WO2016187722A1 - Use of cannabinoids in the treatment of ocular inflammation and/or pain - Google Patents
Use of cannabinoids in the treatment of ocular inflammation and/or pain Download PDFInfo
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- WO2016187722A1 WO2016187722A1 PCT/CA2016/050603 CA2016050603W WO2016187722A1 WO 2016187722 A1 WO2016187722 A1 WO 2016187722A1 CA 2016050603 W CA2016050603 W CA 2016050603W WO 2016187722 A1 WO2016187722 A1 WO 2016187722A1
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/658—Medicinal preparations containing organic active ingredients o-phenolic cannabinoids, e.g. cannabidiol, cannabigerolic acid, cannabichromene or tetrahydrocannabinol
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K45/00—Medicinal preparations containing active ingredients not provided for in groups A61K31/00 - A61K41/00
- A61K45/06—Mixtures of active ingredients without chemical characterisation, e.g. antiphlogistics and cardiaca
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P25/00—Drugs for disorders of the nervous system
- A61P25/02—Drugs for disorders of the nervous system for peripheral neuropathies
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P29/00—Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
Definitions
- compositions and methods for treating ocular pain and/or inflammation are provided.
- Cannabinoids have been used for systemic treatment of pain and inflammation. All of the cannabinoids currently sold for human use also exhibit cannabinoid receptor type 1 (CB1 ) effects which are associated with, for example, hypothermia, catalepsy, hypolocomotion and psychoactive effects so these agents are associated with sedation and other effects that may limit, for example, systemic dosing.
- CBD1 cannabinoid receptor type 1
- CBD-DMH like its parent molecule, cannabidiol (CBD), is non- psychotropic and exhibits analgesic and anti-inflammatory effects in animal models.
- CBD-DMH is reported to be more than 10-fold more potent than CBD.
- the structure of CBD and CBD-DMH have been previously described (Mechoulam et al., 2002; Fride et al., 2004).
- HU-308 is a synthetic cannabinoid compound that binds and activates the CB2 receptor specifically (Hanus 1999).
- An enantiomeric derivative of HU-308, named HU-433, is also a CB2 agonist.
- HU-433 has been shown to have 2-3 orders of magnitude greater potency in both in vitro and in vivo systems. It shows no psychoactivity.
- the chemical structures of HU-308 and HU- 433 were previously described in PCT Publication No. WO 2010/041253.
- cannabis synergy arises from constituent combination effects (Berenbaum 1989; McPartland and Russo 2001 ; Russo 201 ). This may occur via several mechanisms including but not limited to: multi-target effects (receptor agonism or antagonism, anti-oxidant, modulation of endogenous endocannabinoid synthesis or metabolism, etc.), improved pharmacokinetic properties of compounds via modulation of solubility, bioavailability, as well as potential bacteriostatic activity (Wagner and Ulrich- Merzenich 2009; Russo 2011 ). CBD synergy with other phytocannabinoids and terpenoids from Cannabis has been reported specifically with regard to the treatment of inflammation and pain (Russo, 2011 ).
- Inflammatory eye diseases represent a particular challenge due, for example, to risk of vision loss and blindness.
- the conditions encompass intraocular inflammation (e.g. uveitis, uveoretinitis, proliferative vitreoretinopathy) as well as extraocular inflammation (eg. surface inflammation), including corneal inflammation and neuropathology.
- Neuropathic pain is generated by pathology in the peripheral or central nervous system.
- a large number of disorders can give rise to neuropathic pain. This may range from nerves being cut (trauma or surgery) or damaged by viruses, ischemic and metabolic injury or complex genetic disorders to name a few.
- Neuropathic pain may arise from local damage to neural tissues as well as tissues remote to initial trauma and may also arise as a result of chronic inflammatory disease.
- Pharmacological management is one of the most used pain treatment options but results are poor with many patients obtaining inadequate relief with currently available agents. There is therefore a need for new agents for treatment of neuropathic pain.
- Neuropathic pain may affect any part of the body including the eye for which there are no adequate treatments at present.
- Uveitis is a term used to describe any intraocular inflammation within the eye from the uvea (iris, ciliary body and choroid) to the sclera, retina and optic nerve. It involves either infectious or non-infectious conditions, which can be localized within the eye or associated with systemic inflammatory and autoimmune diseases, including reactive arthritis and multiple sclerosis.
- the most common form of uveitis, anterior uveitis, with inflammation of the iris and ciliary body, is additionally associated with considerable pain and photophobia (Jabs, Nussenblatt et al. 2005; Lee and Dick 2012).
- Untreated uveitis can lead to permanent loss of vision. Severe uveitis is treated aggressively to mitigate the damage caused by inflammation.
- agents including the "gold-standard” corticosteroids, anti-metabolites, biologic response modifiers and non-steroidal anti-inflammatory agents, suffer from significant side-effects and in some cases escalating costs (i.e. biologies).
- Anterior uveitis iritis
- iritis is associated with inflammation of iris and anterior tissues and this leads to pain and light sensitivity with pupillary changes in response to light.
- Anterior uveitis pain is typically resolved when the inflammation is treated so is not classed as neuropathic pain.
- uveitis represents hyperactivation of the body's immune system; a form of local sepsis. Inflammatory conditions are represented by activation, recruitment, and migration of immune cells, release of proinflammatory cytokines, swelling, oedema and/or tissue damage. In posterior uveitis, this can also include gliosis, and activation of resident immune cells (microglia).
- proliferative vitreoretinopathy i.e. proliferative vitreoretinopathy.
- Posterior uveitis is not clinically associated with pain. Generally conditions with moderate or mild chronic inflammation in the retina do not present with pain but can result in loss of retinal neurons and vision loss. These include: posterior uveitis, retinitis and proliferative vitreoretinopathy.
- Corneal neuropathic hyperalgesia involves a dysfunctional corneal pain system and is associated with significant discomfort and persistent heightened sensitivity of the cornea (peripheral sensitization) in the absence of overt trauma or noxious stimuli (reviewed in Belmonte et al., 2004; Rosenthal & Borsook, 2012; Rosenthal et al., 2009).
- Corneal hypersensitivity, neuroinflammation, pain and photophobia are reported in patients following refractive surgery and chemical/toxic exposure, including repetitive use of benzalkonium chloride-preserved eye drops.
- Corneal neuropathic pain is also a central pathogenic feature of eye disorders that are collectively referred to as dry eye, and include non-infectious immunological causes such as Sjogren syndrome and systemic lupus as well as infections with Herpes Zoster (reviewed in Rosenthal & Borsook, 2012; Yawn et al., 2013).
- Up to 20% of adults aged 45 or older are affected by dry eye disease presenting a major health concern with significant economic and societal implications (reviewed in Friedman, 2013; Pflugfelder, 2008).
- corneal hyperalgesia As a result of ocular surface desiccation (evaporation dry eye), is the most common form of corneal hyperalgesia
- many patients who report dry eye symptoms do not show signs of dry eyes (reduced tears), or superficial corneal erosions. Contrasted are others who have insufficient tear quantity and quality who are asymptomatic.
- neuropathic disease can sometimes precede alterations in tear film dynamics (Rosenthal & Borsook, 2012; Rosenthal et al., 2009).
- Glanal neuropathic pain includes a wide variety of distinct compounds such as but not limited to, opioids, non-steroidal anti-inflammatory drugs, sodium channel blockers (local anesthetics), anticonvulsants, tricyclic anti-depressants and GABAergic agents.
- opioids non-steroidal anti-inflammatory drugs
- sodium channel blockers local anesthetics
- anticonvulsants tricyclic anti-depressants
- GABAergic agents GABAergic agents.
- present pharmacotherapy remains inadequate and the complex nature of corneal neuropathic pain is highlighted by the fact that no single known treatment appears to be effective in managing symptoms.
- the undesirable side-effects of many currently prescribed agents limit the therapeutic window for treatment.
- Corneal inflammatory neuropathic pain therefore represents a significant unmet therapeutic need (Rosenthal & Borsook, 2012; Rosenthal et al., 2009).
- CBD or CBD in combination with other endocannabinoid system modulators, has proven clinical and pre-clinical efficacy in the treatment of neuropathic pain resulting from nerve injury and disease (Hsieh et al., 201 ; Ward et al, 201 1 ; reviewed in Rahn and Hohmann 2009; Hohman & Suplita, 2006).
- the present disclosure provides anti-inflammatory and immunomodulatory agents, suitable for acute and chronic use, either as sole treatments or in combination, and for delivery locally to the eye. Agents are optionally used for treatment (including prevention) of ocular inflammation optionally preventing associated pain and/or loss of vision.
- the invention relates to an ocular pharmaceutical composition comprising i) a CB2 target agent, or a cannabimimetic agent or a combination thereof, ii) a non-selective cannabinoid receptor agonist (typically a cannabimimetic agent), and optionally a iii) a carrier, typically any carrier suitable for ocular administration to an eye.
- Another aspect of the invention relates to a method of treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, comprising administering ocularly to the subject i) a CB2 target agent, a cannabimimetic agent or a combination thereof and ii) a cannabimimetic agent that is a non-selective cannabinoid receptor agonist.
- the invention is particularly beneficial for ocular conditions that present with both inflammation and pain eg. anterior and pan-uveitis, episcleritis, scleritis and ocular surface inflammation and pain (eg. corneal keratitis).
- the condition is pan-uveitis which affects whole eye and also includes retina and anterior eye and pain.
- Formulations are typically for ocular topical or regional delivery (periocular etc).
- the disclosure provides an ocular pharmaceutical composition
- a CB2 target agent i) a cannabimimetic agent, or a combination thereof
- a non-selective cannabinoid receptor agonist typically a cannabimimetic agent
- a carrier suitable for ocular administration to an eye iii) a non-selective cannabinoid receptor agonist (typically a cannabimimetic agent), and iii) a carrier suitable for ocular administration to an eye.
- the CB2 target agent optionally comprises CBD-DMH.
- the non-selective cannabinoid receptor agonist is optionally selected from ⁇ 8 - THC or a prodrug thereof, A 9 -THC or a prodrug thereof, CP 55,940, WIN 55,212- 2 and combinations thereof.
- the carrier optionally comprises a liposome, an emulsion or an ointment.
- Another aspect of the disclosure provides use of the composition for i) treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, or ii) preparation of a medicament for treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof.
- Another aspect relates to a method of treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, comprising administering ocularly to the subject the composition.
- the CB2 target agent is optionally a CB2 agonist agent, a CB2 partial agonist agent, a CB2 positive allosteric modulator or a combination thereof.
