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IL148796A - Use of agonists specific for the peripheral cannabinoid receptor for the preparation of a medicament against autoimmune diseases and tumors - Google Patents

Use of agonists specific for the peripheral cannabinoid receptor for the preparation of a medicament against autoimmune diseases and tumors

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Publication number
IL148796A
IL148796A IL148796A IL14879602A IL148796A IL 148796 A IL148796 A IL 148796A IL 148796 A IL148796 A IL 148796A IL 14879602 A IL14879602 A IL 14879602A IL 148796 A IL148796 A IL 148796A
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straight
branched chain
chain alkyl
hydrogen
moiety
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IL148796A
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Hebrew (he)
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Raphael Mechoulam
Ester Fride
Lumir Hanus
Aviva Breuer
Susana Tchilibon
Michal Horowitz
Aaron Garzon
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Raphael Mechoulam
Ester Fride
Yissum Res Dev Co
Lumir Hanus
Aviva Breuer
Susana Tchilibon
Michal Horowitz
Aaron Garzon
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Application filed by Raphael Mechoulam, Ester Fride, Yissum Res Dev Co, Lumir Hanus, Aviva Breuer, Susana Tchilibon, Michal Horowitz, Aaron Garzon filed Critical Raphael Mechoulam
Priority to IL148796A priority Critical patent/IL148796A/en
Publication of IL148796A publication Critical patent/IL148796A/en

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/21Esters, e.g. nitroglycerine, selenocyanates
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/21Esters, e.g. nitroglycerine, selenocyanates
    • A61K31/215Esters, e.g. nitroglycerine, selenocyanates of carboxylic acids
    • A61K31/216Esters, e.g. nitroglycerine, selenocyanates of carboxylic acids of acids having aromatic rings, e.g. benactizyne, clofibrate
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/075Ethers or acetals
    • A61K31/085Ethers or acetals having an ether linkage to aromatic ring nuclear carbon
    • A61K31/09Ethers or acetals having an ether linkage to aromatic ring nuclear carbon having two or more such linkages
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P25/00Drugs for disorders of the nervous system
    • A61P25/02Drugs for disorders of the nervous system for peripheral neuropathies
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/06Immunosuppressants, e.g. drugs for graft rejection
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • A61P9/12Antihypertensives

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  • Health & Medical Sciences (AREA)
  • Pharmacology & Pharmacy (AREA)
  • Veterinary Medicine (AREA)
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  • General Health & Medical Sciences (AREA)
  • Animal Behavior & Ethology (AREA)
  • Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Medicinal Chemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Organic Chemistry (AREA)
  • Engineering & Computer Science (AREA)
  • Epidemiology (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Emergency Medicine (AREA)
  • Immunology (AREA)
  • Neurosurgery (AREA)
  • Pain & Pain Management (AREA)
  • Rheumatology (AREA)
  • Biomedical Technology (AREA)
  • Neurology (AREA)
  • Cardiology (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Transplantation (AREA)
  • Acyclic And Carbocyclic Compounds In Medicinal Compositions (AREA)
  • Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
  • Medicines Containing Plant Substances (AREA)

Abstract

The invention provides novel pharmaceutical compositions comprising as the active ingredient 4-phenyl pinene derivatives which are specific for the peripheral cannabinoid receptors. In particular, the compounds of the invention binds efficiently to CB2 but do not bind to CB1. The compounds show no activity in behavioral tests in mice which together have been shown to be specific for tetrahydrocannabinol (THC)- type activity in the central nervous system mediated by CB1 but reduce blood pressure, block intestinal motility, and elicit anti-inflammatory and peripheral analgetic activity. The invention also relates to methods of treating, preventing, or managing hypertension, inflammation, pain, gastrointestinal diseases, autoimmune diseases, and tumors with the compounds of the invention.

Description

USE OF AGONISTS SPECIFIC FOR THE PERIPHERAL CANNABINOID RECEPTOR FOR THE PREPARATION OF A MEDICAMENT AGAINST AUTOIMMUNE DISEASES AND TUMORS PRS2/009/1 IL 148796/3 FIELD OF THE INVENTION The present invention relates to non-psychotropic cannabinoids that are specific agonists of the peripheral cannabinoid receptor CB2. More particularly, the invention relates to the use of 4-phenyl pinene derivatives which are specific CB2 agonists for the preparation of a medicament useful in preventing, treating and managing autoimmune diseases and tumors.
BACKGROUND OF THE INVENTION Mechoulam et al. have reported that two cannabinoid receptors have been identified: CB 1, present in the central nervous system (CNS) and to a lesser extent in other tissues, and CB2 present outside the CNS, in peripheral organs including peripheral nerve terminals [Mechoulam et al. Proc. Nat. Acad. Sci. USA 96: 14228-33, 1999]. Cannabis sativa preparations have been known as therapeutic agents against various diseases for millenia. The native active constituent, Delta 9-tetrahydrocannabinol (delta-9-THC) is prescribed today under the generic name Dronabinol, to treat vomiting and for enhancement of appetite, mainly in AIDS patients.
Separation between the therapeutically undesirable psychotropic effects from the clinically desirable ones, however, has not been reported with agonists that bind to cannabinoid receptors. THC, as well as the two major endogenous compounds identified so far that bind to the cannabinoid receptors, anandamide and 2-arachidonylglycerol (2-AG) produce most of their effects by binding to both the CB 1 and CB2 cannabinoid receptors. The CB1 receptor is present in the CNS, and to a lesser extent in other tissues. The CB2 receptor is not present in the CNS, but mostly in peripheral tissue associated with immune functions, including macrophages and B cells, as well as in peripheral nerve terminals. While the effects mediated by CB1, mostly in the CNS, have been thoroughly investigated, those mediated by CB2 are not well defined.
Inhibition of gastrointestinal activity has been observed after administration of Delta 9-THC or of anandamide. This effect has been assumed to be CB 1 -mediated, since the specific CB1 antagonist SR 141716A blocks the effect. Another report, however, suggests that inhibition of intestinal motility may also have a CB2-mediated component. 148796/2 Cannabinoids are well known for their cardiovascular activity. Activation of peripheral CB l receptors contributes to hemorrhagic and endotoxin- induced hypotension. Anandamide and 2-AG, produced by macrophages and platelets, respectively, may mediate this effect.
The hypotension in hemorrhaged rats was prevented by the CB l antagonist SR 141716A Recently the same group found that anandamide-induced mesenteric vasodilation is mediated by an endothelially located SR 141716A-sensitive "anandamide receptor," distinct from the CB l cannabinoid receptor, and that activation of such a receptor by an endocannabinoid, possibly anandamide, contributes to endotoxin-induced mesenteric vasodilation in vivo. The highly potent synthetic cannabinoid HU-210, as well as 2-AG, had no mesenteric vasodilator activity. Furthermore it was shown that mesenteric vasodilation by anandamide apparently has 2 components, one mediated by a SR 141716-sensitive non-CB l receptor (located on the endothelium) and the other by an SR 1 1716A-resistant direct action on vascular smooth muscle.
The production of 2-AG is enhanced in normal, but not in endothelium-denuded rat aorta ofl stimulation with carbachol, an acetylcholine receptor agonist. 2-AG potently reduces blood pressure in rats and may represent an endothelium-derived hypotensive factor.
Anandamide attenuates the early phase or the late phase of pain behavior produced by formalin-induced chemical damage. This effect is produced by interaction with CB l (or CB l -like) receptors, located on peripheral endings of sensory neurons involved in pain transmission.
Palmitylethanolamide, which like anandamide is present in the skin, also exhibits peripheral antinociceptive activity during the late phase of pain behavior. Palmitylethanolamide, however, does not bind to either CB l or CB2. Its analgetic activity is blocked by the specific CB2 antagonist SR 144528, though not by the specific CB l antagonist SR 141716A. Hence a CB2-like receptor was postulated.
U.S. Patent No. 5,434,295 discloses a family of novel 4-phenyl pinene derivatives, and teaches how to use those compounds in pharmaceutical compositions useful for treating various pathological conditions associated with damage to the central nervous system. U.S. Patent No. 4,282,248 corresponding to IL 55274 discloses additional pinene derivatives. These patents do not mention that any of the compounds disclosed therein are selective for peripheral cannabinoid receptors.
Several synthetic cannabinoids have been shown to bind to the CB2 receptor with a higher affinity than to the CB l receptor. Most of these compounds exhibit only modest selectivity. One 148796/2 of the described compounds, a classical THC-type cannabinoid, L-759,656, in which the phenolic group is blocked as a methyl ether, has a CB1/CB2 binding ratio > 1000. The pharmacology of those known agonists has yet to be described.
