Adenosine-encapsulated liposome

JP2025028916A5Inactive Publication Date: 2025-06-20NEW YORK UNIV
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Patent Information

Application Number
JP2024202932
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-04-03
Filing Date
2024-11-21
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

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Abstract

To provide a liposome that encapsulates adenosine.SOLUTION: A liposome is formed of sphingomyelin or a combination of sphingomyelin and 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC), or a combination of sphingomyelin and 1,2-dimyristoyl-sn-glycero-3-phosphoryl glycerol (DMPG), or a combination of sphingomyelin, DMPG and DMPC. A liposome that encapsulates adenosine may be used for inducing cartilage regeneration, for treating osteoarthritis, for alleviating arthralgia, and / or delaying, stopping and / or inverting a progressive structural tissue damage associated with osteoarthritis, or for treating osteoarthritis, rheumatic arthritis, acute gouty arthritis and / or synovitis. The liposome may release adenosine for 2 weeks.SELECTED DRAWING: None
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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims priority to U.S. Provisional Application No. 62 / 828,916, filed April 3, 2019, the disclosure of which is incorporated herein by reference. [Background technology]

[0002] Osteoarthritis (OA), a disease characterized by loss of cartilage, is the most common type of arthritis, affecting 151 million people worldwide (including about 10% of the population of the United States and other industrialized countries). Age, previous trauma, obesity, and genetics are among the risk factors for developing this degenerative joint disorder. The incidence of OA increases with age, and the resulting pain, decreased joint function and mobility, social isolation, and reduced quality of life over a wide range make OA a condition with high medical and social impact. OA can affect any joint, but most commonly affects the knee, hip, and hand. The prevalence of OA is greatest in the knee joint in both women (47%) and men (40%). Current treatment options are suboptimal and do not correct the underlying problem. Treatment is primarily symptomatic and includes the use of nonsteroidal anti-inflammatory drugs (e.g., ibuprofen), narcotic painkillers, exercise, and acupuncture. The FDA has also approved specific treatments for OA, including corticosteroids (anti-inflammatory agents) and hyaluronic acid (lubrication, pain relief), all of which are delivered via intra-articular (IA) injections. Although these injectable medications have provided symptomatic relief, none are reversible.

[0003] The purinergic system plays a key role in maintaining cartilage homeostasis. Adenosine, acting on its A2A receptor (A2AR), is a key autocrine homeostatic factor that maintains the balance between chondrocytes and cartilage. Adenosine is an endogenously produced physiological regulator whose intracellular and extracellular concentrations are tightly controlled by oxygen consumption, cellular stress, and mitochondrial functionality. Extracellular adenosine is derived primarily from the hydrolysis of ATP (mainly, but not exclusively, by the ectoenzymes CD39 and CD7) and mediates its actions via activation of G protein-coupled receptors (A1R, A2AR, A2BR, and A3R). These adenosine receptors are highly evolutionarily conserved, and their expression and function tend to be conserved as well. Adenosine has long been known to regulate inflammatory and immune responses, and previous studies have demonstrated the importance of adenosine and its receptors in osteoblast, osteoclast, and bone marrow homeostasis. Previous studies have suggested that adenosine receptors also regulate chondrocyte physiology and pathology in response to inflammatory stimuli in rodent, equine, bovine, and human chondrocytes, but the specific receptors involved have not been identified. Although horse purine metabolism differs from other species because adenosine aminase, present in lymphocytes, plasma, and extracellular fluids in most species, is absent in equine lymphocytes or serum, removal of endogenous adenosine (by addition of adenosine deaminase) or blockade of A2AR leads to cartilage degradation in equine cartilage explants. A3R stimulation has been reported to reduce OA development in a chemically induced model of OA, primarily due to the anti-inflammatory effects of A3R agonists. However, adenosine has a half-life of only a few seconds. Summary of the Invention

[0004] The present disclosure provides an injectable formulation. Also disclosed are methods of making and using the injectable formulation. The injectable formulation comprises liposomes and saline, where the liposomes are metastable and encapsulate adenosine. [Brief description of the drawings]

[0005] For a fuller understanding of the nature and objects of the present disclosure, reference should be made to the following detailed description taken in conjunction with the accompanying drawings, in which:

[0006] FIG. 1 shows adenosine retention in liposomes formed from RgnA09.

[0007] FIG. 2 shows a microscopic image of a liposome suspension formed from RgnA09.

[0008] FIG. 3 shows a histogram of the approximate diameters of liposomes formed from RgnA09.

[0009] FIG. 4 shows adenosine retention in liposomes formed from RgnA10.

[0010] FIG. 5 shows microscopic images of liposome suspensions formed from RgnA10.

[0011] FIG. 6 shows a histogram of the approximate diameters of liposomes formed from RgnA10.

[0012] FIG. 7 shows the lyophilized product of the preliposomes.

[0013] Figure 8 shows a micrograph of a prior art liposomal suspension, which contains clear evidence of crystallized adenosine and the spherical objects are believed to be oil.

[0014] FIG. 9 shows pain data recorded using the incapacitance test.

[0015] FIG. 10 shows the HPLC chromatogram of the material isolated in Example 1.

[0016] FIG. 11 shows the UV spectrum of the material isolated in FIG.

[0017] FIG. 12 shows the initial bolus release of RgnA09 and RgnA10.

[0018] FIG. 13 shows the release kinetics of adenosine from (left) RgnA09-MLV and (right) RgnA10-MLV over 24 hours.

[0019] FIG. 14 shows rotarod pain testing on day 60 (after 6 injections) with (left) RgnA09 and (right) RgnA10.

[0020] Figure 15 shows the effect of various concentrations of (A) RgnA09 and (B) RgnA10 on joint inflammation (over 6 injections). Treatment was ipsilateral-contralateral. Statistics: One-way (Brown-Forsythe and Welch) ANOVA. *P<0.05 v / s vehicle, †P<0.05 v / s saline, +P<0.05 v / s 0.3 mg and 1 mg.