- the CB2 target agent is optionally CBD-DMH.
- Non-selective cannabinoids act at both CB1 and CB2.
- the compositions also provide allosteric modulation at CB1 and CB2 (indicated by ago-PAM for CBD-DMH)
- the use or method optionally treats ocular inflammation caused by a non-infectious condition, such as posterior uveitis, retinitis, uveoretinitis and proliferative vitreoretinopathy.
- a non-infectious condition such as posterior uveitis, retinitis, uveoretinitis and proliferative vitreoretinopathy.
- the ocular inflammation optionally further presents with non-neuropathic pain and the treatment reduces the pain.
- the condition is optionally anterior uveitis, episcleritis or scleritis.
- the ocular inflammation is optionally intraocular inflammation.
- the use or method optionally for treating ocular neuropathic pain and ocular inflammation caused by a noninfectious condition.
- the ocular neuropathic pain optionally arises from dry eye, trauma, a corneal abrasion, a corneal burn, a corneal transplant, an autoimmune disease or an allergen.
- administering ocularly to the subject comprises administering the pharmaceutical composition ocular topically to a surface of the eye of the subject.
- administering ocularly to the subject comprises administering periocularly to the eye of the subject.
- Periocular routes include subconjunctival, sub-tenon, retrobulbar, peribulbar and posterior juxtascleral routes.
- the use or the method optionally treats both ocular inflammation and ocular neuropathic pain in a subject in need thereof that has both ocular inflammation and ocular neuropathic pain symptoms.
- the subject optionally has anterior and/or pan-Uveitis, episcleritis, scleritis and/or ocular surface inflammation and pain (eg. corneal keratitis).
- the subject is typically a mammal, optionally a human.
- the disclosure provides a composition/or use of 1 ) a CB2 agonist alone (i.e CBD-DMH, HU308, HU433 etc) or combination with CBD-DMH (allosteric agonist) with CB2 agonist for Uveitis and intraocular inflammation.
- a combination optionally includes non-selective cannabinoid plus either a CB2 or CB1 allosteric modulator for ocular surface inflammation (eg. corneal keratitis).
- Examples of specific useful combinations optionally include CBD or CBD-DMH or HU308 and/or HU433, or CBD-DMH +HU308.
- Another example is CBD or CBD-DMH, plus THC.
- kits comprising i) a CB2 target agent, a cannabimimetic agent, and ii) a non-selective cannabinoid receptor agonist (typically a cannabimimetic agent) and optionally instructions for use.
- a kit comprising i) a CB2 target agent, a cannabimimetic agent, and ii) a non-selective cannabinoid receptor agonist (typically a cannabimimetic agent) and optionally instructions for use.
- Other individual chemicals of compositions described herein may also be combined and used in kits.
- Cannabinoids such as the CB2 agonists (eg. CBD derivatives) HU- 308, HU-433, CBD-DMH and CBD possess anti-inflammatory properties.
- the present disclosure provides methods for ocularly administering such compounds for reducing ocular inflammation and pain in a subject.
- Non-psychotropic phytocannabinoids, (e.g. ⁇ -caryophyllene, cannabidiol [CBD]), and synthetic cannabinoids (e.g. HU-433, HU-308, CBD-DMH) are useful ocularly for the treatment of ocular inflammation and neuropathic pain. Without being bound by theory, these products are directed at the endocannabinoid system (ECS).
- ECS endocannabinoid system
- the ECS is a complex and sophisticated network that is part of the body's pain and immune defence network.
- the CB2 receptors are located primarily in the peripheral tissues (e.g. skin, eye, skeleton, viscera) and in neural glial cells (brain immune defence cells).
- the ECS is an emerging useful target for treating pain and inflammation.
- the present disclosure includes a method of treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, comprising administering ocularly to the subject a CB2 target agent, a cannabimimetic agent or a combination thereof.
- the CB2 target agent comprises a CB2 agonist agent, a CB2 partial agonist agent, a CB2 positive allosteric modulator or a combination thereof.
- the CB2 target agent is CBD-DMH.
- the method comprises administering the CBD- DMH in combination with at least one further CB2 target agent.
- the at least one further CB2 target agent is HU 433, HU 308, ⁇ - caryophyllene, or combinations thereof.
- the method comprises administering the CBD- DMH in combination with at least one further cannabimimetic agent.
- the at least one further cannabimimetic agent is a non-selective cannabinoid receptor agonist.
- the non-selective cannabinoid receptor agonist is selected from A 8 -THC or a prodrug thereof, ⁇ 9 - THC or a prodrug thereof, CP 55,940, WIN 55,212-2 and combinations thereof.
- the method is a method of treating ocular inflammation caused by a non-infectious condition.
- the condition is selected from posterior uveitis, retinitis, uveoretinitis and proliferative vitreoretinopathy.
- the ocular inflammation further presents with non-neuropathic pain and the treatment reduces the pain.
- the condition is selected from anterior uveitis, episcleritis and scleritis.
- the ocular inflammation is intraocular inflammation.
- the method is a method for treating ocular neuropathic pain and ocular inflammation caused by a non-infectious condition.
- the ocular neuropathic pain is corneal neuropathic pain.
- the ocular neuropathic pain arises from dry eye, trauma, a corneal abrasion, a corneal burn, a corneal transplant, an autoimmune disease or an allergen.
- the present disclosure also includes an ocular pharmaceutical composition
- a CB2 target agent comprising a CB2 target agent, a cannabimimetic agent or a combination thereof and a carrier suitable for ocular administration to an eye.
- the composition comprises CBD or CBD-DMH.
- the composition comprises at least one further CB2 target agent or cannabamimetic agent.
- the composition further comprises at least one further cannabimimetic agent.
- the carrier comprises a liposome, an emulsion or an ointment, optionally a cyclodextrin liposome.
- compositions of the disclosure are readily delivered locally to the eye.
- the composition comprises a combination of non-selective cannabimimetic agent and CB1 allosteric modulator (optionally a positive or negative allosteric modulator as CBD is negative allosteric modulator at CB1 and an agonist at CB2).
- CB1 allosteric modulator optionally a positive or negative allosteric modulator as CBD is negative allosteric modulator at CB1 and an agonist at CB2.
- IVM intravital microscopy
- Figure 2 shows representative intravital microscopy images in rat eye showing adherent leukocytes at 6 hours after intravitreal injection of (A) LPS; and (B) LPS + HU-433 (0.1 mg-kg "1 ) showing that administration of the cannabinoid, HU-433, ameliorates the effects of LPS as demonstrated by fewer adherent leukocytes.
- White arrows in Figure 1A indicate adherent leukocytes.
- Figure 7 shows results of proliferative retinopathy (PVR) evaluation in C57Blk6 mice injected with dispase (0.2 U; 2 ⁇ ) and treated with daily ip injections (7 days) of vehicle (no drug) or cannabinoid ligands: Vehicle, CBD- DMH (10 mg/kg), CBD (10 mg/kg), and CBD (10 mg/kg) + ⁇ -Caryophyllene (pC; 20 mg/kg).
- PVR proliferative retinopathy
- Figure 8 shows representative images of Iba1 immunohistochemical staining of activated microglia from retinal sections from C57Blk6 mice, either sham control or injected with dispase (0.2 U; 2 ⁇ ) to induce PVR and treated with daily ip injections (7 days) of either vehicle (sham control and PVR) or cannabinoid ligands (PVR): top left image: Control + Vehicle; top right image: PVR + Vehicle; lower left image: PVR + CBD-DMH; and lower right image: PVR + CBD + pC.
- Figure 10 shows plots showing that unilateral corneal insult (chemical cauterization) in eyes treated with vehicle (no drug) causes corneal hypersensitivity to capsaicin compared to control uninjured vehicle treated eyes (sham) treated eyes:
- A Number of blinks recorded over 1 minute after single ocular topical application of 1 ⁇ capsaicin.
- Figure 11 is a plot of results showing that ocular topical treatment with 5% CBD-DMH reduces hypersensitivity in a comparable matter to ocular topical NSAID.
- Figure 13 shows plots showing the results of in vitro studies of CBD and CBD-DMH:
- ERK extracellular signal regulated kinase
- Figure 4 shows plots showing that topical treatment with 5% CBD- DMH or liposomal 0.1 % THC reduces hypersensitivity caused by bilateral and unilateral corneal chemical insult (chemical cauterization).
- FIG. 15 shows exemplary images of a histological examination of the corneal edge region after silver nitrate chemical insult.
- FIG. 16 Actions of the non-selective cannabinoid, THC, and CBD in a mouse model of hyperalgesia and corneal neuropathic pain.
- CBD reduces corneal hyperalgesia.
- C Combination low dose THC and CBD have enhanced analgesic efficacy.
- FIG. 17 Actions of CBD derivatives in a mouse model of hyperalgesia and corneal neuropathic pain.
- A The CB2 agonist, HU308, reduces corneal hyperalgesia.
- HU308 dose-dependently eliminates hypersensitivity in a model of corneal hyperalgesia.
- B The cannabidiol derivative, CBD-DMH, reduces corneal hyperalgesia.
- the disclosure relates to the use of a CB2 target agent, a cannabimimetic agent or a combination thereof, optionally a non-psychotropic cannabimimetic agent for treatment of ocular inflammation and/or ocular neuropathic pain in a subject.
- the disclosure provides methods of treatment of ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, comprising administering ocularly to the subject in need thereof a CB2 target agent and/or a cannabimimetic agent, optionally a non-psychotropic cannabimimetic agent.
- the agent is optionally a cannabinoid, such as a non- psychotropic cannabinoid or a synthetic cannabinoid.
- the non-psychotropic phytocannabinoid is a phytocannabinoid such as ⁇ - caryophyllene or cannabidiol [CBD] and the synthetic cannabinoid is HU-433, HU- 308 or CBD-DMH.
- CBD-DMH cannabidiol
- the CB2 target agent is optionally a CB2 agonist agent, a CB2 partial agonist agent or a CB2 positive allosteric modulator.
- the disclosure also provides ocular pharmaceutical compositions containing the CB2 target agents and/or cannabimimetic agents such as non-psychotropic cannabimimetic agents.
- HU-433 refers to a synthetic cannabinoid agonist of the chemical structure:
- HU-308 refers to a synthetic cannabinoid agonist of the chemical structure:
- CBD cannabinoid
- CBD-DMH refers to a synthetic cannabinoid of the chemical structure:
- ⁇ -caryophyllene "fie” or "Beta-C” as used herein refer to a non-psychotropic phytocannabinoid of the chemical structure:
- subject includes all members of the animal kingdom including mammals, and suitably refers to humans.