Certain tumors, especially gliomas, express CB2 receptors. Guzman and coworkers have shown that delta-9-tetrahydrocannabinol and WTN-55,212-2, two non-selective cannabinoid agonists, induce the regression or eradication of malignant brain tumors in rats and mice [Guzman et al., Nature Medicine 6: 313-9, 2000]. The rat glioma C6 expresses the CB2 receptor and on the basis of studies with CB 1 and CB2 selective antagonists, it has been proposed that activation of either of the two receptors may trigger apoptosis.
Thus, there is a need for selective peripheral cannabinoid receptors and particularly for specific agonists of the peripheral cannabinoid receptor CB2. The present invention now satisfies that need.
SUMMARY OF THE INVENTION The present application is an application of addition of IL application No. 132661 directed to agonists specific for the peripheral cannabinoid receptor. The present invention teaches how to isolate the effects mediated by peripheral cannabinoid receptors CB2 by providing specific CB2 agonists. The present invention also discloses a certain CB2 specific agonist which is capable of exerting its CB2 specific effects in vivo. Thus, the invention also enables new therapeutic entities to be formulated that include these specific CB2 agonists. The present invention further provides methods for preventing, treating, or managing diseases by administering to an animal in need thereof of a pharmaceutical composition containing as an active ingredient a therapeutically effective amount of a CB2 specific agonist.
The active ingredient of the pharmaceutical compositions according to the present invention is a compound of the general Formula 1 : Formula 1 148796/3 wherein A — B designates an optional double bond; Ri designates a variety of organic moieties; G designates hydrogen, halogen or various ether groups; and R3 designates various alkyl groups, ether groups, or combinations thereof.
In one aspect, the present invention utilizes compounds of Formula 1 as disclosed in US Patent 5,434,295, the teachings of which are expressly incorporated herein in their entirety by reference. All compounds of this invention have the (3S,4S) configuration and are essentially free of the (3R,4R) enantiomer.
In addition, certain compounds disclosed herein are novel and in themselves constitute an aspect of the present invention. These compounds include those in which G is hydrogen. Other preferred embodiments include compounds of Formula 1 wherein G is hydrogen or OR2, and wherein R2 is a lower alkyl group of one to five carbon atoms.
According to a more preferred embodiment, the utility of a specific ligand, designated herein as HU-308, is disclosed along with its differential binding to CB-1 and CB-2, and its action on several in vivo assays, known to be affected by cannabinoids. HU-308 is a compound of the general Formula 1 wherein Ri is CH2OH, G is methoxy, R3 is 1,1 dimethylheptyl and there is a double bond between A and B. HU-308, however, reduces blood pressure, blocks defecation, and elicits anti-inflammatory and peripheral analgetic activity. The hypotensive, antiinflammatory, peripheral analgetic activity and gastrointestinal effects produced by HU-308 are blocked by the CB2 antagonist SR 144528, but not by the CB 1 antagonist SR 141716A.
Accordingly, the present invention provides novel non-psychotropic cannabinoids for use in the preparation of a medicament useful in preventing, treating and managing of autoimmune diseases and tumors. All parts of the description that are not encompassed by the claims are not part of the present invention.
BRIEF DESCRIPTION OF THE DRAWINGS Preferred features of the invention can be understood from a review of the following detailed description and drawing, wherein: Fig. 1 depicts a reaction scheme for synthesizing HU-308; Fig. 2 depicts binding of HU-308 to the CB2 cannabinoid receptor measured by competitive inhibition of [3H]HU-243 in COS-7 cells transfected with plasmids containing the CB2 receptor gene; 148796 Fig. 3 depicts the effect of of HU-308 on female C57 BL6 mice tested, 2.5 hrs after i.p. injection of HU-308 (40 mg kg) for: (a) ambulation; (b) rearing in open field; (c) immobility; (d) hypothermia; and (e) analgesia on a hot plate. Open bars represent mice treated with the vehicle and closed bars represent mice treated with HU-308 (50 mg/kg); Fig. 4 depicts intestinal immotility in female Sabra mice as measured by the number of fecal pellets voided in a two hr period after HU-308 administration following i.p. injection of vehicle or HU-308 at 20, 50, or 100 mg/kg; Fig. 5 depicts the hypotensive effects of HU-308, HU-308 and SR141716 (3 mg/kg), and HU-308 and SR144528 (1 mg/kg) in anesthetized rats; Fig. 6a is a time graph depicting the effects of HU-308 (50 mg/kg) and indomethacin (20 mg/kg) on arachidonic acid (A'A) induced swelling of the ear in female Sabra mice treated with 4.5 mg A'A (in 5 ml EtOH) dispersed on the inner surface of one of the ears as measured by the difference between the A'A treated ear and the EtOH treated ear every 15 min after A'A application for 90 min.
Fig. 6b is a bar graph depicting the effects of the CB1 receptor antagonist (SR141716A, 5 mg/kg) and the CB2 receptor antagonists (SRI 44528, 1 mg/kg) on the anti- inflammatory effect of HU-308 on arachidonic acid (A'A) induced swelling of the ear in female Sabra mice treated with 4.5 mg A'A (in 5 ml EtOH) dispersed on the inner surface of one of the ears as measured by the difference between the A'A treated ear and the EtOH treated ear; Fig. 7 is a bar graph depicting the effect of HU-308 and HU-308 plus SR144528 on formalin-induced peripheral pain in mice 30 minutes after injecting formalin into the hindpaw as measured by the total number of licks of the injected hindpaw recorded for the duration of one hour; Fig. 8 is a graph of disease activity index score vs. treatment day, for mice with acid induced inflammatory bowel disease treated with 10 or 20 mg/kg of HU-308 or vehicle; and Fig. 9 is a bar graph of gross pathology score for untreated mice, mice treated with vehicle, mice treated with 10 mg/kg of HU-308, and mice treated with 20 mg/kg of HU-308 after induction of acid induced inflammatory bowel disease. 148796 DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Selective agonists for specific receptors are of interest and importance since biochemical and pharmacological investigations of individual receptors may lead to the development of new drugs or drug leads. The present invention provides novel medicinal uses for the pinene derivatives of general Formula 1. These compounds have unexpectedly been shown to be CB2 specific agonists. Specifically, the methods involve the use of appropriately formulated pharmaceutical compositions with CB2 agonist activity that contain as their active ingredient a compound of the Formula 1 : wherein the dotted line A B indicates an optional bond and the substituents Ri, G, and R3 are defined as follows: Ri is (a) -R'NiR"^ wherein R' is C1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)Rm moiety wherein R1" is hydrogen or C1-C5 straight or branched chain alkyl, (b) -Q wherein Q is a heterocyclic moiety having a labile hydrogen atom so that said moiety acts as a carboxylic acid analogue, (c) -R'X wherein R' is C1-C5 straight or branched chain alkyl and X is halogen, (d) -R'C(0)N(R")2 wherein R' is a direct bond or C1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)Rm moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl, (e) -R'C(0)OR" wherein R1 is a direct bond or C1-C5 straight or branched chain alkyl and R" is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl, (f) -R' wherein R' is C1-C5 straight or branched chain alkyl, or (g) -R'OR"' wherein R' is C1-C5 straight or branched chain alkyl and R'" is hydrogen or C1-C5 alkyl; 148796 G is hydrogen, halogen, or -OR2 wherein R2 is hydrogen or C1-C5 alkyl optionally containing a terminal -OR"', -OC(0)R"', -C(0)ORm, or -C(0)Rm moiety wherein Rm is hydrogen or C1-C5 alkyl; and R3 is (a) C1-C12 straight or branched chain alkyl, (b) -OR"", in which R"" is a straight chain or branched C2-C9 alkyl which may be substituted at the terminal carbon atom by a phenyl group, or (c) -(CH2)„OR"' wherein n is an integer of 1 to 7 and Rm is hydrogen or C1-C5 alkyl.
The compounds according to Formula 1 have the (3S,4S) configuration and are essentially free of the (3R,4R) enantiomer.
As noted above, certain compounds of the above formula, i.e., those wherein G is hydrogen, are novel and in themselves constitute a preferred aspect of the invention.
The synthesis and use of a new type of CB2 specific agonist, having the general Formula 1, as defined above, is now described. The principles of the invention are exemplified herein by the currently preferred compound of Formula 1, HU-308, which can be synthesized as described in Fig. 1.
