broadly neutralizing antibodies against rsv and mpv paramyxoviruses
WO2025017153A1 (en) 2023-07-19 2025-01-23 F. Hoffmann-La Roche Ag Dsfv as an igg fragment format and methods of production and labelling thereof
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AR133909A1 (en) 2023-09-25 2025-11-12 Hoffmann La Roche ANTIBODY THAT BINDS TO C3bBb
WO2025072726A1 (en) 2023-09-29 2025-04-03 Trex Bio, Inc. Tnf-alpha variant fusion molecules
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WO2025106474A1 (en) 2023-11-14 2025-05-22 Genentech, Inc. Therapeutic and diagnostic methods for treating cancer with anti-fcrh5/anti-cd3 bispecific antibodies
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Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4444878A (en) * 1981-12-21 1984-04-24 Boston Biomedical Research Institute, Inc. Bispecific antibody determinants
US4480228A (en) * 1982-10-15 1984-10-30 General Electric Company Selective volume method for performing localized NMR spectroscopy
US4506223A (en) * 1982-11-22 1985-03-19 General Electric Company Method for performing two-dimensional and three-dimensional chemical shift imaging
US4509015A (en) * 1981-09-21 1985-04-02 Ordidge Roger J Nuclear magnetic resonance methods
US4642334A (en) * 1982-03-15 1987-02-10 Dnax Research Institute Of Molecular And Cellular Biology, Inc. Hybrid DNA prepared binding composition
US4682106A (en) * 1985-03-21 1987-07-21 General Electric Company Methods of, and apparatus for, proton decoupling in nuclear magnetic resonance spectroscopy
US4703270A (en) * 1986-04-18 1987-10-27 The University Of British Columbia Zero quantum NMR imaging and spectroscopy in a low homogeneity magnetic field
US4816567A (en) * 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US4946778A (en) * 1987-09-21 1990-08-07 Genex Corporation Single polypeptide chain binding molecules
US5081417A (en) * 1989-08-04 1992-01-14 U.S. Philips Corporation 2-quantum selective mr sequence for selectively determining a nuclear magnetisation distribution of a metabolite
US5219966A (en) * 1988-05-20 1993-06-15 Monsanto Company Norbornene dicarboximide polymers
US5274119A (en) * 1988-07-01 1993-12-28 The Dow Chemical Company Vicinal diols
US5530101A (en) * 1988-12-28 1996-06-25 Protein Design Labs, Inc. Humanized immunoglobulins
US5618920A (en) * 1985-11-01 1997-04-08 Xoma Corporation Modular assembly of antibody genes, antibodies prepared thereby and use
US5648237A (en) * 1991-09-19 1997-07-15 Genentech, Inc. Expression of functional antibody fragments
US5657758A (en) * 1994-04-08 1997-08-19 The United States Of America As Represented By The Secretary, Department Of Health And Human Services Method and system for multidimensional localization and for rapid magnetic resonance spectroscopic imaging
US5709208A (en) * 1994-04-08 1998-01-20 The United States Of America As Represented By The Department Of Health And Human Services Method and system for multidimensional localization and for rapid magnetic resonance spectroscopic imaging
US5710027A (en) * 1993-05-26 1998-01-20 Boehringer Ingelheim International Gmbh Process and vector for expressing alpha-interferon in E. coli
US20040095140A1 (en) * 2002-07-26 2004-05-20 Szyperski Thomas A. Phase sensitively-detected reduced dimensionality nuclear magnetic resonance spectroscopy for rapid chemical shift assignment and secondary structure determination of proteins
US6831459B2 (en) * 2002-07-11 2004-12-14 The Research Foundation Of State University Of New York Method of using G-matrix Fourier transformation nuclear magnetic resonance (GFT NMR) spectroscopy for rapid chemical shift assignment and secondary structure determination of proteins

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0136907A3 (en) * 1983-10-03 1986-12-30 Genentech, Inc. A xenogeneic expression control system, a method of using it, expression vectors containing it, cells transformed thereby and heterologous proteins produced therefrom
GB8720833D0 (en) 1987-09-04 1987-10-14 Celltech Ltd Recombinant dna product
DE3744595A1 (en) 1987-12-31 1989-07-13 Andreas Dr Plueckthun METHOD FOR THE GENETIC ENGINEERING OF ANTIBODY
JP3040121B2 (en) 1988-01-12 2000-05-08 ジェネンテク,インコーポレイテッド Methods of treating tumor cells by inhibiting growth factor receptor function
ATE119198T1 (en) 1988-04-16 1995-03-15 Celltech Ltd METHOD FOR PRODUCING PROTEINS USING RECOMBINANT DNA.