- the present disclosure includes a composition comprising a CB2 target agent and/or a cannabimimetic agent such as a non-psychotropic cannabimimetic agent.
- a composition comprising a CB2 target agent and/or a cannabimimetic agent such as a non-psychotropic cannabimimetic agent.
- Such agents are suitably formulated into ocular pharmaceutical compositions for ocular administration to subjects in a biologically compatible form suitable for ocular administration to an eye.
- solubility profile, partition coefficient, pH rate profile, pK a , stability in pharmaceutical solvents, drug-excipient interaction and effect of moisture, temperature, light and oxygen on an agent such as Beta-C, CBD, CBD- DMH or other modified CBDs are determined.
- all excipients used in the formulation are "Generally Regarded as Safe” (GRAS) and are approved by Food and Drug Administration (FDA) and Health Canada for ocular delivery.
- GRAS Generally Regarded as Safe
- FDA Food and Drug Administration
- Biopharmaceutical characterization, analytical methods development, optimization and validation are also determined.
- the present disclosure includes an ocular pharmaceutical composition
- a CB2 target agent such as a non-psychotropic cannabimimetic agent
- a cannabimimetic agent such as a non-psychotropic cannabimimetic agent
- compositions of the disclosure can be made by a person skilled in the art.
- CBD and ⁇ -caryophyllene are useful as agents to treat pain and inflammation; they lack psychoactivity, and have a broad safety margin.
- CBD derivative CBD dimethyl heptyl (CBD-DMH), a CBD analogue (also sometimes referred to herein as an example of a "modified CBD”).
- CBD-DMH CBD dimethyl heptyl
- CBD analogue also sometimes referred to herein as an example of a "modified CBD”
- the synthetic cannabinoid HU-308 has shown useful anti-inflammatory action in pre-clinical models of uveitis and proliferative vitreoretinopathy and in experimental endotoxemia, where it decreases intestinal leukocyte adherence, improves intestinal capillary perfusion, reduces release of proinflammatory cytokines and reduces soluble adhesion molecule levels.
- HU-433 is more potent than HU-308 in reducing ocular inflammation in experimental uveitis as well as mitigating inflammation in experimental models of sepsis. Models of neuropathic pain and painful inflammatory conditions of the eye are tested to show useful anti-pain and anti-inflammatory activity of HU-433.
- CBD-DMH is a CB2 positive allosteric modulator which is one example of a CB2 target agent as that term is used herein.
- CBD-DMH is also an example of a cannabimimetic agent as that term is used herein.
- the active agent in the ocular pharmaceutical composition is a CB2 target agent.
- CB2 target agent refers to an agent that binds, activates and/or increases the activation of the CB2 receptor.
- the CB2 target agent is a CB2 agonist agent, a CB2 partial agonist agent, a CB2 positive allosteric modulator or a combination thereof.
- CB2 refers to the CB2 receptor.
- the CB2 agonist agent can be HU-433, HU-308 or ⁇ - caryophyllene.
- the CB2 partial agonist agent can be CBD.
- the CB2 positive allosteric modulator can be CBD-DMH.
- the CB2 target agent or the cannabimimetic agent is a cannabinoid.
- the cannabinoid is a non-psychotropic cannabinoid.
- the non-psychotropic cannabinoid can be a phytocannabinoid, a synthetic cannabinoid or a combination thereof.
- the phytocannabinoid is ⁇ -caryophyllene, cannabidiol or a combination thereof.
- the phytocannabinoid can be ⁇ -caryophyllene.
- the phytocannabinoid can be cannabidiol.
- the phytocannabinoid can be a combination of ⁇ -caryophyllene and cannabidiol.
- the synthetic cannabinoid is HU-433, HU-308, a modified CBD (such as CBD-DMH) or combinations thereof.
- the synthetic cannabinoid can be HU-433.
- the synthetic cannabinoid can be HU-308.
- the synthetic cannabinoid can be a modified CBD such as CBD-DMH or another synthetic cannabinoid that is a modified CBD with comparable activity to CBD- DMH.
- the modified CBD is CBD-DMH.
- the synthetic cannabinoid is a combination of HU-433, HU-308 and/or a modified CBD, optionally CBD-DMH.
- the ocular pharmaceutical composition comprises CBD-DMH.
- the composition comprises at least one further CB2 target agent (e.g. HU 433, HU 308, ⁇ -caryophyllene, CBD or combinations thereof).
- the composition further comprises at least one further cannabimimetic agent (e.g. a non-selective cannabinoid receptor agonist such as A 8 -THC or a prodrug thereof, A 9 -THC or a prodrug thereof, CP 55,940, WIN 55,212-2 or combinations thereof).
- the CB2 target agent and the cannabimimetic agent can also be varied as discussed herein for the embodiments of the methods and uses of the present disclosure.
- a carrier suitable for ocular administration to an eye can be made by a person skilled in the art.
- phytocannabinoids including THC and CBD
- THC and CBD are typically poorly water-soluble, amorphous, highly viscous, and unstable in acidic solutions and when exposed to heat, air and light (Thumma, Majumdar et al. 2008).
- Beta-C and CBD-DMH also share most of these characteristics.
- THC and CBD as well as other cannabinoids have been formulated for systemic administration, but with poor oral bioavailability.
- the inventors provide herein formulations for compounds such as Beta-C, CBD, CBD-DMH and HU-433 that can, for example act locally with minimal or no systemic effect.
- the ocular pharmaceutical compositions of the present disclosure may be suitable for ocular topical, periocular or intravitreal administration to an eye.
- Biopharmaceutical characterization of these ocular drug delivery systems shows the extent of, e.g. Beta-C, CBD, CBD-DMH and HU-433 absorption following application.
- Plasma samples are collected and analyzed using the validated LC/MS assay methods to determine the ocular pharmacokinetics and distribution in multiple species (including rabbits and pigs).
- in vitro ocular permeability www.absorption.com/ocular
- the potential ocular irritation of the chemicals and excipient used are determined using the Draize rabbit eye test (Draize, Woodard et al. 1944); the standard method for evaluating the ocular irritation/corrosion potential of a substance for regulatory purposes.
- the eye presents a unique opportunity for localized direct drug delivery including corneal and transscleral delivery (periocular) of phytocannabinoid-based drugs, such as CBD, modified CBDs (e.g. CBD-DMH) and combinations thereof (e.g. CBD + Beta-C).
- phytocannabinoid-based drugs such as CBD, modified CBDs (e.g. CBD-DMH) and combinations thereof (e.g. CBD + Beta-C).
- drugs can be applied in various vehicles (emulsions, gels, liquid drops, etc.) to the cornea as ocular formulations or introduced via the periocular route from a conjunctival drug or posterior juxtascleral depot to reach anterior segment tissue structures and aqueous humor, and posterior structures (retina, optic nerve, retinal pigment epithelium, choroid and vitreous), respectively (Conway, 2008).
- vehicles emulsions, gels, liquid drops, etc.
- posterior structures retina, optic nerve, retinal pigment epithelium, choroid and vitreous
- non-psychotropic phytocannabinoid therapies suitable for ocular surface contact and periocular (transscleral) application in inflammatory ocular disease provide, for example a useful immunomodulatory therapy with fewer side effects than currently utilized immunosuppressive agents.
- Liposomal formulations are established, safe and efficacious drug carriers for the delivery of poorly soluble lipophilic drugs (Agarwal et al., 2014). For example, they have been used in the formulation of drugs for controlled extended delivery with resultant increases in clinical efficacy in comparison to drug alone. For example, liposomes have been used to deliver a phytocannabinoid (see, for example: Sczcesniak et al., 2006).
- liposome formulations that are useful for delivery of a phytocannabinoid such as A 9 -THC may also be useful for delivery of other compounds such as the cannabinoids and other compounds described herein of the ocular pharmaceutical compositions of the present disclosure.
- the carrier suitable for ocular administration to an eye comprises a liposome.
- lipid components in the liposome formulations are phospholipids and cholesterol; excipients are tocopherol, antioxidants, viscosity- inducing agents and/or preservatives.
- excipients are tocopherol, antioxidants, viscosity- inducing agents and/or preservatives.
- suitable components can be made by a person skilled in the art.
- the phospholipids can be phosphatidylcholines, lysophosphatidylcholines, phosphatidylserines, phosphatidylethanolamines, phosphatidyl-glycerols, phosphatidylinositols or combinations thereof.
- the phospholipid comprises, consists essentially of or consists of dipalmitoylphosphatidylcholine.
- the phospholipids are provided in admixtures with modifying agents selected from the group consisting of cholesterol, stearyl amines, stearic acid, and tocopherols.
- the phospholipid and cholesterol are present in a molar ratio of from 20:1 to 1 :1. In another embodiment, the phospholipid and cholesterol are present in a molar ratio of from 10:1 to 5:4. In a further embodiment, the phospholipid and cholesterol are present in a molar ratio of from 9:1 to 6:4. Optionally, the phospholipid and cholesterol are present in a molar ratio of 9:1 or 7:3 or 6:4. For example, the phospholipid and cholesterol are present in a molar ratio of 9:1 . For example, the phospholipid and cholesterol are present in a molar ratio of 7:3. For example, the phospholipid and cholesterol are present in a molar ratio of 6:4.
- the ocular pharmaceutical composition contains the CB2 target agent and/or the cannabimimetic agent in an amount of from 0.01 % to 10% by weight, based on the weight of the total composition.
- Using a combined delivery platform with cyclodextrin complexation and liposomal incorporation can avoid the use of organic solvents to solubilize hydrophobic compounds and enables entrapment of the lipophilic phytocannabinoid complex into the aqueous core of liposomes.
- This approach therefore may not only increase drug solubility and stability but may also bypass the accelerated drug release that can occur following the more usual incorporation of hydrophobic drug into the liposomal lipid component (Maestrelli et al., 2010; 2005).
- the ocular pharmaceutical compositions of the present disclosure for example those comprising CBD, modified CBD (e.g.
- CBD-DMH and CBD or CBD-DMH combinations may also be delivered using drug-in cyclodextrin liposomal formulations.
- a combined formulation approach of cyclodextrin complexation and entrapment in liposomes may be used to deliver ocular formulations of CBD or CBD-DMH and CBD or CBD-DMH and combinations with cannnabimetics.
- use of the "double-loaded technique" can be exploited to load drug-cyclodextrin into the aqueous core of liposomes and drug alone into the lipid phase of liposomes providing, for example, a fast onset and an extended duration of action (Maestrelli et al., 2010).