Fig. 2 shows that HU-308 binds to the CB2 cannabinoid receptor. HU-308 binds to the CB2 cannabinoid receptor with a Ki = 22.7 ± 3.9 nM, as measured by competitive inhibition of [3H]HU-243 in COS-7 cells transfected with plasmids containing the CB2 receptor gene, as described in Mechoulam, R., Ben-Shabat, S., Hanus, L., Ligumsky, M., Kaminski, N.E., Schatz, A.R., Gopher, A., Almog, S., Martin, B.R., Compton, D.R., Pertwee, R.G., Griffin, G., Bayewitch, M., Barg, J. & Vogel, Z. (1995) Biochem. Pharmacol. 50, 83-90. HU-308, however does not bind to CB1 (Ki > 10 mM). This difference in binding is reflected in the results of the pharmacological assays. Fig. 3 shows that when female C57/BL6 mice are administered high a dose of HU-308 (40 mg/kg) by i.p. injection there is no decrease in their activity in an open field trial, no catalepsy, no reduction in body temperature, and no analgesia on a hot plate (hereinafter referred to as the tetrad of assays) when tested 10 min (data not shown), 30 min (data not shown), or 150 min after i.p. administration. Such effects are considered to be mediated by the CB1 receptor.
HU-308 also caused complete inhibition of intestinal mobility in mice at a dose of 20 mg/kg. Fig. 4 shows the effect the number of fecal pellets voided over 2 hrs after i.p. administration of HU-308 (20, 50, or 100 mg/kg) to female Sabra mice. Intestinal motility was assessed every 15 148796 min (over a 2 hr period) by the cumulative number of fecal pellets voided in a two hour period after separating the mice into individual cages. After 75 min, mice which had received 100 mg/kg had voided significantly fewer boli than controls. By 90 min all treated groups differed from controls. Hence, this gastrointestinal effect may be mediated, at least in part, by the peripheral CB2 receptor. Indeed, administration of the CB2 antagonist SRI 44528 in part blocked this effect.
HU-308 has been found to reduce blood pressure when administered to rats. Fig. 5 shows that HU-308 lowers blood pressure in anesthetized cannulated rats. Baseline blood pressure was recorded before administering HU-308. HU-308 was administered by i.v. at 30 mg/kg (lower doses did not have a significant effect). This cardiovascular effect is blocked by the CB2 antagonist SR 144528, but not by the CBl antagonist SR 141716A. The antagonists SR141716A (3 mg/kg), or SR144528 (1 mg/kg) were injected 5 min prior to HU-308. An (*) in Fig. 5 denotes a value significantly different from the baseline value of controls (p<0.05).
Apparently the hypotensive effect caused by HU-308 is produced through a mechanism that differs from the previously described CBl -mediated (or the "anandamide receptor" -mediated) hypotension produced by endocannabinoids. This unexpected observation serves as a starting point for the development of novel hypotensive drugs, since HU-308 causes no psychotropic effects, as established by the lack of effect in the tetrad of assays described above, and therefore should not cause major undesirable effects in humans, because most cannabinoids do not produce significant side effects other than the psychotropic ones.
HU-308 and indomethacin injected between 30 and 90 min before application of arachidonic acid, induced significant reduction of arachidonic acid-induced ear swelling at doses of 50 and 20 mg/kg, respectively. Fig. 6 shows the effect of HU-308 and indomethacin on arachidonic acid (A'A)-induced swelling of the ear in female Sabra mice treated with 4.5 mg A'A (in 5 ml EtOH) dispersed on the inner surface of one of the ears. The other ear was treated with 5 ml of EtOH and served as a control. Ear swelling was assessed by measuring ear thickness with a dial thickness gauge (Mitutoyo, Japan) just before treatment and every 15 min after A'A application for 90 min. Vehicle, HU-308 (50 mg/kg) or indomethacin (20 mg/kg) were injected i.p. 60 min before A'A application. (Injection of HU-308 30 or 90 min before A'A yielded similar results) Curve "a" is a time curve and illustrates that peak swelling of the ear is achieved about 30 min after A'A application. Curve "b" shows the effects of CBl and CB2 receptor antagonists on the 148796 anti-inflammatory effect of HU-308. The CBl antagonist (SR141716A, 5 mg kg) or the CB2 receptor antagonist (SRI 44528, 1 mg kg) were injected i.p. HU-308 was then administered (50 mg/kg i.p.) 60 min later and A'A was administered 50 min after HU-308. The results are presented as the difference between the A'A treated ear and the EtOH treated ear. N=5 for each treatment group. A (*) denotes a value significantly different from vehicle-treated mice (p<0.05), a (**) denotes a value significantly different from vehicle-treated mice (p<0.01), and a (***) denotes a value significantly different from vehicle-treated mice (p<0.001).
The results in Fig. 6 show that the anti-inflammatory effect produced by indomethacin was greater than that produced by HU-308. The CBl antagonist SR 141716A (5 mg/kg) administered 15 min before HU-308, did not prevent the anti-inflammatory effect of HU-308. Rather, SR 141716A by itself reduced arachidonic acid-induced ear swelling. Fig. 6 also shows that the CB2 receptor antagonist SR 144528 (0.5 mg/kg) did not by itself induce an anti-inflammatory effect but reduced the anti-inflammatory effect of HU-308.
HU-308 also reduced peripheral pain during the late phase of pain behavior. Figure 7 shows the effects of HU-308 without SRI 44528 on formalin- induced peripheral pain. Vehicle or SR144528 was injected 15 min before an injection of vehicle or HU-308 (50 mg/kg, i.p.). Ninety min after the injection of HU-308 formalin was injected subcutaneously into the foot. Pain was assessed as the total number of licks of the injected hindpaw recorded for the duration of one hr. Early (5 min) and late (25-60 min) phase pain were observed as described in Calignano, A., La Rana, G., Giuffrida, A. & Piomelli, D. (1998) Nature (London) 394, 277-280. HU-308-induced effects were only observed during the late phase. Therefore, the only data presented is data collected at 30 min after formalin injection. The results show that HU-308 reduced peripheral pain during the late phase of pain behavior and that this effect was prevented by SR 144528, the CB2 antagonist, but not by SR 141716A, the CBl antagonist. HU-308 apparently acts through the CB2 receptor as it binds to CB2 but not to CBl. This observation is in agreement with the recent detection by Griffin et al. of CB2 receptors on peripheral nerve terminals [Griffin, G., Fernando, S.R., Ross, R.A., McKay, N.G., Ashford, M.L.J., Shire, D., Huffinan, J.W., Yu, S., Lainton, J.A.H. & Pertwee, R.G. (1997) Eur. J. Pharmacol. 339, 53-61]. Whatever the exact mechanism of the activity of HU-308 on pain transmission, our results indicate that cannabinoids may serve as peripheral analgetics that have no central effects. 148796/2 In summary, HU-308 does not bind to CB 1 ( i > 10 mM), but efficiently bbds to CB2 (Ki = 22.7 ± 3.9 nM). It shows no activity in a tetrad of behavioral tests in mice, which together have been shown to be specific for THC-type activity in the CNS. HU-308 reduces blood pressure, blocks defecation, and elicits anti-inflammatory and peripheral analgetic activity. The hypotension, anti-inflammatory, peripheral analgetic activity, and inhibition of gastrointestinal motility produced by HU-308 are blocked by the CB2 antagonist SR 144528, but not by the CB 1 antagonist SR 141716A.
These exemplary results, which are to be construed in a non-limiting manner, demonstrate the feasibility of novel non-psychotropic cannabinoids that may be used to treat hypertension, inflammation, pain, and gastrointestinal disorders. Indeed, the present compositions are of special value in preventing, treating, and managing hypertension, inflammation, peripheral pain, and gastrointestinal disorders. The compositions of the invention also have utility in treating autoimmune diseases including but not limited to, multiple sclerosis and arthritis and in treating tumors that express CB2 receptors, in particular gliomas that express CB2 receptors. Killing brain tumor cells with a CB2 selective agonist could allow tumor management without inducing undesired psychotropic side effects. Thus, the present invention provides methods for treating, preventing, and managing various pathological conditions including autoimmune diseases and tumors.
The compounds are administered for the above-defined purposes in conventional pharmaceutical forms, with the required solvents, diluents, excipients, etc. to produce a physiologically acceptable formulation. They can be administered by any of the conventional routes of administration.