DE3920358A1 (en) * 1989-06-22 1991-01-17 Behringwerke Ag BISPECIFIC AND OLIGO-SPECIFIC, MONO- AND OLIGOVALENT ANTI-BODY CONSTRUCTS, THEIR PRODUCTION AND USE
EP0459577A3 (en) 1990-06-01 1992-08-05 Merck & Co. Inc. Microbially expressed portions of a monoclonal antibody block rhinovirus attachment to cell receptors
GB9014932D0 (en) 1990-07-05 1990-08-22 Celltech Ltd Recombinant dna product and method
WO1992010209A1 (en) 1990-12-04 1992-06-25 The Wistar Institute Of Anatomy And Biology Bifunctional antibodies and method of preparing same
WO1992022324A1 (en) 1991-06-14 1992-12-23 Xoma Corporation Microbially-produced antibody fragments and their conjugates
AU3236793A (en) 1991-12-12 1993-07-19 Berlex Laboratories, Inc. Recombinant and chimeric antibodies to c-erbB-2

Patent Citations (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4509015A (en) * 1981-09-21 1985-04-02 Ordidge Roger J Nuclear magnetic resonance methods
US4444878A (en) * 1981-12-21 1984-04-24 Boston Biomedical Research Institute, Inc. Bispecific antibody determinants
US4642334A (en) * 1982-03-15 1987-02-10 Dnax Research Institute Of Molecular And Cellular Biology, Inc. Hybrid DNA prepared binding composition
US4480228A (en) * 1982-10-15 1984-10-30 General Electric Company Selective volume method for performing localized NMR spectroscopy
US4506223A (en) * 1982-11-22 1985-03-19 General Electric Company Method for performing two-dimensional and three-dimensional chemical shift imaging
US4816567A (en) * 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US4682106A (en) * 1985-03-21 1987-07-21 General Electric Company Methods of, and apparatus for, proton decoupling in nuclear magnetic resonance spectroscopy
US5698435A (en) * 1985-11-01 1997-12-16 Xoma Corporation Modular assembly of antibody genes, antibodies prepared thereby and use
US5698417A (en) * 1985-11-01 1997-12-16 Xoma Corporation Modular assembly of antibody genes, antibodies prepared thereby and use
US5618920A (en) * 1985-11-01 1997-04-08 Xoma Corporation Modular assembly of antibody genes, antibodies prepared thereby and use
US4703270A (en) * 1986-04-18 1987-10-27 The University Of British Columbia Zero quantum NMR imaging and spectroscopy in a low homogeneity magnetic field
US4946778A (en) * 1987-09-21 1990-08-07 Genex Corporation Single polypeptide chain binding molecules
US5219966A (en) * 1988-05-20 1993-06-15 Monsanto Company Norbornene dicarboximide polymers
US5274119A (en) * 1988-07-01 1993-12-28 The Dow Chemical Company Vicinal diols
US5530101A (en) * 1988-12-28 1996-06-25 Protein Design Labs, Inc. Humanized immunoglobulins
US5081417A (en) * 1989-08-04 1992-01-14 U.S. Philips Corporation 2-quantum selective mr sequence for selectively determining a nuclear magnetisation distribution of a metabolite
US5648237A (en) * 1991-09-19 1997-07-15 Genentech, Inc. Expression of functional antibody fragments
US7018809B1 (en) * 1991-09-19 2006-03-28 Genentech, Inc. Expression of functional antibody fragments
US5710027A (en) * 1993-05-26 1998-01-20 Boehringer Ingelheim International Gmbh Process and vector for expressing alpha-interferon in E. coli