- the carrier suitable for ocular administration to an eye comprises a cyclodextrin liposome.
- an oil-in-water emulsion was used to deliver phytocannabinoids and cannabinoids to the eye.
- Such emulsions comprised soya bean oil in either a viscous (>20% oil) or less viscous ( ⁇ 20% oil) formulation.
- a block co-polymer surfactant (PluronicTM 668) was also used in some of the tested formulations.
- the carrier suitable for ocular administration to an eye comprises an oil-in-water emulsion formulation.
- the oily phase of the oil-in-water emulsion formulation comprises an oil, which may be a vegetable oil such as but not limited to soya bean oil.
- the oil comprises, consists essentially of or consists of soya bean oil.
- the oil comprises one or more medium chain triglyceride (MCT) oils (i.e. a triglyceride oil in which the carbohydrate chain has 8-12 carbons) or combinations of an MCT oil and a vegetable oil.
- MCT oils are available commercially.
- MCT oils examples include TCR (trade name of Societe Industrielle des Oleagineaux, France for a mixture of triglycerides wherein about 95% of the fatty acid chains have 8 or 10 carbons) and MIGLYOLTM 812 (a mixed triester of glycerine and of caprylic and capric acids).
- the oil-in-water emulsion formulations of the present disclosure also comprise an emulsifier.
- Suitable emulsifiers include a phospholipid or a mixture of phospholipids.
- purified egg yolk phospholipids, soybean oil phospholipids or other purified phospholipid mixtures may be useful emulsifiers.
- the oil-in-water emulsion formulations of the present disclosure include a surfactant.
- the surfactant can be a non-ionic alkylene oxide condensate of an organic compound which contains one or more hydroxyl groups.
- Suitable surfactants include, but are not limited to TYLOXAPOLTM, compounds sold under the trade name TWEENTM, and PLURONICTM F-68 (a copolymer of polyoxyethylene and polyoxypropylene).
- TWEENTM trade name of a copolymer of polyoxyethylene and polyoxypropylene.
- PLURONICTM F-68 a copolymer of polyoxyethylene and polyoxypropylene.
- the TYLOXAPOL and TWEEN surfactants are FDA approved for human use.
- the aqueous component of the oil-and-water emulsion formulations of the present disclosure is the continuous phase of the emulsion and may be water, saline or any other suitable aqueous solution which can, for example, yield an isotonic and pH controlled preparation.
- the oil-in-water emulsion formulations of the present disclosure for example used in the ocular pharmaceutical compositions of cannabinoids may comprise from 0.5 to 50% oil, from 0.1 to 10% emulsifier and from 0.05 to 5% surfactant.
- the concentration of the non-aqueous phase should generally not exceed 25%. For more viscous formulations this concentration is increased.
- the agent is optionally present in an amount of 0.05 to 5% by weight of the composition.
- Both corneal and transscleral drug delivery in the eye can, for example, avoid the complications associated with invasive intraocular injections and also take advantage of the relatively high permeability of sclera structures to macromolecules (Hughes et al., 2005; Lobo et al., 2012; Ranta & Urtti, 2006). Additionally, use of viscous solutions or nanoparticles and liposomes has been effectively utilized via both corneal and transscleral routes to obtain sustain drug delivery in ocular structures for up to 2 weeks (Conway, 2008; Souto et al., 2010; Natarajan et al., 2012).
- the inventors show that synergistic combination therapies with other cannabis constituents, for example those that act at CB2 receptors can produce anti-inflammatory and analgesic effects.
- Another embodiment of the invention relates to formulations containing HU-433, a potent CB2 agonist, CBD-DMH a potent CBD derivative and/or other modified CBDs.
- Products designed to treat neuropathic pain and uveitis are usefully provided as with the other embodiments discussed herein.
- cannabinoid agents such as HU-433 and CBD-DMH can provide useful CB2 action, for example, for treatment of ocular neuropathic pain and uveitis.
- the disclosure provides an ocular formulation of cannabinoids (e.g. Beta-caryophyllene [also referred to herein as Beta-C or pc], Cannabidiol [CBD], cannabidiol-dimethylheptyl [CBD-DMH] or other modified CBDs, HU-308 and HU-433, individually or in combinations of two or more of the foregoing) for treatment of ocular diseases.
- cannabinoids e.g. Beta-caryophyllene [also referred to herein as Beta-C or pc]
- CBD cannabidiol
- CBD-DMH cannabidiol-dimethylheptyl
- the disclosure also includes an ocular pharmaceutical composition
- a ocular pharmaceutical composition comprising a CB2 target agent, a cannabimimetic agent (such as a non- psychotropic cannabimimetic agent) or a combination thereof and a carrier suitable for ocular administration to an eye of the present disclosure for use for the ocular treatment of ocular inflammation and/or ocular neuropathic pain in a subject.
- a cannabimimetic agent such as a non- psychotropic cannabimimetic agent
- a carrier suitable for ocular administration to an eye of the present disclosure for use for the ocular treatment of ocular inflammation and/or ocular neuropathic pain in a subject.
- the disclosure provides a phytocannabinoid formulation (e.g. CBD derivatives, or a combination of CBD or ⁇ -caryophyllene or CBD-DMH + a non-selective cannabinoid or CB2R agonist) for local administration to the cornea and/or other ocular depots for treatment of eye diseases causing inflammation in a subject, such as intraocular (uveitis) or extraocular (corneal neuropathic hyperalgesia) in inflammation and pain.
- a phytocannabinoid formulation e.g. CBD derivatives, or a combination of CBD or ⁇ -caryophyllene or CBD-DMH + a non-selective cannabinoid or CB2R agonist
- Combination ocular therapies of CBD or CBD derivatives with agents such as ⁇ -caryophyllene, a CB 2 agonist can enhance the efficacy of CBD in the treatment of inflammatory and/or neuropathic eye disease.
- CB2 receptors In the eye, activation of CB2 receptors specifically, as well as CB1 receptors alleviates ocular inflammation.
- the anti-inflammatory actions of CB2 agonist drugs are consistent with upregulation of CB2 receptors during inflammation.
- Cannabidiol (CBD) and cannabidiol derivatives (CBD-DMH, HU308, HU433) are useful for treatment anti-inflammatory actions in the eye, such as anterior uveitis and pan-uveitis and this action involves, in part, CB2 receptors.
- CBD and the cannabidiol derivative, CBD-DMH which the inventors have shown acts as a positive allosteric modulator at CB2 and a weak agonist at CB1 , reduce development of corneal hyperalgesia and allodynia after corneal chemical burn and trauma.
- the non-selective cannabinoid, A 8 THC (THC) reduces hyperalgesia and that combinations of either CBD or CBD-DMH potentiate the actions of low doses of either THC or the CB2 agonist, HU308.
- cannabimimetics optionally cannabimimetics that target CB2 such as phytocannabinoids that target CB2 (for example, CBD which is a CB2 partial agonist) and synthetic cannabinoids that target CB2 (for example, modified CBDs such as CBD-DMH which is a CB2 positive allosteric modulator) may, for example be effective in reducing markers of inflammation.
- such compounds may reduce pro-inflammatory cytokine signaling, oxidative stress and/or inhibit activated immune cells (microglia); all of which are also features of tissue damage seen in experimental models of acute and chronic ocular inflammation, and which are exacerbated in animals lacking CB2 receptors.
- CBD phytocannabinoid
- the invention provides the first disclosure of ⁇ -caryophyllene for use in the eye in humans, ⁇ -caryophyllene is useful, for example, for combination therapy with CBD for ocular inflammatory and neuropathic disease.
- An additional advantage can, for example be that the physicochemical properties of ⁇ -caryophyllene are similar to CBD such that both of these compounds are readily delivered together using the proposed drug, for example in cyclodextrin or liposome preparations.
- the inventors demonstrate herein the anti-inflammatory and analgesic properties of novel ocular formulations such as those comprising CBD and other cannabinoids in experimental models of ocular inflammatory disease.
- novel ocular formulations such as those comprising CBD and other cannabinoids in experimental models of ocular inflammatory disease.
- the disclosure thus provides, for example, methods of treatment of inflammation by administering cannabinoids to the eye of a subject.
- CBD formulations e.g. CBD, combination CBD + ⁇ - caryophyllene
- CBD-DMH cannabinoids
- HU-308, HU-433 cannabinoids
- the present disclosure includes a method of treating ocular inflammation and/or ocular neuropathic pain in a subject in need thereof, comprising administering ocularly to the subject in need thereof a CB2 target agent, a cannabimimetic agent or a combination thereof.
- the method is a method of treating ocular inflammation.
- the method is a method of treating ocular neuropathic pain.
- the method is a method of treating ocular inflammation and ocular neuropathic pain.
- the present disclosure also includes an ocular use of a CB2 target agent, a cannabimimetic agent or a combination thereof for treatment of ocular inflammation and/or ocular neuropathic pain in a subject in need thereof.
- the use is for treatment of ocular inflammation.
- the use is for treatment of ocular neuropathic pain.
- the use is for treatment of ocular inflammation and ocular neuropathic pain.
- the present disclosure further includes a use of a CB2 target agent, a cannabimimetic agent or a combination thereof for preparation of an ocular medicament for treatment of ocular inflammation and/or ocular neuropathic pain in a subject in need thereof.
- the use is for preparation of a medicament for treatment of ocular inflammation.
- the use is for preparation of a medicament for treatment of ocular neuropathic pain.
- the use is for preparation of a medicament for treatment of ocular inflammation and ocular neuropathic pain.
- the CB2 target agent comprises, consists essentially of or consists of a CB2 agonist agent, a CB2 partial agonist agent, a CB2 positive allosteric modulator or a combination thereof.
- the CB2 target agent is a CB2 positive allosteric modulator.
- CBD-DMH is a positive allosteric modulator (PAM) of G protein mediated signaling at CB 2 receptors and testing will show that CBD-DMH is a partial agonist/positive allosteric modulator (ago-PAM) at CB-i , benefit would be expected in terms of reducing both pain and inflammation, preventing corneal hypersensitivity (neuropathic pain) and enhancing wound healing.
- PAM positive allosteric modulator
- ago-PAM partial agonist/positive allosteric modulator
- CBD-DMH can act as an allosteric modulator at CB 2 receptors and testing will show that CBD-DMH can act as an allosteric modulator at CB-i receptors
- CBD- DMH can also promote the actions of orthosteric ligands that can act at either or both of these receptors including: non-selective cannabinoids such as THC, WIN 55,212-2 and CP 55,940, and selective CB 2 agonists including HU 308 and HU 433.