Pharmaceutical compositions in which the compounds of the above formula are the active ingredient may be prepared in a variety of forms and dosages. Methods for preparing such compositions are readily known to those of ordinary skill in the art. Thus, the compounds may be formulated with a pharmaceutically acceptable diluent or carrier in accordance with standard procedures. For example, a diluent may be chosen that is an aqueous cosolvent solution comprising a pharmaceutically acceptable cosolvent, a micellar or emulsion solution prepared with natural or synthetic ionic or nonionic surfactants, or a combination of such cosolvent and micellar or emulsion solutions. A carrier consisting essentially of a solution of ethanol, a surfactant, and 148796 water may be used, or a carrier may be selected that consists essentially of an emulsion comprising triglycerides, lecithin, glycerol, an emulsifier, an antioxidant, and water. Prior to their use as medicaments, the pharmaceutical compositions will generally be formulated in unit dosage forms. Daily dosages of the compound for humans typically range from about 0.1 to 50 mg kg, and preferably from about 1 to 20 mg/kg.
It will be appreciated that the most appropriate administration of the pharmaceutical compositions of the present invention will depend on the type of injury or disease being treated.
EXAMPLES The principles of the present invention will be more folly understood in the following examples, which are to be construed in a non-limiting manner.
Example 1: Synthesis of (+Wl-a-H. 4-β-Η. 5-a-m-4-[2.6-dihydroxy-4-(l.l-dimethyl-heptyn phenyl]-6.6-dimethylbicyclo[3.1. l]hept-2-ene-2-carbinolpivalate (III).
(III) To a well stirred solution of 4-hydroxymyrtenyl pivalate (14.75g, 40 mmol) and dimethylheptyl resorcinol (9.52 g, 40.3 mmol) in anhydrous dichloromethane (200 ml), p-toluenesulfonic acid anhydrous (1.5 g) was added in one portion. The reaction mixture was stirred at room temperature for one hour. TLC analysis indicated complete disappearance of the starting material. The reaction mixture was diluted with dichloromethane (200 ml) and saturated NaHCC aq. solution (200 ml). The aqueous layer was extracted with dichloromethane (2 x 200 ml). The combined organic solution was washed with aq. solution of NaHCC>3 (2 x 150 ml) and brine (2 x 200 ml). The organic layer is dried over Na2S04, filtered and evaporated to afford 23.54 g of crude material. The crude material was purified by flash chromatography on silica gel using 3% ethyl acetate/petroleum ether as the eluent to afford 11.2 g of pure material (III).
Example 2: Synthesis of (+ -(l-q-H. 4-β-Η. 5-a-HV4-f2.6-dimethoxy-4-ri.l-dimethyl-heptvn phenyl]-6.6-dimethylbicyclo[3.1.1]hept-2-ene-2-carbinolpivalate (IV .
To a well stirred suspension of (III) (10.81g, 23 mmol) and potassium carbonate (12.84 g, 92 mmol) in anhydrous DMF (80 ml), methyl iodide (30 ml, 0.46 mol) was added in one portion. The reaction mixture was stirred at room temperature under nitrogen atmosphere for 3 days. HPLC analysis (80% acetonitrile, 20% water) showed the presence of 17% starting material, 39% of product and 27% of the monomethyalted product (compound VI, depicted below).
(VI) An additional amount of potasssium carbonate (12.93 g) and methyl iodide (20 ml) were added to the reaction mixture. The reaction was stopped after 2 hours, diluted with ether (250 ml) and water (200 ml). The aqueous layer was extracted with ether (3 x 200 ml). The combined organic layer was washed with water (4x 250 ml), dried over Na2S04, filtered and evaporated under reduced pressure to afford 11.15 g of crude material. The crude material was purified on silica gel by flash chromatography using 3% ether/ petroleum ether as the eluent to provide 5.27 g of pure (V) and 1.7 g of pure (VI).
Example 3: Synthesis of (+Vfl-a-H. 4-β-Η. 5-a-m-4-[2.6-dimethoxy-4-ri.l-dimethyl-heptyn phenyl1-6.6-dimethylbicvclor3.1. nhept-2-ene-2-carbinol (UU-3QS) (V).
The starting materials for the synthesis of HU-308, 4-hydroxy-myrtenyl pivalate (I) and 5-(l,l-dimethylheptyl)-resorcinol (II), and the intermediate (III) in the synthesis of HU-308 were prepared as previously reported [Mechoulam, R., Lander, N., Breuer, A. & Zahalka, J. (1990) Tetrahedron:Asymmetry 1, 315-319] and as described above. The synthesis of HU-308 is described in Fig 1. In Fig. 1 "a" is dry p-toluene sulfonic acid in methylene chloride; "b" is potassium carbonate, methanol; and "c" is lithium aluminum hydride.
A solution of compound IV (5.076 g, 10.2 mmol) in freshly distilled anhydrous tetrahydrofuran (25 ml), was cooled to -40°C. Lithium aluminum hydride (IN in THF, 12 ml) was added dropwise to the cold solution. The reaction mixture was stirred at - 40°C for 10 min and then at room temperature for 30 min. TLC analysis indicated complete disappearance of the starting material. The reaction mixture was cooled to -40°C and stopped by addition of ethyl acetate (20 ml) and a saturated aqueous solution of MgS04 (40 ml). The layers were separated and the aqueous layer was extracted with ethylacetate (3 x 50 ml) and the combined organic layers were washed with brine (2 x 100 ml), dried over Na2S04, filtered and the solvent removed by evaporation to afford an oil which was lyophilized to afford 4.22 g of pure (V).
HU-308 has a melting point of 50°C, [a]D + 127°C (c=2.87 mg cc CHCb). The structure of HU-308 was confirmed by Ή NMR, GC-MS and High Resolution Mass Spectroscopy (HRMS). NMR 300 MHz, (CDCI3): 6.45 (2H, s, aromatic), 5.7 (1H, olefinic), 4.12 (2H, CH3O-), 4.01 (1H, benzylic), 3.7 (6H, OCH3). HRMS calculated for C27H4203, 414.6287, found 414.3114.
Example 4: Synthesis of (+Wl-a-H. 4-β-Η. 5-a-HV4-[2.6-methoxy-hvdroxy-4-(l.l-dimethyl-heptyl) phenyl]-6,6-dimethylbicyclof 3.1.1 ]hept-2-ene-2-carbinol (VII).
(VII) 148796 A solution of compound VI (5.076 g, 10.2 mmol) in freshly distilled anhydrous tetrahydrofiiran (25 ml), was cooled to -40°C. Lithium aluminum hydride (IN in THF, 12 ml) was added dropwise to the cold solution. The reaction mixture was stirred at - 40°C for 10 min and then at room temperature for 30 min. TLC analysis indicated complete disappearance of the starting material. The reaction mixture was cooled to -40°C and stopped by addition of ethyl acetate (20 ml) and a saturated aqueous solution of MgS04 (40 ml). The layers were separated and the aqueous layer was extracted with ethylacetate (3 x 50 ml) and the combined organic layers were washed with brine (2 x 100 ml), dried over Na2S04, filtered and the solvent removed by evaporation to afford an oil which was lyophilized to afford 4.22 g of pure (VII).
Example 5: Synthesis of (+Η1-α-Η. 4-β-Η. 5-a-HV4-[2.6-di(di-terbutylmethylsilyloxy)-4-(l.l-dimethyl-heptyl)phenyll-6.6-dimethylbicvclo[3.1 ,llhept-2-ene-2-carbinol pivalate (VHP. t-Butyldimethylsilyl (VIII) The reaction was performed under nitrogen atmosphere. To a well stirred solution of compound III (5.23 g, 11.1 mmol) and t-Butyldimethylsilil chloride (9.1088g, 133.3 mmol) in dry THF (60 ml), was added imidazole (10.20 g, 66.76 mmol). The reaction mixture was stirred at room temperature overnight. The reaction was stopped by addition of water (100 ml) and the aqueous solution is extracted with ether (3x 150 ml). The organic layers were combined and washed with water (4 x 150 ml). The combined organic layers were dried over Na2S04, filtered and evaporated under reduce pressure to afford 7.89 g of pure (VIII). 148796 Example 6: Synthesis of (+V(T-a-H. 4-β-Η. 5-a-HV4-f2.6-di(diterbutylmethylsilyloxyV4-(l.l-dimethylheptyl)phenyll-6.6-dimethylbicyclo[3.1. l]hept-2-ene-2-carbinol (IX).
Compound VII (6.94 g, 10 mmol) was dissolved in freshly distilled dry THF (50 ml) and the solution cooled to -40°C. Lithium aluminum hydride (IN in THF, 12 ml) was added dropwise to the cooled solution. The cooling bath was removed and the reaction was allowed to stir at room temperature for 30 min. TLC analysis indicated complete disappearance of the starting material. The reaction mixture was cooled to -40°C and stopped by addition of ethyl acetate (20 ml) and a saturated aqueous solution of MgS04 (40 ml). The layers were separated and the aqueous layer was extracted with ethylacetate (3 x 50 ml) and the combined organic layers were washed with brine (2 x 100 ml), dried over Na2S04, filtered and the solvent removed by evaporation to afford an oil which was lyophilized to afford 4.54 g of pure (ΓΧ).