[0021] Figure 16 shows representative Safranin O-stained sections of affected rat tibiae after treatment with vehicle or three doses of liposomal adenosine. In vehicle-treated animals, cartilage proteoglycan and cartilage surface irregularities were significantly reduced. In RgnA09-treated rats with increased surface cartilage, there was a dose-dependent improvement in cartilage proteoglycan and reduced cartilage fraying. In rats treated with RgnA10, cartilage preservation was observed at lower doses as well, but the effect was strongest in cartilage from rats treated with the highest dose studied (3 mg / mL). DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0022] Although the claimed subject matter is described in terms of certain embodiments, other embodiments, including embodiments that do not provide all of the advantages and features described herein, are within the scope of this disclosure. Various structural, logical, and process step changes may be made without departing from the scope of the disclosure.

[0023] All ranges provided herein include all values ​​falling within the range to the tenth decimal place unless otherwise stated.

[0024] The present disclosure provides injectable formulations. Methods of making and using the injectable formulations are also disclosed.

[0025] In one aspect, the present disclosure provides an injectable formulation comprising liposomes and saline, where the liposomes encapsulate adenosine.

[0026] The liposome may comprise i) sphingomyelin, or ii) a combination of sphingomyelin and 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC), or iii) a combination of sphingomyelin and 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG), or iv) a combination of sphingomyelin, DMPG, and DMPC. In various examples, the liposome comprises 70-100% by weight of sphingomyelin. Liposomes comprising less than 100% by weight of sphingomyelin may further comprise up to 30% by weight (e.g., the remainder) of DMPC or DMPG, or a combination of DMPC and DMPG. In one embodiment, the liposome may contain 70 to 99.9% by mass of sphingomyelin and 0.1 to 30% by mass (e.g., the remainder) of DMPC, or 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG), or a combination of DMPC and DMPG. In one embodiment, the liposome contains 75 to 100% by mass of sphingomyelin. Liposomes containing less than 100% by mass of sphingomyelin may further contain up to 25% by mass (e.g., the remainder) of DMPC or DMPG, or DMPC and DMPG. In one embodiment, the liposome contains 75 to 99.9% by mass of sphingomyelin and 0.1 to 25% by mass (e.g., the remainder) of DMPC or DMPG, or DMPC and DMPG. For example, liposomes may contain 75, 80, 85, 90, 95, 96, 97, 98, 99, and 99.9% sphingomyelin, with the remainder being DMPC, DMPG, or combinations thereof. The weight percentages refer to the total weight of phospholipids.

[0027] The liposomes may have a diameter and / or average diameter of 50 nm to 150 μm, including all values ​​and ranges of 0.1 nm therebetween (e.g., 50 nm to 1 μm, 50 nm to 750 μm, 50 to 500 nm, 50 to 250 nm, 50 to 100 nm, 100 nm to 1 μm, 100 to 750 nm, 100 to 500 nm, 100 to 250 nm, 1 to 150 μm, 1 to 100 μm, 1 to 50 μm, 1 to 40 μm, 1 to 30 μm, 1 to 25 μm, 1 to 20 μm, 1 to 10 μm, 1 to 5 μm). For example, the liposomes can have a diameter and / or average diameter of 50 nm, 75 nm, 100 nm, 250 nm, 500 nm, 1 μm, 10 μm, 25 μm, 30 μm, 40 μm, 50 μm, 75 μm, or 100 μm. In one embodiment, at least 60, at least 70, at least 80, at least 90, at least 95, at least 96, at least 97, at least 98, at least 99, at least 99.9, or 100% of the liposomes have a diameter in the range of 50 nm to 1 μm, 50 nm to 750 μm, 50 to 500 nm, 50 to 250 nm, 50 to 100 nm, 100 nm to 1 μm, 100 to 750 nm, 100 to 500 nm, 100 to 250 nm, 1 to 150 μm, 1 to 100 μm, 1 to 50 μm, 1 to 40 μm, 1 to 30 μm, 1 to 25 μm, 1 to 20 μm, 1 to 10 μm, 1 to 5 μm. In one embodiment, no liposomes have a diameter greater than 150 μm. In one embodiment, less than 1% of the liposomes have a diameter greater than 150 μm. In various embodiments, liposomes can be produced by the ethanol injection method, and the resulting liposomes may be smaller than liposomes formed by other methods.

[0028] Prior to releasing adenosine, the liposomes of the present disclosure can be metastable. Metastable liposomes provide improved delivery due to greater stability at the delivery site. Metastable liposomes a) have a relative diameter that is not unity (e.g., metastable liposomes do not have a perfectly circular or spherical shape); b) are sufficiently large (so that the expansion stresses associated with membrane bending are not strong enough to overcome the tendency of the liposome toward conformational equilibrium); and c) have a longest linear dimension (e.g., diameter) of 100 nm to 150 μm (including any 0.1 nm value and range therebetween). Such liposomes collapse (e.g., shrink or contract) into a smaller stable form when subjected to a temperature (e.g., contact with a reservoir having a temperature) between 35 and 45° C. (e.g., 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, or 45° C.) (e.g., about 40° C. or slightly above 40° C.), including all 0.1° C. values ​​and ranges therebetween. In one embodiment, the smaller stable liposomes have a longest linear dimension (e.g., diameter) of from 50 nm to 110 μm (including all 0.1 nm values ​​and ranges therebetween). In addition, the ratio of the volume enclosed by the liposome at 25° C. to the volume enclosed by the liposome after heating to a temperature above the gel-fluid phase transition of the lipid or lipids forming the liposome is greater than 10. Metastable liposomes containing hydrophilic drugs collapse at 35-45° C. (including all 0.1° C. values ​​and ranges therebetween, e.g., 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, or 45° C.) (e.g., about 40° C.) and can release (e.g., slowly release) their payload (e.g., adenosine) upon such collapse (e.g., shrinkage or contraction). Metastable liposomes are described in U.S. Patent Publication 2016 / 0263031, the relevant portions of which are incorporated herein by reference. Metastable liposomes may also be referred to simply as liposomes.

[0029] The liposomes may be formulated with one or more excipients. The formulation may be in the form of a liquid or gel, preferably a liquid, for injectable use.