- non-selective cannabinoids such as THC, WIN 55,212-2 and CP 55,940
- selective CB 2 agonists including HU 308 and HU 433.
- the CB2 target agent is CBD-DMH.
- CB2 selective agents can reduce inflammation.
- anterior uveitis i.e. anterior uveitis
- extraocular surface inflammation such as episcleritis and scleritis
- CB2 receptor activation is more useful than CB1 receptor activation for reducing inflammation and immune cell activation and recruitment.
- use of CB2 target agent alone is useful to prevent inflammation and relieve symptoms.
- a CB2 positive allosteric modulator such as CBD-DMH in combination with a CB2 target agent may, for example, result in a lower dose needed for the CB2 target agent. This may, for example, lead to less chance of tolerance, for example, with long-term treatment.
- the method comprises administering a CB2 positive allosteric modulator (such as CBD-DMH) in combination with at least one further CB2 target agent.
- a CB2 positive allosteric modulator such as CBD-DMH
- the at least one further CB2 target agent is HU 433, HU 308, ⁇ -caryophyllene, CBD or combinations thereof.
- the at least one further CB2 target agent is HU 433 or HU 308. It is an embodiment that the at least one further CB2 target agent is HU 433. In another embodiment, the at least one further CB2 target agent is HU 308.
- the dosage of the CB2 positive allosteric modulator e.g.
- CBD-DMH) and/or the at least one further CB2 target agent is less than the dosage of such agents when used alone.
- the method comprises administering the CBD-DMH in combination with at least one further cannabimimetic agent.
- the dosage of the CBD-DMH and/or the at least one further cannabimimetic agent is less than the dosage of such agents when used alone.
- CB1 and CB2 receptors may be used for optimal relief of pain and inflammation after injury allowing for enhanced wound healing (less scarring of corneal surface) and prevention of corneal hyperalgesia (neuropathic pain). Therefore, a non-selective cannabinoid and/or a CB1/CB2 allosteric modulator (e.g. CBD-DMH) could be used rather than a CB2 agonist.
- CBD-DMH a non-selective cannabinoid and/or a CB1/CB2 allosteric modulator
- Non-selective cannabinoids such as but not limited to THC, CP 55,940 and WIN 55,212-2 would be expected to be efficacious in reducing ocular inflammation and pain as they can activate both cannabinoid receptors.
- long term use of these orthosteric agents at therapeutic doses can, for example, produce tolerance and unwanted behavioral and other possible off-target side- effects (Pertwee, 2009, 2012, Davis, 2014).
- An allosteric modulator generally has no actions at the receptor in the absence of an orthosteric ligand.
- the allosteric modulator when the allosteric modulator is bound to the receptor it can enhance (positive allosteric modulator; PAM) or decrease (negative allosteric modulator) the actions of the orthosteric ligand.
- benefits may include: improved therapeutic index with use of lower doses of the orthosteric ligand. This would produce less receptor desensitization (tolerance) and less side-effects.
- endogenous (“constitutive") receptor activity as is expected with upregulation of cannabinoid receptors after injury, an agent with PAM activity at cannabinoid receptors would produce localized enhancement of the beneficial actions of endocannabinoid signaling at the tissue site of injury.
- CBD-DMH is a PAM at CB2 and testing will show that CBD-DMH is an ago-PAM at CB1 (produces PAM actions at lower doses and weak CB1 agonist actions at higher). Therefore it can enhance non-selective orthosteric ligands that act at these receptors.
- CB2 receptors while not wishing to be limited by theory, also CB1 ) are significantly upregulated in ocular inflammation (Toguri et al., 2014), CBD-DMH can therefore promote the actions of endocannabinoids acting at both cannabinoid receptors.
- a mixed CB1/CB2 target agent may, for example, provide for additional benefits including analgesia and enhanced wound healing (CB1 ; CB1 receptors are highly expressed in corneal epithelial cells; Straiker et al., 1999; Yang, 2013) and reduction in corneal inflammation and neuropathic pain (CB1 and CB2).
- the method comprises administering the CBD-DMH in combination with at least one further cannabimimetic agent that is a non-selective cannabinoid receptor agonist.
- the non-selective cannabinoid receptor agonist is selected from A 8 -THC or a prodrug thereof, A 9 -THC or a prodrug thereof, CP 55,940, WIN 55,212-2 and combinations thereof.
- the non-selective cannabinoid receptor agonist is A 8 -THC or a prodrug thereof.
- the non-selective cannabinoid receptor agonist is A 9 -THC.
- the nonselective cannabinoid receptor agonist is CP 55,940. In another embodiment, the non-selective cannabinoid receptor agonist is WIN 55,212-2.
- the selection of a suitable non-selective cannabinoid receptor agonist can be made by the person skilled in the art.
- the dosage of the CBD-DMH and/or the at least one further cannabimimetic agent that is a non-selective cannabinoid receptor agonist is less than the dosage of such agents when used alone.
- Both A 9 -THC and A 8 -THC can activate CB1 and CB2 receptors.
- the actions of THC are described as partial agonist in most tissues depending on the co-existing concentrations of endocannabinoids and/or other orthosteric full agonists.
- a partial agonist may act on its own as an agonist but, in the presence of a full agonist, it may act to decrease the efficacy of the full agonist hence in this latter situation it can act as an antagonist.
- the CB2 target agent and the cannabimimetic agent can also be varied as discussed herein for the embodiments of the compositions of the present disclosure.
- the method is a method of treating ocular inflammation, optionally ocular inflammation which is not associated with ocular neuropathic pain. In another embodiment, the method is a method of treating ocular inflammation caused by a non-infectious condition.
- the method is a method of treating inflammation which does not present with pain, for example a condition selected from posterior uveitis, retinitis, uveoretinitis and proliferative vitreoretinopathy.
- the ocular inflammation further presents with non-neuropathic pain and the treatment reduces the pain.
- the condition is selected from anterior uveitis, episcleritis and scleritis.
- Iritis can be caused by infectious and noninfectious conditions.
- the condition is a non-infectious condition.
- Uveitis can also be idiopathic.
- blunt trauma to the eye can cause traumatic inflammation of the iris.
- Non-traumatic ulceris is frequently associated with certain diseases, such as ankylosing spondylitis, Reiter syndrome, sarcoidosis, inflammatory bowel disease, and psoriasis.
- Corneal inflammation can lead to corneal neuropathic pain (hyperalgesia). Corneal neuropathic pain can result from an initial trauma and inflammatory response, or as a result of persistent chronic inflammation/irritation (i.e. dry eye condition). Most frequently described ocular neuropathic pain conditions are associated with corneal injury and inflammation; inflammation is a significant contributor to neuropathic pain syndromes (Guindon and Hohmann, 2008). Cornea! neuropathic pain typically presents with allodynia (abnormal response to normal stimuli) and hyperalgesia (exaggerated response to mild noxious stimuli). Corneal pain conditions are very common as the cornea is highly innervated with sensory nerves.
- the method is a method for treating ocular inflammation and neuropathic pain caused by a non-infectious condition.
- the ocular neuropathic pain is corneal neuropathic pain.
- the ocular neuropathic pain arises from dry eye, trauma (e.g. refractive surgery), a corneal abrasion, a corneal burn, a corneal transplant, an autoimmune disease or an allergen. It will be appreciated by a person skilled in the art that such conditions typically present with both neuropathic pain and inflammation and that treatment with methods of the present application can reduce the ocular inflammation and hence the ocular neuropathic pain.
- corneal neuropathic pain can also arise from infection (e.g. viral or bacterial).
- the ocular inflammation is caused by the subject having an eye disease.
- the eye disease causes intraocular inflammation.
- the eye disease is uveitis, uveoretinitis or proliferative vitreoretinopathy.
- the eye disease causes extraocular inflammation.
- the eye disease is corneal inflammation or neuropathology, episcleritis or scleritis.
- the eye disease causes pain and loss of vision, and the agent reduces the pain and/or reduces the loss of vision.
- the dosage of the CB2 target agent and/or the cannabimimetic agent can vary depending on many factors such as the pharmacodynamic properties of these compounds, the mode of administration, the age, health and weight of the subject, the nature and extent of the ocular inflammation or ocular neuropathic pain, the frequency of the treatment, the type of concurrent treatment, if any, the clearance rate of the compound in the subject to be treated and whether the CB2 target agent and/or the cannabimimetic agent is administered alone or in combination with, for e.g., a CB2 positive allosteric modulator such as CBD-DMH.
- a CB2 positive allosteric modulator such as CBD-DMH.
- the CB2 target agent and/or the cannabimimetic agent such as a phytocannabinoid (e.g. CBD, CBD + ⁇ -caryophyllene) and synthetic cannabinoid-containing ocular formulations (e.g. HU-433, HU-308, CBD-DMH) can be delivered via the cornea and transscleral routes (periocular) at various doses, optionally 0.1 -10% w/v.
- a phytocannabinoid e.g. CBD, CBD + ⁇ -caryophyllene
- synthetic cannabinoid-containing ocular formulations e.g. HU-433, HU-308, CBD-DMH
- Dosing regimens include single dose treatments as well as multiple dosing.
- the CB2 target agent and/or the cannabimimetic agent may be administered initially in a suitable dosage that may be adjusted as required, depending on the clinical response.
- the agent is administered topically to the eye; i.e. the agent is for ocular topical use.
- the agent is administered intravitreally to the eye; i.e. the agent is for intravitreal use.
- the agent is administered periocularly to the eye; i.e. the agent is for periocular use.
- Example 1 Effects of the CB2 Receptor Agonist, HU-433 on Endotoxin- Induced Uveitis
- Tissue histology and immunohistochemistry Ocular inflammation is accompanied by tissue edema, migration of immune cells to the sites of injury and pathology. Histology allows the tissue structure to be accessed for edema and structural dissolution, along with evidence of plasma extravasation (indicative of pathological changes in microvascular structure).
- Use of antibodies to proteins expressed by immune cells including neutrophils, macrophages and microglia allows identification of immune cell types recruited to sites of tissue damage in the anterior and posterior ocular tissues.
- Tissue damage or injury results in alterations in capillary blood flow and microvascular structure, as well as adhesion and transmigration of immune cells (leukocytes) from the blood vessel to accumulate at the site of tissue injury (inflammation). This is a necessary host response to resolve injury, however escalation of the inflammatory response or persistent inflammatory responses can lead to tissue damage (Ley, Laudanna et al. 2007).