Example 7: Synthesis of (+)-Π-α-Η. 4-β-Η. 5-a-H)-4-f2.6-di(di-terbutylmethylsilyloxyV4-fl.l-dimethylheptyl)phenyl]-6.6-dimethylbicyclor3.1.Ilhept-2-ene-2-carboxaldehvde (X).
(X) 148796 To a well stirred solution of compound IX (2.59 g, 4.23 mmol) in anhydrous dichloromethane (30 ml) was added pyridinium dichromate (3.22g, 8.46 mmol) and the reaction mixture stirred at room temperature for 30 min. TLC analysis indicated complete disappearance of the starting material. The reaction mixture was diluted with water (300 ml) and the aqueous layer extracted with dichloromethane (3 x 200 ml). The organic layers were combined, washed with water (4 x 2590 ml), dried over Na2S04, filtered through celite and the solvent removed by evaporation to afford 2.5 g of crude material. The crude material was purified by flash chromatography using 3% ether/petroleum ether as the eluent to afford 1.81g of pure (X).
Example 8: Synthesis of (+V(l-q-H. 4-β-Η. 5-a-HV4-[2.6-di(di-terbutylmethylsilyloxy)-4-(l.l-dimethylheptynphenyl]-6.6-dimethylbicyclo[3.1. l]hept-2-ene-2-carboxylic acid (XI).
(XI) To a well stirred solution of compound X (13.6 g, 22.28 mmol) in t-BuOH (120 ml), was added in small portions 2-methyl-2-butene (60 ml), a saturated aqueous solution of NaH2P04 (30 ml) and sodium chlorite (11.10 g, 122.2 mmol). The reaction was stirred at room temperature overnight and stopped by addition of water (100 ml). The aqueous layer was extracted with ethyl acetate (3 x 250 ml) and the organic layer was washed with water (3 x 300 ml). The combined organic layers were dried over Na2S04, filtered and evaporated under reduced pressure. The resulting residue (15 g) was purified by flash chromatography on silica gel using a gradient from 5% ethyl acetate / petroleum ether up to 20% ethyl acetate / petroleum ether to afford 13.49 g of (XI) (yield 96%). 148796 Example 9: Synthesis of (+Wl-a-H. 4-β-Η. 5-a-m-4-[2.6-dihvdroxy-4-(l.l-dimethyl-heptvn phenyll-6.6-dimethylbicyclof3.1. l]hept-2-ene-2-carboxylic acid (XII).
(XII) To a well stirred solution of compound XI (3.13 g, 5 mmol) in THF (50 ml), was added in one portion tetrabutyl ammonium fluoride (5.24 g, 20 mmol). The reaction mixture was stirred at room temperature for 30 min, diluted with 100 ml ether, washed with water (5 x 150 ml), dried over Na2S04, filtered and evaporated under reduced pressure to afford 2.74 g of (XII).
Example 10: Synthesis of (+V(l-a-H. 4-β-Η. 5-a-HV4-f2.6-diacetylmethyloxy-4-(l.l-dimethyl-heptyl)phenyl]-6.6-dimethylbicyclo[3.1.l]hept-2-ene-2-carboxylic acid (XIII).
To a suspension of compound XII (0.109 g, 0.25 mmol) and potassium carbonate (0.138 g, lmmol) in anhydrous acetone (4 ml), was added chloroacetone (60 microliters, 0.75mmol). The reaction mixture was stirred at reflux and a catalytic amount of potasssium iodide was added. 148796 After 3 hours, the solids were removed by filtration and washed with dichloromethane. The dichloromethane solvent was combinedwith the acetone filtrate and the combined solvents removed by evaporation. The resulting residue was purified on reverse phase C-18 using 70 % acetonitrile (30% water, 0.1% acetic acid) to afford 86 mg of pure (XIII) (67% yield).
Example 11: Synthesis of f+Wl-a-H. 4-β-Η. 5-a-HV4-r2.6-difmethyl acetateoxy -d.l-dimethylheptynphenyl]-6.6-dimethylbicvclor3.1.11hept-2-ene-2-carboxylic acid (XIV).
To a well stirred suspension of compound XIII (0.12 g, 0.3 mmol) and potassium carbonate anhydrous (0.18 g, 1.3 mmol) in dry acetone (10 ml) was added methyl bromoacetate (95 microliters, 1 mmol). The reaction mixture was stirred under reflux for 4 hours and then allowed to stir at room temperature overnight. HPLC analysis showed 2 products, the mono and dialkylated products. An additional amount of methyl bromoacetate (95 microliters, 1 mmol) was added and reflux was continued for another 3 hours. HPLC analysis showed a single peak corresponding to the dialkylated product. The solids were removed by filtration and washed with dichloromethane. The dichloromethane solvent was combined with the acetone filtrate and the combined solvents removed. The resulting residue was dissolved in ethyl acetate (10 ml), the organic solution washed with water, dried over Na2S0 , filtered and evaporated to afford 0.12 g of pure (XIV) (78% yield). 148796 Example 12: Effects of HU-308 on Animals Animals and Administration of Drugs Female Sabra mice (2 months old, Harlan-Sprague Dawley, Jerusalem) were used for a series of tests for psychotropic effects (the 'tetrad1), for assessing intestinal immotility ('defecation'), and for the assays for inflammation and peripheral pain. Blood pressure was measured in male Sabra rats. HU-308, SR 141716A and SR 144528 (the latter two were a generous gift of Sanofi Recherche, France) were dissolved in a vehicle of ethano emulphonsaline (1 :1:18) [Martin, B.R., Compton, D.R., Thomas, B.F., Prescott, W.R., Little, P.J., Razdan, R.K., Johnson, M.R., Melvin, L.S., Mechoulam, R. & Ward, S.J. (1991) Pharmacol. Biochem. Behavior, 40, 471-478 and Fride, E. & Mechoulam, R. (1993) Eur. J. Pharmacol. 231, 313-314] and injected in volumes of 0.1 ml/lOg in mice or 0.1 ml/lOOg in rats. HU-308 was administered intraperitoneally (i.p.) into mice in the behavioral, the anti-inflammatory, and the antinociceptive assays. In experiments where blood pressure was monitored it was administered i.v. into rats.
Receptor Binding Assays The CB1 binding assays were performed with synaptosomal membranes prepared from rat brains [Devane, W.A., Hanus, L., Breuer, A., Pertwee, R.G., Stevenson, L.A., Griffin, G., Gibson, D., Mandelbaum, A., Etinger, A., & Mechoulam, R. (1992) Science 258, 1946-1949]. The CB2 assays were performed with transfected cells [Mechoulam, R., Ben-Shabat, S., Hanus, L., Ligumsky, M., Kaminski, N.E., Schatz, A.R., Gopher, A., Almog, S., Martin, B.R., Compton, D.R., Pertwee, R.G., Griffin, G., Bayewitch, M., Barg, J. & Vogel, Z. (1995) Biochem. Pharmacol. 50, 83-90]. The previously described probe [3H]HU-243 was employed in a centrifugation based ligand binding assay [Devane, W.A., Hanus, L., Breuer, A., Pertwee, R.G., Stevenson, L.A., Griffin, G., Gibson, D., Mandelbaum, A., Etinger, A., & Mechoulam, R. (1992) Science 258, 1946-1949 and Devane, W.A., Breuer, A., Sheskin, T., Jarbe, T.U.C., Eisen, M. & Mechoulam, R. (1992) J. Med. Chem. 35, 2065-2069]. 148796 Pharmacological Assays in Mice A series of four consecutive observations are performed on each mouse following a standard procedure employed to evaluate psychoactive cannabinoid-induced effects in mice [Martin, B.R., Compton, D.R., Thomas, B.F., Prescott, W.R., Little, P.J., Razdan, R.K., Johnson, M.R., Melvin, L.S., Mechoulam, R. & Ward, S.J. (1991) Pharmacol. Biochem. Behavior, 40, 471-478] using time intervals similar to those previously described [Fride, E. & Mechoulam, R. (1993) Eur. J. Pharmacol. 231, 313-314]. At various times after injection mice were tested in four assays consecutively. The four assays were (1) motor activity (ambulation and rearing) in an open field (20 x 30 cm, divided into 12 squares of equal size) for 8 min; (2) immobility ("catalepsy") on a ring of 5.5 cm diameter for 4 min; (3) body temperature with a telethermometer (Yellow Springs Instruments Co.); and (4) analgesia on a hot plate maintained at 55°C, measured as the latency (in seconds) until the first hind paw lick or jump from the plate (the latter response was rarely observed) with a maximum of 45 s. The results of this study are provided in Fig. 3 in graphical form.