[0030] Liposomes are formed from one or more lipids that can be neutral, anionic, or cationic at physiological pH. Examples of lipid types include, but are not limited to, sterols and lipids such as cholesterol, phospholipids, lysolipids, lysophospholipids, sphingolipids, or PEGylated lipids. In one embodiment, the carbon chain length of the phospholipid is C 10 ~C 22 In one embodiment, the carbon chain length of the phospholipid is 14 ~C 20 Suitable lipids include, but are not limited to, phosphatidylcholine (PC) (e.g., egg PC, soybean PC) and phosphatidylglycerol. Examples of PC include, for example, 1,2-dioleoylphosphatidylcholine (DOPC), 1,2-distearoylphosphatidylcholine (DSPC), 1,2-dipalmitoylphosphatidylcholine (DPPC), and 1,2-dimyristoylphosphatidylcholine (DMPC). Various phosphatidylglycerols may be used. Non-limiting examples of phosphatidylglycerol include 1,2-dioleoylphosphatidylglycerol (DOPG), 1,2-distearoylphosphatidylglycerol (DSPG), 1,2-dipalmitoylphosphatidylglycerol (DPPG), and 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG).

[0031] In one embodiment, the phospholipid is sphingomyelin, or sphingomyelin with DMPC or DMPG, or a combination thereof. The total lipid concentration may be 7-12 mg / mL, including all values ​​and ranges of 0.01 mg / mL therebetween. In one embodiment, the total lipid concentration is 8-10 mg / mL. In one embodiment, the total lipid concentration is 8 mg / mL or 10 mg / mL. In one embodiment, where the liposome comprises sphingomyelin, DMPC, and DMPG, the ratio of DMPC to DMPG is 6:4-8:2. In one embodiment, the ratio of DMPC to DMPG is 7:3.

[0032] The liposome has an aqueous compartment. The aqueous compartment can contain water and adenosine. The concentration of adenosine can be 0.1 to 7 mg / mL (including all values ​​and ranges therebetween). In one embodiment, the concentration of adenosine can be 0.1 to 4 mg / mL. In one embodiment, the concentration of adenosine is 3 mg / mL.

[0033] Methods for producing metastable liposomes are described herein. In one embodiment, dehydrated metastable liposomes are prepared from a homogenous dispersion of phospholipids, preferably sphingomyelin, in a water / tert-butyl alcohol (TBA) co-solvent system, where the ratio of phospholipid (mg):water / TBA (mL) is 2:1. Various ratios of water to TBA can be used (e.g., 10:1, 9:1, 8:1:7:1, 6:1, 5:1, 4:1, 3:1, 2:1, 9:2, 7:2, 5:2, 3:2, 10:3, 8:3, 7:3, 5:3 (water:TBA)). The isotropic monophasic solution of liposomes is lyophilized to produce a dehydrated liposome powder in a sterile vial. The lyophilization process removes both water and TBA from the vial, leaving behind empty lipid vesicles or dehydrated liposomes. Upon addition of a pharma- ceutically acceptable carrier such as water, saline, or PBS, the lyophilized product spontaneously forms large metastable liposomal dispersions. The lipid to TBA ratio is an important factor influencing the size and polydispersity of the resulting liposomal formulation.

[0034] In one embodiment, for example, dehydrated metastable liposomes (such as RgnA09) are prepared from a solution containing a dispersion of multiple phospholipids in a TBA / water-cosolvent system with a 1:1 volumetric ratio of water to TBA. For example, for a solution containing 100 mg of phospholipid, 1-50 mL (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 20, 25, 30, 40, or 50 mL) of a 1:1 volumetric ratio of TBA:water cosolvent system is used. The phospholipids may be a mixture of 75% sphingomyelin (wt%) and 25% PC / PG mixture (wt%), where the PC / PG mixture comprises 70% (wt%) DMPC and 30% (wt%) DMPG (e.g., of the total phospholipids comprising sphingomyelin and the PC / PG mixture, 70% (wt%) of the phospholipids are sphingomyelin, 17.5% (wt%) of the phospholipids are DMPC, and 7.5% (wt%) of the phospholipids are DMPG). The resulting solution comprising the phospholipids is lyophilized to produce a dehydrated liposome powder in a sterile vial. The lyophilisate (e.g., dehydrated liposome powder) may then be rehydrated with a solution containing adenosine (e.g., for 100 mg of phospholipid, use 10 mL of an aqueous solution containing adenosine (e.g., a saline solution containing adenosine, where adenosine has a concentration of 0.1-7 mg / mL (e.g., 3 mg / mL)) to rehydrate the lyophilisate).

[0035] In one embodiment, dehydrated metastable liposomes (such as RgnA10) are prepared from a solution containing a dispersion of phospholipids in a TBA / water-cosolvent system with a volume ratio of water:TBA of 3:2. For example, for a solution containing 100 mg of phospholipid, 1-50 mL (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 20, 25, 30, 40, or 50 mL) of a volume ratio of 3:2 water:TBA cosolvent system is used. The phospholipid may be sphingomyelin. The resulting solution containing the phospholipid is lyophilized to produce a dehydrated liposome powder in a sterile vial. The lyophilisate (e.g., dehydrated liposome powder) may then be rehydrated with a solution containing adenosine (e.g., for 100 mg of phospholipid, use 10 mL of an aqueous solution containing adenosine (e.g., a saline solution containing adenosine, where adenosine has a concentration of 0.1-7 mg / mL (e.g., 3 mg / mL)) to rehydrate the lyophilisate).

[0036] A variety of methods can be used to prepare the liposomes of the present disclosure, including, but not limited to, the emulsification method, the reverse phase evaporation method, the detergent depletion method, and the ethanol injection method. A variety of other methods are known in the art and are encompassed within the scope of the present disclosure.