- Quantification of leukocytes adhering to the cells lining the lumen of blood vessels is carried out dynamically in the iridial microvasculature using intravital microscopy to directly visualize in real-time, or histologically in the post-mortem retina, leukocyte adhesion and diapedesis.
- the endotoxin-induced uveitis (EIU) model is a widely used animal model of human bacterially-derived uveitis, involving inflammation of the uveal tract.
- the uveal tract comprises the middle layer of the eye, including the iris, ciliary body and uvea.
- EIU was induced in male Lewis rats by intravitreal injection of 100 ng of lipopolysaccharide (LPS, Escherichia coli) in saline.
- LPS lipopolysaccharide
- Treatments of the cannabinoid 2 receptor (CB2R) agonist, HU-433 were administered, in the presence and absence of the selective antagonist, AM630.
- Cannabinoid treatments involved intravenous (i.v.) HU-433 (0.001 -1 mg/kg), AM630 (2.5 mg/kg i.v.) and AM630 + HU-433, administered 15 minutes after intravitreal injection of LPS.
- Intravital microscopy (IVM) was used to observe leukocyte- endothelial adhesion each hour after induction of EIU for a duration of 6 hours.
- FIG. 1 Data in Figure 1 was collected from experiments using an animal model of ocular inflammation called endotoxin-induced uveitis. This model has been shown to cause inflammation within the eye. The level of inflammation is quantified by counting the number of adherent leukocytes in the iris microcirculation. Leukocytes must adhere to the microvasculature for more than 30 s (measured as adherent leukocytes per mm 2 ). Imaging was conducted in a minimum of 4 quadrants within the eye, 4 vessels each quadrant, 6 hours after inflammation was induced.
- Figure 1A is a representative image of the iris microcirculation after an injection of saline into the eye (control); leukocytes are the white dots within the black vasculature.
- Figure 1 B is a representative image of the iris microcirculation after injection of lipopolysaccharide (LPS) into the eye.
- LPS is an inflammatory agent derived from gram-negative bacteria. LPS causes a significant increase in the number of leukocytes adhering to the vasculature compared to the saline injection.
- HU-433 at doses of 0.01 and 0.1 mg/kg significantly (p ⁇ 0.01 ) reduced leukocyte-endothelial adhesion (inflammation) 6 hours after induction of EIU. This decrease in leukocyte adhesion was abolished when animals were treated with the CB2R antagonist AM630 prior to treatment with HU-308 in EIU. Use of the CB2R antagonist alone caused a significant increase in the number of adherent leukocytes to the microvasculature (p ⁇ 0.01 ).
- Figure 2A is a representative image of inflammation within the iris which can be compared to after treatment with HU-433 ( Figure 2B).
- Figure 3 is the dose response curve of HU-433 used to treat ocular inflammation in the present study. It was demonstrated (Figure 3) that HU-433 (0.1 mg/kg) was able to significantly (p ⁇ 0.05) reduce the number of adherent leukocytes in the iris microcirculation. This data is also depicted as the average decrease of adherent leukocytes compared to LPS alone with different doses of HU-433 ( Figure 4).
- CB2R activation by using the cannabinoid, HU-433 reduces leukocyte recruitment to the iris and decreases local release of inflammatory mediators during acute EIU.
- Drugs targeting the CB2R are useful as therapeutics for uveitis and decreasing acute ocular inflammation.
- Example 2 Effects of administration of the synthetic cannabinoid, CBD- DMH on LPS Induced Uveitis
- C IVM at 5 hours after induction of EIU and i.v. administration of cannabinoid (1 time, 0.2 ml_ 10 mg/kg CBD-DMH right after intravitreal injection).
- Intravitreal injection of LPS to induce uveitis The strain of animals chosen for these experiments was based on preliminary testing conducted and published literature (see, for example: Toguri et al., 2014). The strain of mice chosen was BALB/c and Lewis rats were used. Animals were anesthetised prior to induction of uveitis. Mice were anesthetized with 5% isoflurane in 100% oxygen. Rats were anesthetized with 65 mg-kg "1 of sodium pentobarbital. Depth of anesthesia was monitored via toe pinch test.
- mice received a total of 250 ng of LPS (E. coli 026:B6; Sigma-Aldrich, Oakville, ON, Canada) in 2 ⁇ of sterile 0.9% saline.
- Rats received a total of 100 ng of LPS in 5 ⁇ of sterile 0.9% saline.
- Intravitreal injections were made under microscopic control with a Hamilton syringe (Hamilton Company, Reno, Nevada, USA), with a 30 G 1/6 needle.
- the tip of the needle was directed towards the posterior pole and only the bevelled tip (2-3 mm) entered the vitreal cavity.
- the needle was held in place after injection for 5 seconds to avoid leakage of the LPS from the site of injection (sclerostomy). Sclerostomy was closed by tissue adhesive to prevent any leakage. Animals with bleeding or swelling post injection were excluded from the study.
- IVM intravital microscopy
- IVM analysis Several videos of each quadrant were recorded for 30 seconds. Leukocyte adhesion was the parameter analyzed. Adherent leukocytes was defined as the number of leukocytes during the 30 s observation period that did not detach from the cylindrical endothelial surface. The number of adherent leukocytes within each vessel segment was calculated by measuring the diameter and length of vessel segment studied, assuming a cylindrical geometry of blood vessel. Adherent leukocytes were expressed as number of cells per mm 2 of endothelial surface.
- IVM Data analysis Results were analyzed using the software Prism 5 (GraphPad Software, La Jolla, CA, USA). All data are expressed as means ⁇ standard error mean (SEM). Groups were tested for significance using one-way analysis of variance (ANOVA) with a Dunnett's post hoc test, comparing all experimental groups to the vehicle treated group. Significance was considered at p ⁇ 0.05.
- Figure 5 shows representative images of the microvasculature and adherent leukocytes: (A) saline injection; (B) LPS injection; and (C) a decrease in number of adherent leukocytes with CBD-DMH. Inflammation was quantified by measurement of adherent leukocytes to the endothelium 6 hours after LPS injection (Figure 5D).
- Figure 6 depicts a bar graph of IVM measurements examining the mean number of adherent leukocytes for the groups of Figure 5.
- Example 3 Effects of administration of CBD-DMH, CBD or a combination of CBD+BC on a PVR-dispase model of PVR
- PVR proliferative vitreoretinopathy
- Experimental PVR lesions can be generated using intravitreal injections of the proteolytic enzyme, dispase (3 ⁇ of 0.1 - 0.3 U/ ⁇ dispase). This results in a chronic inflammatory response with the development of retinal tears and folds within 1-3 weeks post-injection (technique modified from Frenzel et al., 1998).
- the Dispase PVR model provides a useful model for chronic posterior ocular inflammation, astrogliosis and fibrosis.
- mice C57Blk/6 male mice (20-25 g; Charles Rivers, QC, Canada) were used for the experiments. The animals were housed on a 12 hrs light/dark cycle, with unrestricted access to food and water. All experiments were conducted in accordance with the standards and procedures of the Canadian Council on Animal Care and the Dalhousie University animal care committee.
- Intravitreal Injections The PVR was induced in C57Blk 6 animals with an intraocular injection of dispase (Sigma), a neutral protease which cleaves basement membrane, into the dorso-lateral quadrant of the left eye. Dispase was diluted to the concentration of 0.2 U/ ⁇ in a sterile Ringer saline solution. Intraocular injections (2 ⁇ ) were made under a microscope with a Hamilton syringe attached to a 30 G needle. Control animals received 2 ⁇ of sterile Ringer saline solution.
- Clinical Scoring The external morphology of the eyes was evaluated by clinical scoring at 7 days following the intraocular injection. The severity of the PVR was determined on a scale of 0-5, with 0 (no disease) to 5 (completely degenerated eye) as detailed in Table 1 .
- Histology The internal anatomy morphology of the eye was visualized by haematoxylin and eosin (H&E) staining. The severity of the disease was scored under the light microscope and was evaluated with the scoring system of 0 (no disease) to 4 (severely damaged ocular tissue) as detailed in Table 2.
- This step was followed by overnight incubation of sections, at 4°C, with the primary antibodies: anti-rabbit Iba1 (Wako Chemicals, CA; 1 : 100), anti-rabbit glial fibrillary acidic protein (GFAP; astrocyte marker) (Chemicon, Temecula, CA 1 :1000). Fluorescent-tagged antibodies CYTM 3 goat anti-rabbit IgG (1 :500, Jackson ImmunoResearch Laboratories) were used for visualization of Iba1 and GFAP. The microglia counts were performed under the fluorescence microscopy.
- Proliferative vitreoretinopathy is a model of ocular inflammation that occurs with both external and internal changes in the eye. This inflammation is caused by intraocular injection of dispase. Several different cannabinoid treatments were tested in this model. Inflammation was quantified by clinical scoring (Figure 7A), histology (Figure 7B) and immunohistochemistry (Figure 7C). Clinical scoring, histology and immunohistochemistry are explained herein under the PVR method.
- CBD-DMH significantly decreased the clinical scores and histological scores received in the model of PVR indicating its ability to reduce ocular inflammation.
- Immunohistochemistry was used to study the activation of immune cells (microglia) in the retina.
- CBD-DMH, CBD alone and CBD + pc were able to decrease the number of activated immune cells (Figure 7C). While not wishing to be limited by theory, this could provide evidence of a potential mechanism to how CBD-DMH, CBD, and CBD + ⁇ decrease inflammation.
- IBa1 + microglia An increase in IBa1 + microglia (MG) is associated with neuroinflammation.
- Iba1 is specific to activated MG (Daisuke et al., 2001 ).
- IBa1 for activated retinal immune cells, microglia
- FIG 8, top left control animals treated with no retinal pathology treated with drug vehicle, there is very sparse labelling for IBa1 positive (IBa1 +) cells.
- IBa1 + IBa1 +
- Iba1 + labeling is substantially reduced in animals with experimental PVR and treated with CBD-DMH ( Figure 8, bottom left) and also (but to a lesser extent) with CBD + beta-C ( Figure 8, bottom right). These results indicate that the synthetic cannabidiol derivative CBD-DMH and CBD + beta-C are able to reduce activated immune cells that contribute to the inflammatory response and pathology in PVR.
- the chemical cauterization model of corneal inflammation and hyperalgesia is an established model to look at corneal sensitization and pain. Chemical cauterization of the murine cornea using topical silver nitrate produces non-specific inflammation followed by chronic behavioral sensitization to subsequent chemical stimuli (modified from Wenk & Honda, 2003).