Inhibition of Intestinal Motility Intestinal motility was measured by injecting the mice with HU-308 (20, 50 or 100 mg/kg) and immediately after injection separating the mice into individual cages and recording the number of fecal pellets every 15 min for 2 hours. Rectal temperature was also recorded as a measure of central activity. The results of this study are provided in Fig. 4 in graphical form.
Arachidonic Acid-induced Ear Inflammation in the Mouse Ear inflammation was measured by assessing ear tissue swelling after topical application of arachidonic acid. Nonsteroidal anti-inflammatory drugs have been shown to reduce swelling in this model [Young, J.M., Spires, D.A., Bedord, C.J., Wagner, B., Ballaron, S. & De Young, L.M. (1984) J. Invest. Dermatol. 82, 367-371]. At various times after i.p. injections of HU-308 (50 mg/kg), arachidonic acid was applied to the inner surface of one ear (4.5 mg in 5 ml ethanol). The opposite ear served as a control (5 ml ethanol). Ear thickness was determined (in 0.01 mm units) every 15 min for 90 min starting immediately after arachidonic acid application using a dial 148796 thickness gauge (Mitutoyo, Japan). The results of this study are provided in Fig. 6 in graphical form.
Peripheral Pain Pain mediated by the peripheral nervous system, was tested in the 'formalin test' for cutaneous (peripheral) pain [Tjolson, A., Berge, O-G., Hunskaar, S., Rosland, J.H. and Hole, K. (1992) Pain, 51, 5-17; Calignano, A., La Rana, G., Giuffrida, A. & Piomelli, D. (1998) Nature (London) 394, 277-280; and Jagger, S.I., Hasnie, F.S., Sellaturay, S. and Rice, A.S.C.(1998) Pain 76, 189-199]. HU-308 (or vehicle) was injected i.p. In experiments which involved an antagonist, the antagonist was administered i.p. 15 min before HU-308. Formalin was injected s.c. in the hind paw of a mouse 90 min after HU-308 injection. Immediately after formalin administration pain was assessed every 5 min for 1 hr by the number of times the animal licks the formalin-injected paw. The results of this study are provided in Fig. 7 in graphical form.
Blood pressure assay Systemic blood pressure was monitored in male rats (Sabra strain, 270-350 g). A chronic cannula (P 50, Clay Adams) was implanted into the femoral artery under pentobarbital anesthesia (60 mg/kg). The jugular vein was cannulated for drug administration. The arterial cannula was attached to a pressure transducer (Db23, Statham City) and the transducer was connected to a data acquisition system (CODAS software and scroller card, Dataq, Ohio). Pressure was sampled at a rate of 1/s.
Recordings were taken for 30-60 min before treatment. Preliminary observations indicated that the effects of HU-308 on blood pressure returned to normal well within a 30 min period after administration. Hence, measurements were performed for 30 min following i.v. bolus injections of HU-308. Only one dose of HU-308 (5-40 mg/kg) with, or without, antagonist (SR 141716A to block CB1 receptors; SR 144528 to block CB2 receptors) was administered to each rat. The results of this study are provided in Fig. 5 in graphical form. 148796 Statistical analyses Time curves were compared to two-way analyses-of-variance (ANOVA:time versus dose). Differences from vehicle treatments were compared by one-way ANOVA's, followed by post-hoc Newman-Keuls tests (Prism software from Graphpad, San Diego).
Example 13: Activity of HU-308 In Acetic Acid Induced Inflammatory Bowel Disease The activity of HU-308 at reducing acetic acid induced inflammatory bowel disease (IBD) was evaluated. Male Sprague Dawley rats (10 weeks old, 200-250 g) were lightly anesthetized with ketamine rompun combination. A polyethylene catheter (outer diameter 1.7 mm) was inserted through the rectum 5 cm into the colon and 2 mL of 5% acetic acid solution was slowly administered into the colon. Fifteen seconds later the colon was washed with 3 mL of saline followed by another 3 mL of saline 15 sec later. Immediately after, animals were treated with either HU-308 (10 or 20 mg/kg) or its vehicle (2 mL/kg). The HU-308 or its vehicle were prepared by diluting 0.3 mL of either HU-308 or its vehicle with 2.7 mL of saline. The HU-308 or its vehicle was administered i.p. and was administered daily for 7 days. Animals were clinically followed for 1 week and body weight, presence of blood in the stool, and stool consistency were monitored and recorded daily and scored on a scale of 0-4 according to the scale provided in Table 1 [Murthy et al., Dig. Dis. Sci., 38(9), 1722-1734, (1993)].
Table 1: Criteria for Scoring the Disease Activity Index of Inflammatory Bowel Disease (DAI).1 Disease Activity Index = (combined score of weight losss, stool consistency and bleeding)/3 148796 Normal Stool = well formed pellets; loose stool = pasty stool that does not stick to the anus; and diarrhea = liquid stool that sticks to the anus Seven days post disease induction animals were euthanized with phenobarbital (100 mg/kg i.p.), the whole colon excised, slit longitudinally, and examined under a magnifying glass. Any visible damage to the colon was recorded and scored. The scoring scale for colon damage is provided in Table 2.
Table 2: Gross Pathology Scoring Method for Evaluating the Severity of Inflammatory Bowel Disease.
Clinical outcome was analyzed using analysis of variance (ANOVA) followed by Duncan's post hoc test. A non-parametric test (Wilcox Rank Sum Test) was used to evaluate the gross pathology findings.
Fig. 8 shows that disease development, as indicated by disease activity index (DAI), peaked on day 3-4 and that HU-308 (10 mg/kg) reduced disease severity and increased healing compared to its vehicle and HU-308 (20 mg/kg). In Fig. 8 line "a" depicts HU-308 (10 mg/kg) vs. vehicle, p<0.05; line "b" depicts HU-308 (10 mg/kg) vs. HU-308 (20 mg/kg), p<0.05; and line "c" depicts HU-308 (20 mg/kg) vs. vehicle, p<0.05. The differences were statistically significant (p<0.05) on days 2, 3, and 4.
Fig. 9 is a bar graph of gross pathology score (Table 2) for untreated mice, mice treated with vehicle, mice treated with 10 mg/kg of HU-308, and mice treated with 20 mg/kg of HU-308. 148796 Fig .9 shows that HU-308 reduced the pathological lesion severity in the gastrointestinal tract by 35 percent compared to its vehicle (p<0.05 for 10 mg/kg and p=0.052 for 20 mg kg). The results of this study show that 10 and 20 mg/kg HU-308 administer i.p. to mice daily for seven days can reduce the severity of acid induced inflammatory bowel disease.
Example 14: Anti-inflammatory of HU-308 In Models of Autoimmune Disease Autoimmune diseases are associated with elevated levels of inflammatory cytokines. The most convenient models for studying autoimmune disease are experimental allergic encephalomyelitis (EAE) and experimental autoimmune arthritis in rodents. EAE is an autoimmune neurological disease elicited by sensitization of the animals to myelin basic protein from the central nervous system, which is also known as basic encephalitogenic protein. EAE is considered to represent a model of the human disease multiple sclerosis. Experimental autoimmune arthritis is induced in animals by immunization with collagen in complete Freund's adjuvant. The ability of CB2 specific compounds of the general formula I to prevent or attenuate the clinical symptoms of autoimmune arthritis and EAE is evaluated.
Autoimmune Arthritis The purpose of the study is to test the activity of HU-308 in preventing autoimmune arthritis. Experimental autoimmune arthritis is induced in animals by immunization with collagen type 2 in complete Freund's adjuvant.
Adult CD-I mice (27-33gr), at least five per treatment group, are used in the study. Each animal is administered 100 μg/ml collagen type 2 in 0.1 mL complete Freund's adjuvant. The collagen is administered subcutaneously into the base of the tail. The volume of each hind paw is measured using a plethysmometer (commercially available from Hugo Basil of Italy) before collagen administration and on days 1, 4, 7, 10, 13 and 15 of treatment (30 minutes after drug treatment). The following treatment groups are tested: vehicle (blank cosolvent using a standard volume of 10 ml/kg) alone, HU-308 at doses of 2-15 mg/kg every three days, HU-308 at doses of 2-15 mg/kg once daily, and diclofenac 10 mg/kg (10 ml/kg) every 3 days, as a positive control. All treatments are administered intraperitoneally. HU-308 is used from a 5% stock preparation in cosolvent by diluting with saline 1 :25. The same procedure is performed with blank cosolvent. 148796 Diclofenac is prepared at Pharmos, as solution of 1 mg ml. At the same time the paws are measured they are also clinically evaluated according to the method of R.0 Williams et al., Proc. Natl. Acad. Sci. USA, 89: 9784-9788 (1992), wherein 0=normal, l=slight swelling and erythema, 2=pronounced edematous swelling, and 3=joint rigidity. On day fifteen of treatment the animals are euthanised with pentobarbital 100 mg kg i.p. Blood samples (in heparin) are taken to determine hematocrit levels and blood levels of HU-308.