[0037] Liposome-adenosine suspension can be prepared by the method of the present disclosure. Dehydrated liposome powder is hydrated by adding adenosine solution and then mixed. For example, 10 mL of adenosine solution (e.g., 3 mg / mL adenosine solution in saline (e.g., 0.9% by weight sodium chloride (9 mg NaCl per mL water))) is added to a vial containing 100 mg of dehydrated liposome powder). The resulting adenosine-containing liposomes can be multilamellar. Liposomes containing adenosine may have a longest linear dimension (e.g., diameter) of 50 nm to 150 μm (including all 0.1 nm values ​​and ranges therebetween) (e.g., 50 nm to 1 μm, 50 nm to 750 μm, 50 to 500 nm, 50 to 250 nm, 50 to 100 nm, 100 nm to 1 μm, 100 to 750 nm, 100 to 500 nm, 100 to 250 nm, 1 to 150 μm, 1 to 100 μm, 1 to 50 μm, 1 to 40 μm, 1 to 30 μm, 1 to 25 μm, 1 to 20 μm, 1 to 10 μm, 1 to 5 μm).

[0038] The selected dosage depends on the desired therapeutic effect, the route of administration, and the desired duration of treatment. In general, a dosage level (daily dose) of 0.001 to 10 mg per kg of body weight is administered to a mammal (e.g., an individual). In general, for intravenous injection or infusion, the dosage may be lower.

[0039] The compositions may also be administered orally, parenterally (intramuscular, intraperitoneal, intravenous (IV) or subcutaneous injection), transdermal (either passively or using iontophoresis or electroporation), or transmucosal (nasal, vaginal, rectal, or sublingual) routes of administration and may be formulated in dosage forms suitable for each route of administration. In one embodiment, the formulation is injected directly into an individual's joint.

[0040] The metastable liposomes containing adenosine of the present disclosure have several advantages, for example, they provide sustained release of adenosine, thus extending the biological activity of the delivered adenosine and / or reducing the required dosage.

[0041] For metastable liposome formulations, various sizes of dosage units can be used. A dosage unit containing a dry powder of lyophilized dehydrated metastable preliposomes or an aqueous solution of adenosine or other hydrophilic active agent can be reconstituted in a container containing a pharma- ceutically acceptable carrier. Preferably, the pharma-ceutically acceptable carrier is an aqueous carrier. Suitable dosage units include, but are not limited to, 0.1-1 mg, 1-3 mg, 3-10 mg, 10-20 mg, and 20-50 mg. Suitable dosage units include, but are not limited to, 0.05 mg / mL-10 mg / mL, preferably 0.05 mg / mL-5 mg / mL, more preferably 0.05 mg / mL-3.5 mg / mL.

[0042] The injectable formulation of the present disclosure may be used to induce cartilage regeneration, treat osteoarthritis, reduce joint pain, and / or slow, stop, and / or reverse progressive structural tissue damage associated with osteoarthritis in an individual in need of treatment. In one example, the individual may have or be suspected of having osteoarthritis, rheumatoid arthritis, acute gouty arthritis, and / or synovitis. The method for inducing cartilage regeneration, treating osteoarthritis, reduce joint pain, and / or slow, stop, and / or reverse progressive structural tissue damage associated with osteoarthritis in an individual in need of treatment includes administering the injectable formulation of the present disclosure to the individual in need of treatment.

[0043] In various embodiments, the individual is a human or a non-human mammal. Examples of non-human mammals include, but are not limited to, agricultural animals (e.g., livestock), such as cows, pigs, sheep, and pet, service, or sport animals, such as horses, dogs, cats, and the like. Further non-limiting examples of individuals include rabbits, rats, and mice.

[0044] Upon administration to an individual in need of treatment, adenosine is released from the liposomes for up to two weeks. In one embodiment, upon administration of the injectable formulation, adenosine is released from the liposomes within 1 second to 1 hour (e.g., 1 minute to 1 hour) after administration to an individual. In one embodiment, at least a portion of the adenosine (e.g., 1-20% of the adenosine) is released from the liposomes within 1 minute to 1 hour after administration to an individual. In one embodiment, at least a portion of the adenosine (e.g., 1-20% of the adenosine) is released within 1 second, 5 seconds, 10 seconds, 20 seconds, 30 seconds, 40 seconds, 50 seconds, 1 minute, 2 minutes, 3 minutes, 4 minutes, 5 minutes, or 10 minutes after administration to an individual.

[0045] The injectable formulation can be administered by intra-articular injection into the joint of an individual. The injectable formulation can be administered in one or more injections. The formulation can be administered multiple times (e.g., up to 10 times), such as once every 10 days, or once every longer period.

[0046] The method steps described in the various embodiments and examples disclosed herein are sufficient to practice the disclosed method. Thus, in one embodiment, the method consists essentially of a combination of the method steps disclosed herein. In one embodiment, the method consists solely of such steps.