- the corneal reflex blink test provides a behavioral assessment of corneal sensitization and hyperalgesia (decreased pain threshold).
- the hyperalgesia (defined as increased responsiveness to painful stimuli) is gauged by quantifying the number and frequency of a protective blinking response in the treated eye (stimulus- induced blinking) relative to control non-sensitized eyes (Wenk and Honda 2003).
- Anti-inflammatory agents and agents that act at targets on nociceptive nerves can reduce development of corneal sensitization and hyperalgesic activity (reduced protective blinking response in response to noxious irritant).
- Table 3 provides a summary of models, treatments and doses used in the above-described studies of the disclosure.
- Example 5 Other animal models of intraocular inflammation
- Receptor knock-out models Genetic receptor null models (murine) are available for the following receptor targets: CB 2; Receptor knock-outs (-/-) are used as controls for further validation of drug targets in models of ocular inflammation and neuropathic pain.
- HEK cells were maintained at 37°C, 5% CO 2 in Dulbecco's Modified Eagle's Medium (DMEM) supplemented with 10% Fetal Bovine Serum (FBS) and 10 4 U mL "1 Pen/Strep.
- DMEM Dulbecco's Modified Eagle's Medium
- FBS Fetal Bovine Serum
- Drug stocks were made up in DMSO [CBD, CBD-DMH and CP 55,940] and diluted to final solvent concentrations of 0.1 %.
- CBD and CP 55,940 were purchased from Tocris Bioscience (Bristol, UK).
- CP 55,940 is a full (orthosteric) agonist of CB1 and CB2, which is commonly used in studies of the activity of compounds at these receptors. This agonist binds to CB1 and CB2 to maximally activate the receptor and G protein coupled signaling pathways with resultant alterations in downstream signaling molecules and functional changes.
- ln-cellTM data were collected using the Odyssey Imaging system and software (version 3.0; Li-Cor, Lincoln, NE, USA).
- CBD-DMH is a positive allosteric modulator (Christopoulos and Kenakin, 2002) of CB 2 -dependent G protein signalling and enhances the potency and efficacy of the orthosteric CB2 agonist, CP55940, to activate CB2 coupled G protein signalling pathways (summarized in Tables 4-6).
- CBD-DMH does not activate CB2 in the absence of the orthosteric agonist, CP55940.
- CBD is a partial agonist of CB 2 -dependent G protein signalling (summarized in Tables 4-6).
- Example 7 Topical treatment with CBD-DMH or Liposomal 0.1 % THC
- Topical treatment with 5% CBD-DMH or liposomal 0.1 % THC was found to reduce hypersensitivity caused by corneal chemical insult (Figure 14).
- Corneal chemical injury results in inflammation, with recruitment of immune cells (e.g neurotrophils) to the injury site and edema. This can be visualized histologically in paraformaldehyde tissue sections (6-12 pm) using for example, hematoxylin-eosin stain or with fluorescent immunohistochemistry using antibodies that label specific immune cell populations such as neutrophils.
- immune cells e.g neurotrophils
- FIG. 15A shows an exemplary image of the corneal edge region of the untreated left eye removed post-mortem 12 hours after corneal insult by silver nitrate.
- the untreated left eye shows increased immune cell infiltration and corneal edema compared to the right eye cornea treated with 3 doses of topical liposomal 0.1 % THC and 2% CBD-DMH ( Figure 15B).
- Topical cannabinoids were administered at 30, 60 and 120 minutes after corneal insult by silver nitrate application.
- Figure 5C shows an exemplary image of the corneal edge of the untreated left eye stained with LY-6 antibody showing increased staining of neutrophils post-mortem 12 hours after corneal insult following silver nitrate application.
- the untreated left cornea (Figure 15C) has increased immune cell infiltration and corneal edema compared to the right eye cornea ( Figure 15D) treated with 3 doses of topical liposomal 0.1 % THC and 2% CBD-DMH administered at 30, 60 and 120 minutes after corneal insult by silver nitrate.
- Combinations of cannabinoids including the non-psychotropic cannabinoid, CBD-DMH, and the phytocannabinoid, THC, reduced inflammation (decreased edema and reduced neutrophils accumulating at the injury site) after chemical cauterization.
- Combination treatments provided improved therapeutic index, with significant anti-inflammatory actions seen at lower doses, compared to either agent used individually.
- Example 9 Administration of CBD-DMH or a combination of CBD-DMH and a selective CB 2 receptor agonist using a PVR model
- Proliferative vitreo retinopathy is the most common, sight- threatening complication of retinal detachment, severe ocular trauma, or inflammation.
- PVR is characterized by the proliferation and migration of retina pigmented epithelial (RPE) cells and fibroblasts, to form contractile membranes on and beneath the retina, and immune cells activation and their infiltration of ocular tissues.
- RPE retina pigmented epithelial
- the standard treatment of PVR is a vitreous surgery, which itself can lead to severe complications, including loss of vision. There are no currently available effective pharmacological treatments, therefore development of new therapeutics is useful for the treatment of PVR.
- the endocannabinoid system composed of lipid-derived endogenous ligands, enzymes responsible for their synthesis and degradation, and cannabinoid receptor type 1 (CB1 ) and type 2 (CB2), is an emerging target for a number of inflammatory conditions. It has been shown that the modulation of CB2 receptor, found within the peripheral tissues has a significant effect on the inflammatory response. Animals deficient for CB2R develop more severe PVR, as compared to their wild type controls. Elevated microglia counts, retina folds and retinal detachment were evident in animals lacking CB2R. This suggests that targeting CB2R may provide a useful target for treatment of PVR.
- the objective of the study is to evaluate the anti-inflammatory and anti-fibrotic actions of non-psychotropic cannabinoids, including CBD-DMH alone, or in combination with selective CB2R agonists, including HU308, HU433 and CBD.
- PVR is induced in C57Blk mice with an intravitreal injection of dispase (0.2U ⁇ 1 ; Sigma), a neutral protease which cleaves basement membrane into the dorso-lateral quadrant of the left eye. This results in a chronic inflammatory response, as well as the formation of retinal folds and retinal detachment.
- Saline is injected into the dorso-lateral quadrant of the left eye in control mice.
- the external morphology of the eye is evaluated by clinical scoring, on the scale 0-5, with 0 (no disease) to 5 (completely degenerated eye). Then, the animals are sacrificed and eyes enucleated and prepared for histological or immunohistochemical staining.
- the internal tissue histology of the eye is visualized by haematoxylin and eosin (H&E) staining, and scored on the scale 0-4, with 0 (no disease) to 4 (severely damaged ocular tissue) under a light microscope.
- H&E haematoxylin and eosin
- the immunohistochemical staining for microglia (anti-rabbit Iba1 ) and astrocytes (anti-rabbit GFAP) is used to evaluate the degree of the inflammatory response.
- the animals are treated with daily topical applications of CBD-DMH (0.5-5%) alone or in combination with CB2R agonists HU308 (0.1 -1 %), HU433 (0.1-1 %), and CBD (1 -2%).
- the data is analyzed by One-Way ANOVA analysis, followed by Kruskal-Wallis test. p ⁇ 0.05 is considered significant.
- the inventors expect that the topical daily treatment with CBD-DMH alone or in combination with CB2R agonists HU308, HU433 and CBD will decrease the degree of inflammatory response seen in PVR, as indicated by the reduced number of activated microglia, and astrocytes, and a reduction in fibrosis. In addition, the inventors expect to see improvement in overall morphology of the eye, and in the histological outcomes.
- the combination of CBD-DMH and other cannabinoids that act at CB2 are expected, for example, to allow for increased actions of these cannabinoids with therapeutic efficacy achieved at lower doses of each of the respective cannabinoids.
- Example 10 Administration of CBD-DMH or a combination of CBD-DMH and a selective CB 2 receptor agonist using a uveitis model
- mice Two different ElU experimental groups are examined in mice:
- Group A Intravital microscopy (IVM) to visualize leukocyte- endothelium interactions at 6 hours after induction of ElU and topical application of CB 2 agonist to LPS injected eye (single dose, immediately following LPS intraocular injection) in BALB/c mice.
- IVM Intravital microscopy
- Group B IVM at 6 hours after induction of ElU and topical application of CB 2 agonist to LPS injected eye (single dose, immediately following LPS intraocular injection) in CB2R "/_ mice.
- CBD-DMH HU308, HU433, CBD, ⁇ -caryophyllene or combinations thereof are tested.
- Animals are lightly sedated under low dose pentobarbital, 5 ⁇ of drug solution or soyabean oil emulsion vehicle is applied as an ophthalmic drop to LPS injected eye, Tear-Gel® is applied to the contralateral eye to prevent corneal desiccation.
- CBD-DMH (0.5 or 5%) together with (HU308 or HU433 at 0.1 or 1 %), CBD (1-2%) or ⁇ -caryophyllene (1 -2%) is used.
- mice are anesthetised prior to induction of uveitis with 5% isoflurane in 100% oxygen and depth of anesthesia is monitored via toe pinch test.
- the head of the animal is immobilized, and the sclera of the left eye is punctured with a 30-gauge needle at the dorsonasal quadrant at approximately the level of the equator.
- LPS 125 ng/ ⁇ ; Sigma-Aldrich, Oakville, ON, Canada
- Intravitreal injections are made under microscopic control with a Hamilton syringe (Hamilton Company, Reno, Nevada, USA), fitted with a 30 G1/6 needle.
- mice receive 2 ⁇ of the LPS solution.
- the tip of the needle is directed towards the posterior pole and only the bevelled tip (2-3 mm) is allowed to enter the vitreal cavity.
- the needle is held in place for another 5 seconds to avoid leakage of the LPS via the sclerostomy (injection site).
- the sclerostomy site is closed using tissue adhesive to prevent any leakage.
- the eye of each animal is checked for bleeding or swelling. Only animals with no bleeding or swelling are used.
- IVM intravital microscopy
- the technique of intravital microscopy (IVM) is used for in vivo investigation of leukocyte recruitment.
- the epifluorescence video microscope is focused on the iridial microcirculation, which allows for imaging of the leukocyte- endothelial interactions.
- the animal's head is made stationary by placement in a rotational head holder and a cover slip is placed over the left eye of the animal.
- the iris is divided into four equal quadrants by drawing two superficial lines, lengthwise and widthwise. IVM is carried out at each of these quadrants.
- leukocyte recruitment is observed and recorded for 30 seconds each. Evaluation of all the videos is carried out off-line.