US5657758A (en) * 1994-04-08 1997-08-19 The United States Of America As Represented By The Secretary, Department Of Health And Human Services Method and system for multidimensional localization and for rapid magnetic resonance spectroscopic imaging
US5709208A (en) * 1994-04-08 1998-01-20 The United States Of America As Represented By The Department Of Health And Human Services Method and system for multidimensional localization and for rapid magnetic resonance spectroscopic imaging
US5879299A (en) * 1994-04-08 1999-03-09 The United States Of America As Represented By The Secretary, Department Of Health And Human Services Method and system for multidimensional localization and for rapid magnetic resonance spectroscopic imaging
US6831459B2 (en) * 2002-07-11 2004-12-14 The Research Foundation Of State University Of New York Method of using G-matrix Fourier transformation nuclear magnetic resonance (GFT NMR) spectroscopy for rapid chemical shift assignment and secondary structure determination of proteins
US20040095140A1 (en) * 2002-07-26 2004-05-20 Szyperski Thomas A. Phase sensitively-detected reduced dimensionality nuclear magnetic resonance spectroscopy for rapid chemical shift assignment and secondary structure determination of proteins

Cited By (45)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9283273B2 (en) 1995-07-27 2016-03-15 Genentech, Inc. Protein formulation
US8076066B2 (en) 2000-05-19 2011-12-13 Genentech, Inc. Gene detection assay for improving the likelihood of an effective response to a HER2 antibody cancer therapy
US20070166753A1 (en) * 2000-05-19 2007-07-19 Genentech, Inc. Gene detection assay for improving the likelihood of an effective response to a her2 antibody cancer therapy
US8440402B2 (en) 2000-05-19 2013-05-14 Genentech, Inc. Gene detection assay for improving the likelihood of an effective response to a HER2 antibody cancer therapy
KR100951325B1 (en) * 2002-08-06 2010-04-08 에보니크 옥세노 게엠베하 Oligomerization of Isobutene in an n-butene Hydrocarbon Stream
US9017671B2 (en) 2004-10-20 2015-04-28 Genentech, Inc. Method of treating cancer with a pharmaceutical formulation comprising a HER2 antibody
US8691232B2 (en) 2005-02-23 2014-04-08 Genentech, Inc. Extending time to disease progression or survival in cancer patients
US8163287B2 (en) 2005-07-22 2012-04-24 Genentech, Inc. Combination therapy of her expressing tumors
US8940302B2 (en) 2007-03-02 2015-01-27 Genentech, Inc. Predicting response to a HER inhibitor
US9181346B2 (en) 2008-01-30 2015-11-10 Genentech, Inc. Composition comprising antibody that binds to domain II of HER2 and acidic variants thereof
US12110341B2 (en) 2008-01-30 2024-10-08 Genentech, Inc. Composition comprising antibody that binds to domain II of HER2 and acidic variants thereof
US11597776B2 (en) 2008-01-30 2023-03-07 Genentech, Inc. Composition comprising antibody that binds to domain II of HER2 and acidic variants thereof
US11414498B2 (en) 2008-01-30 2022-08-16 Genentech, Inc. Composition comprising antibody that binds to domain II of HER2 and acidic variants thereof
US11655305B2 (en) 2008-06-16 2023-05-23 Genentech, Inc. Treatment of metastatic breast cancer
US10689457B2 (en) 2008-06-16 2020-06-23 Genentech, Inc. Treatment of metastatic breast cancer
EP3598981A2 (en) 2011-10-14 2020-01-29 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