[0047] The following statements describe various non-limiting examples of the present disclosure. Statement 1A formulation (e.g., an injectable formulation) comprising saline and one or more liposomes, wherein the one or more liposomes comprise one or more layers (lamellae) (e.g., one or more multilamellar liposomes), wherein the liposome layer (liposome lamella) comprises 70 to 100% by weight of sphingomyelin, and when the sphingomyelin is less than 100% by weight, the remainder (e.g., up to 30% by weight) is 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) or 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol. (DMPG), or DMPC and DMPG, wherein the liposomes (a) have a diameter of 50 nm to 150 μm (including all 0.1 nm values ​​and ranges therebetween) (e.g., 50 nm to 1 μm, 50 nm to 750 μm, 50 to 500 nm, 50 to 250 nm, 50 to 100 nm, 100 nm to 1 μm, 100 to 750 nm, 100 to 500 nm, 100 to 250 nm, 1 to 150 μm, 1 to 100 μm, 1 to 50 μm, 1 to 40 μm, 1 to 30 μm, 1 to 25 μm, 1 to 20 μm, 1 to 10 μm, 1 to 5 μm); and (b) encapsulate adenosine in the aqueous compartment of the liposome. One or more of the liposomes have a diameter of 50 nm to 100 μm. The liposome or liposomes have a diameter of between 100 nm and 150 μm. Statement 2 2. The formulation (e.g., an injectable formulation) of statement 1, wherein the liposomes are metastable. Statement 3 A formulation (e.g., an injectable formulation) as described in statement 1, in which adenosine or a portion thereof is released for up to two weeks, or in which, upon administration to a joint of an individual, adenosine or a portion thereof is released for up to two weeks. Statement 4 .A formulation (e.g., an injectable formulation) according to any one of the preceding statements, further comprising an excipient. Statement 5 A formulation (e.g., an injectable formulation) described in any one of the preceding statements, wherein the adenosine concentration is 0.1 to 7 mg / mL. Statement 6 6. A formulation (e.g., an injectable formulation) as described in statement 5, wherein the adenosine concentration is 0.1 to 4 mg / mL. Statement 7. A formulation (e.g., an injectable formulation) according to any one of the preceding statements, wherein the ratio of DMPC to DMPG is 6:4 to 8:2. Statement 8 A formulation (e.g., an injectable formulation) according to statement 7, wherein the ratio of DMPC to DMPG is 7:3. Statement 9 A formulation (e.g., an injectable formulation) described in any one of the preceding statements, wherein the total lipid concentration is 7 to 12 mg / mL. Statement 10 The formulation (e.g., an injectable formulation) of any one of the preceding statements, wherein the liposomes collapse (e.g., shrink or contract) (e.g., release their payload at about 40°C) at a temperature between 35 and 45°C (including all 0.1°C values ​​and ranges therebetween, e.g., 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, or 45°C). Statement 11 .A formulation (e.g., an injectable formulation) described in any one of the preceding statements, wherein adenosine is released within 1 second to 1 hour (e.g., within 1 minute to 1 hour) after administration to a joint of an individual. Statement 12 12. The formulation (e.g., an injectable formulation) of claim 11, wherein at least a portion of the adenosine is released within 1 second to 1 hour (e.g., within 1 minute to 1 hour) after administration to a joint of an individual. Statement 13 13. A formulation (e.g., an injectable formulation) described in statement 11 or 12, wherein at least 1-20% of the adenosine is released within 1 second to 1 hour (e.g., within 1 minute to 1 hour) after administration to a joint of an individual. Statement 14 14. The formulation (e.g., an injectable formulation) of any one of claims 11 to 13, wherein at least a portion of the adenosine, or at least 1-20% of the adenosine, is released within 1 second, 5 seconds, 10 seconds, 20 seconds, 30 seconds, 40 seconds, 50 seconds, 1 minute, 2 minutes, 3 minutes, 4 minutes, 5 minutes, or 10 minutes after administration to a joint of an individual. Statement 15 A method of inducing cartilage regeneration and / or treating osteoarthritis in an individual in need of treatment comprising administering to the individual a formulation (e.g., an injectable formulation) described in any one of the preceding statements. Statement 16 .A method for reducing joint pain in an individual in need of treatment, comprising administering to the individual a formulation (e.g., an injectable formulation) described in any one of statements 1-14. Statement 17 A method for slowing, halting, and / or reversing progressive structural tissue damage associated with osteoarthritis in an individual in need of treatment, comprising administering to the individual a formulation (e.g., an injectable formulation) described in any one of statements 1-14. Statement 18 .The method of any one of statements 15 to 17, wherein the formulation (e.g., an injectable formulation) is administered by intra-articular injection into a joint of the individual. Statement 19 19. The method of any one of claims 15 to 18, wherein the injectable formulation is administered in one or more injections. Statement 20 20. The method of any one of claims 15 to 19, wherein the injectable formulation is administered multiple times (e.g., up to 10 times) once every 10 days. Statement 21 .The method of any one of statements 15 to 20, wherein the individual has osteoarthritis, rheumatoid arthritis, acute gouty arthritis, and / or synovitis. Statement 22 The method of any one of statements 15-21, wherein the individual is a human or non-human mammal. Examples of non-human mammals include, but are not limited to, agricultural animals (e.g., livestock), such as cows, pigs, sheep, and pet, service, or sport animals, such as horses, dogs, cats, and the like. Further non-limiting examples of individuals include rabbits, rats, and mice.

[0048] The following examples are presented to illustrate the present disclosure and are not intended to be limiting in any regard.

[0049] [Example 1] This example provides an illustration of the liposomes of the present disclosure.

[0050] Since adenosine has a half-life of only seconds, the liposomal adenosine used in the above studies was made fresh daily. A series of shelf-stable formulation options based on lipid composition, dissolution efficiency and retention properties were developed and evaluated. It was determined whether cholesterol / stabilizers should be included and variables optimized. The percentage of liposome-bound adenosine in all formulations (which can be increased or decreased by decreasing or increasing the amount of adenosine solution used to hydrate a fixed amount of pre-liposomal lyophilisate) was measured. The ratio of adenosine to (adenosine + lipid) in the resulting liposomal pellet formed from hydrating the pre-liposomal lyophilisate with adenosine solution depends on the concentration of adenosine in the solution, not the volume used.

[0051] All formulations are hydrated with water containing 7 mg / mL adenosine. [Table 1]

[0052] Two formulations, RgnA09 (75% sphingomyelin, 17.5% DMPC, 7.5% DMPG) and RgnA10 (100% sphingomyelin), were tested to assess their ability to uptake and release adenosine over time. Liposomes were formed in sterile glass vials containing 100 mg of phospholipid powder. Liposomes were mixed with 10 mL of sterile adenosine solution (3 mg / mL in saline) placed in a pre-filled plastic syringe. Samples of lipo-adenosine suspension (100 μL) were incubated at 37° C. in phosphate buffered saline for 0 h, 1 h, 2 h, 1 day, and 2, 5, 7, 10 days. At the end of each incubation period, samples were centrifuged at 23,000 g for 15 min at 4° C. The supernatant was removed and the liposome pellet was resuspended in saline containing 0.5% Triton-X100. The adenosine concentration in the remaining intact liposomes was quantified by high performance liquid chromatography (HPLC).

[0053] Figures 1 and 4 show the retention of adenosine in both liposomal formulations. No significant differences were detected between RgnA09 and RgnA10. For RgnA09, a slightly higher retention was observed at time zero and an increased retention was observed at longer time points. Freshly prepared liposomal suspensions (time 0) showed adenosine retention of 21% and 19% for RgnA09 and RgnA10, respectively. Retention after 1 h of incubation dropped to 4% for both formulations and decreased slowly over time, reaching 1.4% and 2% (RgnA09 and RgnA10, respectively) at day 10, which corresponds to 159 μM and 227 μM adenosine.