- Adherent leukocytes is defined as the number of leukocytes during the 30 second observations period that did not detach from the cylindrical endothelial surface. The number of adherent leukocytes within each vessel segment is calculated by measuring the diameter and length of vessel segment studied, assuming a cylindrical geometry of blood vessel. Adherent leukocytes are expressed as number of cells per mm 2 of endothelial surface.
- Results are analyzed using the software Prism 5 (GraphPad Software, La Jolla, CA, USA). All data are expressed as means ⁇ deviation (SD). Groups are tested for significance using one-way analysis of variance (ANOVA) with a Dunnett's post hoc test, comparing all experimental groups to the vehicle treated group. Significance is considered at p ⁇ 0.05.
- testing was done with an acute experimental model of ocular inflammation (pan-uveitis) to examine the disease-preventing role of cannabinoid receptor ligands (Szczesniak et al., 2013, 2012; Toguri et al., 2014).
- cannabinoids that act at CB2R, reduce immune cell recruitment (leukocytes in the iris and retinal microvasculature), decreased levels of proinflammatory mediators, improved iridial blood flow and reduced tissue pathology (Toguri et al., 2014).
- CBD-DMH with HU 308 or HU 433 will be more useful in mitigating intraocular inflammation than combinations of CBD-DMH with either CBD or ⁇ -caryophyllene and that combinations of CBD- DMH + either CBD or ⁇ -caryophyllene will be more useful than either of the latter CB2 agonists alone.
- Example 11 Administration of CBD-DMH, or a combination of CBD-DMH and a non-selective cannabinoid using a corneal hyperalgesia model I. Introduction
- CB-i cannabinoid type 1
- CB 2 type 2 receptors.
- This system plays a key role in inflammation and pain modulation.
- a 9 THC THC
- other phytocannabinoids including CBD and A 8 THC also relieve inflammatory disease and neuropathic pain and interactions between constituent phytocannabinoids may lead to additional useful therapeutic effects.
- Phytocannabinoids and cannabinoids that can activate CB2 may have utility in ocular inflammation and neuropathic pain.
- CB2 receptors specifically, as well as CB1 receptors, can alleviate ocular inflammation (Toguri et al., 2014; Toguri et al., submitted, 2015).
- the anti-inflammatory actions of CB2 agonist drugs are consistent with upregulation of CB2 receptors during inflammation.
- CBD-DMH which acts as a positive allosteric modulator at CB2 and testing will show acts as a weak agonist at CB1 ), reduces development of corneal hyperalgesia and allodynia after corneal chemical burn and trauma.
- CBD-DMH cannabidiol and the cannabidiol derivative, CBD-DMH either alone or in combination with the nonselective phytocannabinoids, A9THC or A8THC or the selective CB2 agonist to reduce ocular (corneal) inflammation as well hyperalgesia after trauma in wild- type and CB2 or CB1 genetic knock-out animals.
- a model of silver nitrate cauterization to generate corneal inflammation and hyperalgesia is used (modified from Wenk & Honda, 2003).
- This model uses Balb/c mice and Balb/c CB2 ";" mice and examines the development of hyperalgesia by quantifying the number and frequency of a protective blinking response in the treated eye (stimulus-induced blinking) relative to control non-sensitized eyes in response to a noxious stimulus test (Capsaicin 1 ⁇ ).
- the behavioral or pain response (blinks to noxious stimulus, topical capsaicin) is determined in response to topical application of the transient receptor potential agonist, capsaicin.
- Increased blinking in response to capsaicin in the chemical cauterized eye when compared to the sham control eye indicates a higher level of pain.
- Animals are unrestrained and videoed using a handheld recording device and video images analyzed by an observer blinded to the drug treatment.
- corneas are evaluated using fluorescein photomicrographs to examine the wound area and animals are then sacrificed and eyes enucleated. Post mortem histology and histochemistry is used to examine corneal morphology and immune cell recruitment in all groups.
- non-selective cannabinoids A 9 THC, A 8 THC, WIN 55,212-2 and CP 55,940 will also reduce development of corneal hyperalgesia and allodynia and improve corneal wound healing after chemical burn via actions at both CB2 and CB1 receptors, respectively. Additionally, the inventors expect that these experiments will show that concomitant dosing with both topical CBD-DMH and the non-selective cannabinoids will result in improved therapeutic index (lower ED 50 ) for reducing corneal hyperalgesia and allodynia in wild-type animals. These actions will be reduced or absent in CB2 knock-out animals.
- Fride E Feigin C, Ponde DE, Breuer A, Hanus L, Arshavsky N, Mechoulam R. (2004). "(+)-Cannabidiol analogues which bind cannabinoid receptors but exert peripheral activity only.”
- Cannabidiol is a negative allosteric modulator of the type 1 cannabinoid receptor (Brit. J. Pharmacol. Submitted).
- Oreja-Guevara C Treatment of spasticity in multiple sclerosis: new perspectives regarding the use of cannabinoids. Rev Neurol. 2012a Oct 1 ;55(7):421 -30. Oreja-Guevara C, Clinical efficacy and effectiveness of Sativex, a combined cannabinoid medicine, in multiple sclerosis-related spasticity. Expert Rev Neurother. 2012b Apr;12(4 Suppl):3-8.
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| CA2986588A CA2986588C (en) | 2013-11-20 | 2016-05-27 | Use of cannabinoids in the treatment of ocular inflammation and/or pain |
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Cited By (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3643303A1 (en) * | 2018-10-22 | 2020-04-29 | InnovativeHealth Group SL | Compounds for use in the treatment or prevention of fibrotic diseases; pharmaceutical, cosmetic compositions and uses thereof |
| CN111629724A (en) * | 2017-09-02 | 2020-09-04 | 科学控股公司 | tetrahydrocannabinol modifier |
| CN113491681A (en) * | 2021-08-11 | 2021-10-12 | 无锡诺平医药科技有限公司 | Application of cannabinoid molecule CBG in preparation of inflammatory pain medicines and medicinal preparation |
| 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 |
| WO2025210386A1 (en) * | 2024-04-01 | 2025-10-09 | Vicadia Lda | Pharmaceutical compositions for staining membranes and other biological structures using a natural or synthetic cbd-based vital dye isolated and/or associated with other dyes for vitreoretinal surgery |
| WO2026047389A1 (en) * | 2024-08-30 | 2026-03-05 | Vicadia Lda | Topical delivery of cannabinoid-based formulations for ocular allergy and inflammation in ophthalmic diseases |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2007052013A1 (en) * | 2005-11-01 | 2007-05-10 | Gw Pharma Limited | A combination of cannabinoids for the treatment of peripheral neurophatic pain |
| WO2010127033A1 (en) * | 2009-04-28 | 2010-11-04 | Alltranz Inc. | Formulations of cannabidiol and methods of using the same |
| WO2013009928A1 (en) * | 2011-07-11 | 2013-01-17 | Organic Medical Research | Cannabinoid formulations |
| WO2015074137A1 (en) * | 2013-11-20 | 2015-05-28 | Mary Lynch | Compositions and methods for treatment of ocular inflammation and pain |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20090247619A1 (en) * | 2008-03-06 | 2009-10-01 | University Of Kentucky | Cannabinoid-Containing Compositions and Methods for Their Use |
| CA2895805A1 (en) * | 2012-12-18 | 2014-06-26 | Kotzker Consulting Llc | Use of cannabinoids and terpenes for treatment of organophosphate and carbamate toxicity |
-
2016
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Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2007052013A1 (en) * | 2005-11-01 | 2007-05-10 | Gw Pharma Limited | A combination of cannabinoids for the treatment of peripheral neurophatic pain |
| WO2010127033A1 (en) * | 2009-04-28 | 2010-11-04 | Alltranz Inc. | Formulations of cannabidiol and methods of using the same |
| WO2013009928A1 (en) * | 2011-07-11 | 2013-01-17 | Organic Medical Research | Cannabinoid formulations |
| WO2015074137A1 (en) * | 2013-11-20 | 2015-05-28 | Mary Lynch | Compositions and methods for treatment of ocular inflammation and pain |
Non-Patent Citations (6)
| Title |
|---|
| FRIDE ET AL.: "(+)-Cannabidiol analogues which bind cannabinoid receptors but exert peripheral activity only", EUROPEAN JOURNAL OF PHARMACOLOGY, vol. 506, no. 2, 2004, pages 179 - 188, XP004664996 * |
| NAGARKATTI ET AL.: "Cannabinoids as novel anti-inflammatory drugs", FUTURE MEDICINAL CHEMISTRY, vol. 1, 2009, pages 1333 - 1349 * |
| See also references of EP3302464A4 * |
| SMOUM ET AL.: "CB2 cannabinoid receptor agonist enantiomers HU-433and HU-308: An inverse relationship between bindingaffinity and biological potency", PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, vol. 112, no. 28, 14 July 2015 (2015-07-14), pages 8774 - 8779, XP055332715 * |
| TOGURI ET AL.: "Anti-inflammatory effects of cannabinoid CB2 receptor activation inendotoxin-induced uveitis", BRITISH JOURNAL OF PHARMACOLOGY, vol. 171, March 2014 (2014-03-01), pages 1448 - 1461, XP055332716 * |
| XIONG ET AL., JOURNAL OF EXPERIMENTAL MEDICINE, vol. 209, no. 6, 14 May 2012 (2012-05-14), pages 1121 - 1134, XP055332721 * |
Cited By (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN111629724A (en) * | 2017-09-02 | 2020-09-04 | 科学控股公司 | tetrahydrocannabinol modifier |
| EP3675849A4 (en) * | 2017-09-02 | 2021-11-24 | Scientific Holdings, LLC | TETRAHYDROCANNABINOL MODULATORS |
| EP3643303A1 (en) * | 2018-10-22 | 2020-04-29 | InnovativeHealth Group SL | Compounds for use in the treatment or prevention of fibrotic diseases; pharmaceutical, cosmetic compositions and uses 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 |
| CN113491681A (en) * | 2021-08-11 | 2021-10-12 | 无锡诺平医药科技有限公司 | Application of cannabinoid molecule CBG in preparation of inflammatory pain medicines and medicinal preparation |
| WO2025210386A1 (en) * | 2024-04-01 | 2025-10-09 | Vicadia Lda | Pharmaceutical compositions for staining membranes and other biological structures using a natural or synthetic cbd-based vital dye isolated and/or associated with other dyes for vitreoretinal surgery |
| WO2026047389A1 (en) * | 2024-08-30 | 2026-03-05 | Vicadia Lda | Topical delivery of cannabinoid-based formulations for ocular allergy and inflammation in ophthalmic diseases |
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