EP4241849A2 (en) 2011-10-14 2023-09-13 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
EP4234034A2 (en) 2011-10-14 2023-08-30 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
EP4635572A2 (en) 2011-10-14 2025-10-22 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
EP4234033A2 (en) 2011-10-14 2023-08-30 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
WO2013055874A2 (en) 2011-10-14 2013-04-18 Genentech, Inc. Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
EP4403228A2 (en) 2011-10-14 2024-07-24 F. Hoffmann-La Roche AG Uses for and article of manufacture including her2 dimerization inhibitor pertuzumab
US12145998B2 (en) 2013-04-16 2024-11-19 Genentech, Inc. Pertuzumab variants and evaluation thereof
US9815904B2 (en) 2013-04-16 2017-11-14 Genetech, Inc. Pertuzumab variants and evaluation thereof
US9969811B2 (en) 2013-04-16 2018-05-15 Genentech, Inc. Pertuzumab variants and evaluation thereof
WO2015164665A1 (en) 2014-04-25 2015-10-29 Genentech, Inc. Methods of treating early breast cancer with trastuzumab-mcc-dm1 and pertuzumab
WO2016196373A2 (en) 2015-05-30 2016-12-08 Genentech, Inc. Methods of treating her2-positive metastatic breast cancer
US11406715B2 (en) 2015-05-30 2022-08-09 Genentech, Inc. Methods of treating HER2-positive metastatic breast cancer
US11161912B2 (en) 2015-10-13 2021-11-02 Technion Research & Development Foundation Limited Heparanase-neutralizing monoclonal antibodies
WO2017064716A1 (en) * 2015-10-13 2017-04-20 Rappaport Family Institute For Research Heparanase-neutralizing monoclonal antibodies
WO2017087280A1 (en) 2015-11-16 2017-05-26 Genentech, Inc. Methods of treating her2-positive cancer
WO2018085513A1 (en) 2016-11-04 2018-05-11 Genentech, Inc. Treatment of her2-positive breast cancer
WO2018125589A1 (en) 2016-12-28 2018-07-05 Genentech, Inc. Treatment of advanced her2 expressing cancer
WO2018136412A2 (en) 2017-01-17 2018-07-26 Genentech, Inc. Subcutaneous her2 antibody formulations
EP3868404A1 (en) 2017-01-17 2021-08-25 F. Hoffmann-La Roche AG Subcutaneous her2 antibody formulations
US11654105B2 (en) 2017-01-17 2023-05-23 Genentech, Inc. Subcutaneous HER2 antibody formulations
US10849849B2 (en) 2017-01-17 2020-12-01 Genentech Inc. Subcutaneous HER2 antibody formulations
EP4368199A2 (en) 2017-03-02 2024-05-15 Genentech, Inc. Adjuvant treatment of her2-positive breast cancer
US11992529B2 (en) 2017-03-02 2024-05-28 Genentech, Inc. Adjuvant treatment of HER2-positive breast cancer
WO2018160654A2 (en) 2017-03-02 2018-09-07 Genentech, Inc. Adjuvant treatment of her2-positive breast cancer
US12128103B2 (en) 2017-03-02 2024-10-29 Genentech, Inc. Adjuvant treatment of HER2-positive breast cancer
US11638756B2 (en) 2017-03-02 2023-05-02 Genentech, Inc. Adjuvant treatment of HER2-positive breast cancer
US11077189B2 (en) 2017-03-02 2021-08-03 Genentech Inc. Adjuvant treatment of HER2-positive breast cancer
WO2018200505A1 (en) 2017-04-24 2018-11-01 Genentech, Inc. Erbb2/her2 mutations in the transmbrane or juxtamembrane domain
US12252549B2 (en) 2020-06-29 2025-03-18 Genentech, Inc. Pertuzumab plus trastuzumab fixed dose combination

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US7018809B1 (en) 2006-03-28

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