[0054] These results indicate that both liposomal formulations are good reservoirs for encapsulating and sustained release of adenosine at concentrations sufficient to activate A2A adenosine receptors in vivo.

[0055] A pre-liposomal lyophilisate that can be rehydrated in a concentrated solution of a hydrophilic pharmacological agent, such as adenosine. The rehydration process produces multilamellar liposomal particles that contain the hydrophilic agent within the aqueous compartments of the liposomes. These particles are "large", about 30 microns, and meta-stable, so that they collapse into a dense form in a warm environment of about 40°C. Otherwise, these particles achieve sustained release of the pharmacological agent when confined to a local closed compartment, such as within the capsule of the human knee synovial joint. Thus, the contained hydrophilic agent is protected from catabolic enzymes in a physiological environment.

[0056] Preliposome lyophilizates, which generate these large metastable multilamellar lipid particles, can be prepared by dissolving lipids (containing at least 50% sphingomyelin) and up to 50% non-sphingolipid phosphatidylcholine in a mixture of water-tertiary butyl alcohol (60:40 v / v) prior to lyophilization. 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) and 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG) were used as non-sphingolipids in a ratio of 70%:30%.

[0057] [Example 2] This example provides an illustration of the liposomes of the present disclosure.

[0058] The provided liposomal adenosine laboratory formulations were analyzed using cross-polarized light microscopy, and the results are shown in FIG.

[0059] The liposomal suspension showed clear evidence of crystallized adenosine when viewed under a microscope. The liposomal suspension does not contain significant liposomal content and appears to be primarily an emulsion. The spherical objects in the image appear to be oil. The ingredients of this formulation contain a large proportion (60%) of soybean oil, which is not a component of the liposomal formulation but is likely a component of the emulsion.

[0060] The solubility of adenosine in water was thought to be 7 mg / mL. The laboratory formulation required 300 mg of adenosine to be added to 10 mL of saline. Presumably, only 70 mg of adenosine would dissolve, leaving 230 mg of adenosine in crystalline form. If the emulsion is centrifuged, it is believed that much of the pellet will be crystalline adenosine. The pellet in the provided formulation was not visible by HPLC, as each time the pellet was washed it reduced in size to the point where nothing was left. A publication was reviewed that used this formulation, and only the supernatant was analyzed by HPLC. The publication stated that 73% of the adenosine was retained in the liposomes. However, the amount in the pellet was inferred by measuring the concentration of adenosine in the supernatant. However, the HPLC measurement of the supernatant was consistent with adenosine (70 mg) dissolving in 10 mL of saline due to its maximum solubility in water, with the remaining 230 mg of adenosine crystallizing in the pellet. There are probably some liposomes formed with adenosine, but their presence is uncertain in this formulation.

[0061] To prepare liposomal adenosine and investigate adenosine entrapment, we resumed the analysis of the preliposomal freeze-drying technique. The advantage of this technique is that it is a stable and sterile process ideal for pharmaceutical formulations. The technique involves reconstituting a sterile preliposomal freeze-dried product in the presence of an active drug. A photograph of the preliposomal freeze-dried product is shown in Figure 7.

[0062] The pre-liposomal lyophilisate appears as a white fluffy powder in a sterile evacuated vial. The rehydration method involves injecting a concentrated adenosine solution into the vial. The powder then dissolves within 30 seconds (sometimes instantly) and may require gentle agitation. The resulting liposomal suspension can then be removed from the vial via a syringe. Note that since the contents of the vial are under vacuum, the adenosine solution is rapidly taken up into the vial upon insertion of the syringe. The ideal concentration of adenosine solution to use for rehydration is its maximum solubility in water, 7 mg / mL. For dilution, sterile water for injection (SWFI) was used, but saline and buffer solutions can be used as well. A microscopic image of the resulting liposomal suspension is shown in Figure 5.

[0063] The average diameter of each particle is approximately 50 μm. In this example, 80 mg of powder was rehydrated with 11 mL of 7 mg / mL adenosine solution (in SWFI). Note that the microscope images above are of dilutions to allow for the observation of distinct liposomal particles.

[0064] An HPLC method was developed to measure both adenosine and lipid content. The liposome formulations were centrifuged and the pellet was separated from the supernatant. Complete dissolution of the pellet was achieved using methanol. The lipid portion of the liposomes was relatively insoluble in acetonitrile, while adenosine was soluble in acetonitrile. Therefore, the HPLC method involved an initial mobile phase (water / acetonitrile) to elute adenosine first from the HPLC column (C18 column), followed by a methanol mobile phase to elute the lipids. One standard was run for each drug: adenosine and lipid. The dissolved pellets were run and the results were compared to these standards. The chromatogram of the pellets is shown in Figure 10.

[0065] The retention time of adenosine in this method is 1.42 min and that of lipids is 9.75 min. The two analytes are also detected at different wavelengths, 260 nm and 203 nm for adenosine and lipids, respectively. Figure 11 shows these spectra.

[0066] The lipid [SM] standard was 4 mg / mL and the adenosine [ADO] standard was 1 mg / mL. The peak areas obtained for the standard runs were as follows: [Table 2]

[0067] Instead of a calibration curve, the following was considered:

number

[0068] The pellet was then run three times, giving the following results for the two peaks: [Table 3] As a function of the ratio of the chromatographic peak areas (ADO / SM), the percentage of adenosine in the pellet (defined as [ADO] / ([ADO]+[SM])) can be derived as follows:

number

[0069] [Example 3] This example provides an illustration of how to use the injectable formulations of the present disclosure.

[0070] Rats with established OA received intra-articular injections of saline (100 μL), while the other eight groups of animals received adenosine in two different liposomal formulations at doses of 3, 1, 0.3, and 0 mg / mL. The first injection was performed 4 weeks after ACL disruption. Animals received six injections, one every 10 days. Knee swelling was measured before each injection, as a measure of arthritis. Pain testing was performed on rats at baseline (before the first injection), 5 days after the third injection, and finally just before sacrifice on day 57 (7 days after the last injection). Joints after sacrifice were analyzed using histology and uCT.