The major arthritis related sign that is evident in experimental autoimmune arthritis is swelling of the paws. Animals treated with HU-308 demonstrate a decreased incidence and severity of swelling of the paws, compared to the other treatment groups. The differences are compared using a non-parametric analysis (Wilcoxon Rank Sum Test). The diclofenac treated animals demonstrate a smaller paw volume compared to the vehicle treated rats, but this difference is not statistically significant.
Attenuation of Experimental Autoimmune Encephalomyelitis (EAE) Various systems for induction of autoimmune encephalomyelitis are known in the art, depending on the strain of animal and antigen employed to induce the disease. EAE is tested using Lewis rats in which the disease displays onset of symptoms around day 10 after induction and spontaneous recovery around 18 days after induction of the disease. The animals (at least 5 per test group) are maintained on a 12 hour light/12 hour dark regimen, at a constant temperature of 22°C, with food and water ad libitum. EAE is induced in the animals by immunization with purified guinea pig myelin basic protein emulsified in Complete Freund's Adjuvant. Guinea pig myelin basic protein (mbp) is prepared from spinal cord homogenates defatted with chloroform ethanol and the isolated protein is purified using ion exchange chromatography. Each animal receives 50 micrograms of the purified protein. A solution of mbp (0.5 mg/ml) is emulsified with an equal volume of Complete Freund's Adjuvant containing 4 mg/ml of mycobacterium tuberculosis, and each animal receives 100 microliters (50 μΐ in each hind foot pad).
Animals are treated with HU-308 or vehicle control administered intravenously in a volume of 2 ml. The time of treatment varies from day 10 to day 18 post induction of disease, with at least five animals per group. The results show diminution of mean clinical score in HU-308 treated 148796/2 animals according to the following scale: 1 indicates tail paralysis, 2 indicates paraplegia, 3 indicates quadriplegia, 4 indicates complete body paralysis, and 5 indicates death.
The invention described and claimed herein is not to be limited in scope by the specific embodiments herein disclosed, since these embodiments are intended as illustrations of several aspects of the invention. Any equivalent embodiments are intended to be within the scope of this invention. Indeed, various modifications of the invention in addition to those shown and described herein will become apparent to those skilled in the art from the foregoing description. Such modifications are also intended to fall within the scope of the appended claims.
All parts of the description that are not encompassed by the claims are not part of the present invention.

Claims (7)

1. having the (3S,4S) configuration, and which is essentially free of t e (3R,4R) enantiomer, wherein: the dashed line A — B designates an optional double bond, Ri is (a) -R'N(R")2 wherein R' is C1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or Ci-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R'" is hydrogen or C 1-C5 straight or branched chain alkyl, (b) -Q wherein Q is a heterocyclic moiety having a labile hydrogen atom so that said moiety acts as a carboxylic acid analogue, (c) -R'X wherein R' is C1 -C5 straight or branched chain alkyl and X is halogen, (d) -R'C(0)N(R")2 wherein R' is a direct bond or C 1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR"' or -OC(0)R"' moiety wherein R'" is hydrogen or CrC5 straight or branched chain alkyl, (e) -R'C(0)OR" wherein R' is a direct bond or Ci-C5 straight or branched chain alkyl and R" is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl, (f) -R' wherein R' is C1 -C5 straight or branched chain alkyl, or (g) -R'OR'" wherein R' is C1 -C5 straight or branched chain alkyl and R'" is hydrogen or Ci-C5 straight or branched chain alkyl; G is hydrogen, halogen or -OR2 wherein R2 is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'", -OC(0)R*", -C(0)OR"', or -C(0)R"' moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl; and 148796/4 R.3 is (a) C1-C12 straight or branched chain alkyl, (b) -OR"", in which R"" is a straight chain or branched C2-C9 alkyl which may be substituted at the terminal carbon atom by a phenyl group, or (c) -(CH2)nOR"' wherein n is an integer of 1 to 7 and R"' is hydrogen or C1 -C5 straight or branched chain alkyl; for the manufacture of a pharmaceutical composition for treating, preventing or managing autoimmune diseases.
2. The use of claim 1 , wherein R3 is a straight or branched chain C5-C12 alkyl.
3. The use of claim 1 , wherein R3 is 1,1-dimethyl-heptyl or 1,2-dimethyl-heptyl.
4. The use of claim 1, wherein Q is a saturated or unsaturated ring of 4 to 8 members consisting of C with at least one of N, S, and O, said ring being optionally; substituted with -COR'" or -COOR" wherein R'" is a hydrogen or Cj-Cs straight or branched chain alkyl.
5. The use of claim 1, wherein Ri is -CH2OH, -C(0)N(R")2, -C(0)OR", -COOH, an amino acid, or a carboxamide, and wherein R" is as previously defined.
6. The use of claim 1, wherein Ri is -CH2OH, G is -OCH3> R3 is 1,1-dimethyl-heptyl and the dashed line A — B designates a double bond.
7. Use of a compound of the general formula: having the (3S,4S) configuration, and which is essentially free of the (3R,4R) enantiomer, wherein: the dashed line A — B designates an optional double bond, 148796/4 Ri is (a) -R'N(R")2 wherein R' is C1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or Ci-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R"' is hydrogen or Ci-C5 straight or branched chain alkyl, (b) -Q wherein Q is a heterocyclic moiety having a labile hydrogen atom so that said moiety acts as a carboxylic acid analogue, (c) -R'X wherein R' is Q-Cs straight or branched chain alkyl and X is halogen, (d) -R'C(0)N(R")2 wherein R' is a direct bond or C1-C5 straight or branched chain alkyl and each R", which may be the same or different, is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R" is hydrogen or C1-C5 straight or branched chain alkyl, (e) -R'C(0)OR" wherein R is a direct bond or Ci-C5 straight or branched chain alkyl and R" is hydrogen or Ci-C5 straight or branched chain alkyl optionally containing a terminal -OR'" or -OC(0)R"' moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl, (f) -R' wherein R is Ci-C5 straight or branched chain alkyl, or (g) -R'OR" wherein R' is C1-C5 straight or branched chain alkyl and R'" is hydrogen or Ci-C5 straight or branched chain alkyl; G is hydrogen, halogen or -OR2 wherein R2 is hydrogen or C1-C5 straight or branched chain alkyl optionally containing a terminal -OR'", -OC(0)R"', -C(0)OR"', or -C(0)R"' moiety wherein R'" is hydrogen or C1-C5 straight or branched chain alkyl; and R3 is (a) Q-C12 straight or branched chain alkyl, (b) -OR"", in which R"" is a straight chain or branched C2-C9 alkyl which may be substituted at the terminal carbon atom by a phenyl group, or (c) -(CH2)nOR'" wherein n is an integer of 1 to 7 and R" is hydrogen or C1 -C5 straight or branched chain alkyl; for the manufacture of a pharmaceutical composition for treating, preventing or managing tumors expressing CB2 receptors. The use of claim 7, wherein R3 is a straight or branched chain C5-Ci2 alkyl. The use of claim 7, wherein R3 is 1,1-dimethyl-heptyl or 1,2-dimethyl-heptyl. The use of claim 7, wherein Q is a saturated or unsaturated ring of 4 to 8 members consisting of C with at least one of N, S, and O, said ring being optionally substituted with -COR'" or -COOR'" wherein R'" is a hydrogen or C1-C5 straight or branched chain alkyl. 148796/4 The use of claim 7, wherein Ri is -CH2OH, -C(0)N(R*')2, -C(0)OR", -COOH, an amino acid, or a carboxamide, and wherein R" is as previously defined. The use of claim 7, wherein Ri is -CH2OH, G is -OCH3> R3 is 1,1-dimethyl-heptyl and the dashed line A — B designates a double bond.