[0071] 10 treatment groups 2 formulations x 4 doses = 8 treatment groups 1 positive control (Rgn01) 1 negative control (saline)

[0072] RgnA01 was prepared as described by Corciulo et al. in “Endogenous adenosine maintains cartilage homeostasis and exogenous adenosine inhibits osteoarthritis progression (Nat Commun. 2017 May 11;8:15019).”

[0073] Liposomes were freshly prepared the day before injection. Ethanol was added to soybean oil containing adenosine or adenosine + adenosine receptor antagonist. A lipid phase containing phosphatidylcholine and cholesterol (1:0.5 molar ratio) was added to the previous solution and emulsified at 15,000 rpm for 10 minutes. Saline with glycerin was then added to the lipid layer and homogenized at 15,000 rpm for 20 minutes, followed by sonication at 100% duty cycle for 1 minute.

[0074] PTOA rats were randomly selected for the experimental groups. Pain testing was performed before the start of the experiment (4 weeks after ACL rupture) and 5 days after the third injection. Pain behavior was measured as weight-bearing asymmetry between the ipsilateral and contralateral hind paws using an incapacitance meter. After hyperalgesia testing, animals were placed in a rodent restrainer and allowed to stand on their hind paws. The hind paws were placed on two weight-averaging platform pads. As the animal shifted its weight off each pad, the unit recorded the average weight in grams over 12 seconds for 3-4 consecutive measurements. The average value for each animal was used for statistical analysis.

[0075] [Example 4] This example provides a description of a method for preparing liposomes of the present disclosure, and the release kinetics of liposomes of the present disclosure.

[0076] Preparation of pre-liposome lyophilisate: [Table 5]

[0077] All vials contained a total of 100 mg, with a fill volume of 5 mL and a fill concentration of 20 mg / mL solvent.

[0078] For RgnA09, 75 mg of SM, 17.5 mg of DMPC, and 7.5 mg of DMPG were dissolved in 5 mL of a 1:1 (volume ratio) mixture of water and tertiary butyl alcohol (TBA). The solution was lyophilized with the following parameters (first frozen at -40°C for 30 minutes, then primary dried at 10°C under 200 micron vacuum for 20 hours, followed by secondary drying at 20°C for 4.5 hours) and kept in a vacuum-sealed vial. The lyophilizate was then rehydrated with 40 mg of pure water at room temperature (25°C).

[0079] For RgnA10, 100 mg of pure sphingomyelin (SM) was dissolved in 5 mL of a 3:2 (volume ratio) water-tertiary butyl alcohol (TBA) mixture. The solution was lyophilized with the following parameters (initial freezing at -40°C for 30 minutes, then primary drying at 10°C for 20 hours under 200 micron vacuum, followed by secondary drying at 20°C for 4.5 hours) and kept in a vacuum-sealed vial. The lyophilizate was then rehydrated with 40 mg of pure water at room temperature (25°C).

[0080] Preparation of adenosine stock solution: Adenosine stock solution was prepared by dissolving pure adenosine powder in saline buffer (0.9% saline). After transferring 50 mL of 0.9% saline to a sterile centrifuge tube, 150 mg of adenosine was weighed and transferred into the saline to obtain a 3 mg / mL stock solution. The solution was mixed by intermittent vigorous vortexing for at least 30 minutes. The solution was then filtered into a new 50 mL centrifuge tube using a 0.2 μm sterile syringe filter to remove large undissolved adenosine particles and obtain a solution containing monomeric dissolved adenosine. The solution was prepared at room temperature and refrigerated (2-8 °C) after use.

[0081] Preparation of liposome-adenosine suspension: Liposome solutions were prepared by the following procedure, first starting with a glass vial containing 100 mg of lyophilized lipid powder of the appropriate composition. The lipids in each vial were then hydrated by injecting 10 mL of adenosine stock solution (3 mg / mL in saline) into the vial and vortexing vigorously. It was expected that dissolution of 100 mg of lipid in 10 mL of buffer would yield a solution with 10 mg / mL of total lipid. The liposomes formed were expected to be multilamellar with sizes ranging from 1 to 10 μm, with the possibility of some larger and smaller liposomes being present.

[0082] In vitro release by 24 hour dialysis: Prepare dialysis cassettes: Dialysis cassettes were prepared using the following protocol recommended by the manufacturer. Briefly, the dialysis cassette was filled with 5 mL of 20% EtOH (200 proof ethanol mixed with DI water in a 1:4 v / v ratio) and suspended in a glass beaker containing 500 mL of 20% EtOH for 10 minutes. No stir bar or stirring was used in this step. The dialysis cassette was then emptied with a pipette, filled with 5 L of DI water, the 500 mL volume was discarded and replaced with 500 mL of DI water, and the dialysis cassette was suspended in the DI water for an additional 20 minutes (no spinning). The cassette was deemed suitable for use after removing the 5 mL of DI water.

[0083] Preparation of dialysis chamber: One liter glass beakers were filled with 500 mL of 0.9% saline as an external buffer. Each glass beaker contained a magnetic stir bar.

[0084] Dialysis cassettes were filled with 3 mL of the appropriate test solution, either 1) pure adenosine stock solution or 2) multilamellar liposomes plus adenosine solution.

[0085] The filled dialysis cassette was then placed in a foam float ring and suspended in 500 mL of 0.9% saline (one dialysis cassette per 500 mL container). The stir plate was adjusted to maintain uniform stirring at a rotation speed of 250-300 rpm without splashing and without the formation of a funnel / vortex that could affect the cassette. The zero time point was taken as the time when the sampled and filled cassette was first placed in the beaker and stirring was started.

[0086] Samples of the retentate (the solution inside the dialysis cassette) were taken at various time points by first mixing the solution inside the cassette by gently pipetting with a 1 mL pipette and then removing 50 μL and transferring it to a pre-labeled 1.5 mL Eppendorf tube.

[0087] Analysis of adenosine concentrations was performed using a NanoDrop OneC spectrophotometer to measure UV / Vis absorbance at 260 nm (baseline correction ON at 750 nm, auto pathlength OFF). All measurements were blanked against 0.9% saline. UV / Vis measurements were performed using 2 μl of sample pipetted onto the instrument platform with a total of n=3 measurements per sample condition time point (3×2 μL volumes, platform cleaned by wiping with a lint-free wipe between each measurement).