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Families Citing this family (48)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6342611B1 (en) * 1997-10-10 2002-01-29 Cytovia, Inc. Fluorogenic or fluorescent reporter molecules and their applications for whole-cell fluorescence screening assays for capsases and other enzymes and the use thereof
WO1999057106A1 (en) 1998-05-04 1999-11-11 The University Of Connecticut Novel analgesic and immunomodulatory cannabinoids
US7897598B2 (en) * 1998-06-09 2011-03-01 Alexandros Makriyannis Inhibitors of the anandamide transporter
US7589220B2 (en) 1998-06-09 2009-09-15 University Of Connecticut Inhibitors of the anandamide transporter
US7276613B1 (en) 1998-11-24 2007-10-02 University Of Connecticut Retro-anandamides, high affinity and stability cannabinoid receptor ligands
US7161016B1 (en) 1998-11-24 2007-01-09 University Of Connecticut Cannabimimetic lipid amides as useful medications
US8084467B2 (en) * 1999-10-18 2011-12-27 University Of Connecticut Pyrazole derivatives as cannabinoid receptor antagonists
US7741365B2 (en) * 1999-10-18 2010-06-22 University Of Connecticut Peripheral cannabinoid receptor (CB2) selective ligands
US6943266B1 (en) * 1999-10-18 2005-09-13 University Of Connecticut Bicyclic cannabinoid agonists for the cannabinoid receptor
AU778159B2 (en) 1999-10-18 2004-11-18 University Of Connecticut, The Peripheral cannabinoid receptor (CB2) selective ligands
US7393842B2 (en) 2001-08-31 2008-07-01 University Of Connecticut Pyrazole analogs acting on cannabinoid receptors
US7119108B1 (en) 1999-10-18 2006-10-10 University Of Connecticut Pyrazole derivatives as cannabinoid receptor antagonists
US6900236B1 (en) * 1999-10-18 2005-05-31 University Of Connecticut Cannabimimetic indole derivatives
IL132661A (en) * 1999-10-31 2008-11-26 Raphael Mechoulam Agonists specific for the peripheral cannabinoid receptor
JP2004532185A (en) 2001-01-26 2004-10-21 ユニバーシティ オブ コネチカット New cannabimetic ligands
US7173027B2 (en) 2001-01-29 2007-02-06 University Of Connecticut Receptor selective cannabimimetic aminoalkylindoles
AU2002320430A1 (en) 2001-07-13 2003-01-29 University Of Connecticut Novel bicyclic and tricyclic cannabinoids
WO2003035005A2 (en) 2001-10-26 2003-05-01 University Of Connecticut Heteroindanes: a new class of potent cannabimimetic ligands
TW200407110A (en) * 2001-11-23 2004-05-16 Astrazeneca Ab New use for the treatment of gastroesophageal reflux disease
WO2003061699A1 (en) * 2001-12-27 2003-07-31 Japan Tobacco, Inc. Remedies for allergic diseases
WO2003063758A2 (en) * 2002-01-31 2003-08-07 Pharmos Corporation Bicyclic cb2 cannabinoid receptor ligands
IL150302A (en) * 2002-01-31 2008-07-08 Naim Menashe Bicyclic cb2 cannabinoid receptor ligands
US7351729B2 (en) 2002-03-08 2008-04-01 Signal Pharmaceuticals, Llc JNK inhibitors for use in combination therapy for treating or managing proliferative disorders and cancers
WO2004017922A2 (en) 2002-08-23 2004-03-04 University Of Connecticut Keto cannabinoids with therapeutic indications
EP1606019A1 (en) * 2003-03-07 2005-12-21 The University Court of The University of Aberdeen Cannabinoid receptor inverse agonists and neutral antagonists as therapeutic agents for the treatment of bone disorders
TW200505902A (en) * 2003-03-20 2005-02-16 Schering Corp Cannabinoid receptor ligands
JP2007501279A (en) * 2003-05-20 2007-01-25 ユニバーシティ・オブ・テネシー・リサーチ・ファウンデイション Cannabinoid derivatives, methods for their production, and uses
WO2005123053A2 (en) * 2004-06-22 2005-12-29 Pharmos Limited Use of cb2 receptors agonists for the treatment of huntington’s disease
TWI366460B (en) 2005-06-16 2012-06-21 Euro Celtique Sa Cannabinoid active pharmaceutical ingredient for improved dosage forms
US20070060638A1 (en) * 2005-08-26 2007-03-15 Olmstead Mary C Methods and therapies for potentiating therapeutic activities of a cannabinoid receptor agonist via administration of a cannabinoid receptor antagonist
US7763607B2 (en) 2006-04-27 2010-07-27 Solvay Pharmaceuticals Gmbh Pharmaceutical compositions comprising CBx cannabinoid receptor modulators and potassium channel modulators
AU2007245733A1 (en) * 2006-04-27 2007-11-08 Solvay Pharmaceuticals Gmbh Pharmaceutical compositions comprising CBX cannabinoid receptor modulators and Potassium channel modulators
US20100004244A1 (en) * 2006-06-27 2010-01-07 Yissum Research Development Company Of The Hebrew University Of Jerusalem Use of cb2 receptor agonists for promoting neurogenesis
US9763894B2 (en) * 2006-12-05 2017-09-19 Virginia Commonwealth University Inflammation therapy
GB0702862D0 (en) * 2007-02-14 2007-03-28 Univ Aberdeen Therapeutic compounds
WO2008107879A1 (en) * 2007-03-05 2008-09-12 Yissum Research Development Company Of The Hebrew University Of Jerusalem Novel cannabidiol derivatives and their use as anti-inflammatory agents
CN101998855A (en) * 2007-10-02 2011-03-30 戴维·布兰斯基 Endocannabinoids for Enhanced Growth and Development in Babies
US9193713B2 (en) 2007-10-12 2015-11-24 Abbvie Inc. Compounds as cannabinoid receptor ligands
WO2010041253A1 (en) 2008-10-06 2010-04-15 Yissum Research Development Company Of The Hebrew University Of Jerusalem, Ltd. Compositions comprising cb receptor agonists, uses thereof and methods for their preparation
US20120277296A1 (en) 2009-07-23 2012-11-01 Sophie Lotersztajn Selective CB2 Receptor Agonists for Use in the Prevention or Treatment of Alcoholic Liver Disease
ITMI20122221A1 (en) 2012-12-21 2014-06-22 C4T S C A R L NEW COMPOUNDS OF 2,3-DIIDRO-4H-1,3-BENZOSSAZIN-4-ONE, METHOD FOR PREPARING THEM AND PHARMACEUTICAL FORM THAT INCLUDES THEM
US9486419B2 (en) 2013-04-17 2016-11-08 Ariel-University Research And Development Company CB2 receptor ligands for the treatment of psychiatric disorders
EP2992880A1 (en) * 2014-09-04 2016-03-09 Fundació Institut de Recerca de l'Hospital de la Santa Creu l Sant Pau Use of heme oxygenase 1 inducers and cannabinoid 2 receptor or delta-opioid receptor agonists in inflammatory pain
US9585867B2 (en) 2015-08-06 2017-03-07 Charles Everett Ankner Cannabinod formulation for the sedation of a human or animal
ES2986118T3 (en) 2017-08-09 2024-11-08 Cannibite Bvba Cannabis and its derivatives for the treatment of pain and inflammation related to dental pulp and bone regeneration related to bone defects of the dental jaw
EP3836894A1 (en) * 2019-10-25 2021-06-23 Gelest Technologies, Inc. Silicon-based cannabidiol derivatives and compositions thereof
WO2022036455A1 (en) * 2020-08-21 2022-02-24 Altus Formulation Inc. Dual analgesic/anti-inflammatory compositions comprising cb2 receptor agonists, combinations, and methods of use thereof
CN116725992A (en) * 2023-06-13 2023-09-12 南通大学 Application of 2-cannabinoid receptor agonist in preparation of peripheral neuron injury treatment drugs

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IL55274A (en) * 1978-08-02 1982-08-31 Yissum Res Dev Co 4-(2,6-dihydroxy-4-(dimethylheptyl)phenyl)substituted 2-pinen-10-ol and pinane derivatives,their preparation and pharmaceutical compositions comprising them
US5434295A (en) * 1994-02-07 1995-07-18 Yissum Research Development Company Neuroprotective pharmaceutical compositions of 4-phenylpinene derivatives and certain novel 4-phenylpinene compounds
FR2735774B1 (en) 1995-06-21 1997-09-12 Sanofi Sa USE OF HUMAN CB2 RECEPTOR AGONIST COMPOUNDS FOR THE PREPARATION OF IMMUNOMODULATORY DRUGS, NOVEL CB2 RECEPTOR AGONIST COMPOUNDS AND PHARMACEUTICAL COMPOSITIONS CONTAINING THEM
IL132661A (en) * 1999-10-31 2008-11-26 Raphael Mechoulam Agonists specific for the peripheral cannabinoid receptor

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