[0088] 10-day in vitro release kinetics: Liposome lyophilisates in sterile glass vials were mixed with sterile adenosine solution (3 mg / mL in saline) in pre-filled plastic syringes (custom-made from Mycoscience Inc). Samples (100 μL) of lipo-adenosine suspension were incubated in phosphate-buffered saline for 0, 1, or 2 hours and for 1, 2, 5, 7, or 10 days at 37° C. At the end of each incubation period, samples were centrifuged at 23,000×g for 15 minutes at 4° C. The supernatant was removed and the liposome pellet was resuspended in saline containing 0.5% Triton-X100. The adenosine concentration in the remaining intact liposomes was quantified by high performance liquid chromatography (HPLC).

[0089] Animal Studies: Rats with established OA received intra-articular injections of saline (100 μL), while animals in the other eight groups received adenosine in two different formulations at doses of 3, 1, 0.33, and 0 mg / mL. The first injection was performed 4 weeks after the ACL disruption. Animals received six injections, one every 10 days. Knee swelling was measured before each injection, as a measure of arthritis. Pain tests were performed on rats at baseline (before the first injection), after 30 days, before the third injection, and finally just before sacrifice on day 57 (7 days after the last injection). Pain and locomotor tests were performed, including incapacitance tests (measured as weight-bearing asymmetry between ipsilateral and contralateral hind paws by an incapacitance meter) and rotarod tests (the time the rat could continue running on the rotating rod before falling). Joints after sacrifice were analyzed using histology and uCT.

[0090] In vitro release over 24 hours by dialysis: Figure 13 shows that non-liposomal adenosine is released over time. However, RgnA09 achieves an overall 21.86%-37.90% higher dose due to a higher retention of drug in the liposomes and a slower release of liposomal adenosine due to several release bursts around 2 and 16 hours (resulting in 25.76% and 37.90% higher doses). In contrast, RgnA10 achieves an overall 26.61%-49.27% ​​higher dose due to a higher retention of drug in the liposomes and a slower release of liposomal adenosine due to several release bursts around 1, 2 and 3 hours (resulting in 48.89%, 39.21% and 29.65% higher doses).

[0091] 10-day in vitro release kinetics: Figure 12 shows the adenosine retention in both liposomal formulations. There is an initial bolus release of adenosine (1096 μM for RgnA09 and 2014 μM for RgnA10). No significant differences were detected between the RgnA09 and RgnA10 formulations. Freshly prepared liposomal suspensions (time 0) show 21% retention of adenosine for RgnA09 and 19% for RgnA10. Figures 1 and 4 show that after 1 hour of incubation, the retention falls to 4% for both formulations and slowly decreases over time, reaching 1.4% and 2% (RgnA09 and RgnA10, respectively) at day 10 (which corresponds to 159 μM and 227 μM adenosine). These results indicate that both liposomal formulations are good reservoirs for encapsulating and sustained release of adenosine at concentrations sufficient to activate A2A receptors in vivo.

[0092] Animal research: Furthermore, the efficacy of the newly developed formulation was tested in a post-traumatic OA (PTOA) rat model. As mentioned above, rats develop OA after mechanical disruption of the ACL. PTOA rats were randomly selected for the experimental groups. Incapacitance pain testing was performed before the start of the experiment. Animals were divided into groups of 10 and administered RgnA09 or RgnA10 with 0 (empty liposomes / vehicle), 0.3, 1, or 3 mg / mL adenosine, saline, or the formulation (as previously described in Corciulo et al.). Animals received 6 injections, 1 injection every 10 days. Knee swelling was measured before each injection as a measure of arthritis. Pain testing was performed on rats at baseline (before the first injection), at day 30 (midway through the treatment regimen), and immediately prior to sacrifice (7 days after the last injection). Joints after sacrifice were analyzed using histology and uCT. Pain behavior was measured as weight-bearing asymmetry between the ipsilateral and contralateral hindpaws by an incapacitance meter and by the rotarod test.

[0093] Animals were placed in a rodent restrainer to stand on their hindlimbs (with hindlimbs resting on two weight-averaging platform pads). As the animal shifted its weight from each pad, the unit recorded the average weight in grams over 12 seconds for 3-4 consecutive measurements. The average value for each animal was used for analysis. Pain was also measured using the rotarod test, which uses pressure and stress on the knee joint to provide an assessment of motor function. Rats were placed on an accelerating rotating rod and the inability to remain on the rod was measured and used for further analysis.

[0094] Based on the incapacitance test, a significant reduction in pain behavior was observed between animals treated with intra-articular vehicle and RgnA09 at 1 mg / mL, and between RgnA10 at 0.3 mg and 3 mg. Furthermore, at day 30 (after three injections), a consistent dose-response trend was observed in the reduction of joint pain with both formulations, with all doses for Rgn09 being significantly different from vehicle, and Rgn10 at 3 mg being different from Rgn01 and vehicle (Figure 9). The rotarod test also showed a dose-response trend and differences at day 60 with the highest dose of Rgn10 (3 mg / mL) (Figure 14). Furthermore, a significant change in arthritis was observed with both formulations, with some doses showing significant differences to vehicle and saline after six injections. Both formulations consistently reduced arthritis over time at 3 mg / mL (Figure 15). Both Rgn09 and Rgn10 were used at the highest dose of 3 mg / mL.

[0095] Shown in Figure 16 are representative Safranin O-stained sections of affected rat tibiae after treatment with vehicle or three doses of liposomal adenosine. In vehicle-treated animals, a significant reduction in cartilage proteoglycan and cartilage surface irregularities were observed. In RgnA09-treated rats, which had increased surface cartilage, a dose-dependent improvement in cartilage proteoglycan and reduced cartilage fraying was observed. In rats treated with RgnA10, cartilage preservation was observed at lower doses, but the effect was strongest in cartilage from rats treated with the highest dose tested (3 mg / mL).

[0096] Conclusion: The novel formulation of liposomal adenosine was effective (at least in reducing both pain and swelling in OA knees, with concomitant cartilage preservation and enhancement). Both formulations were effective, and the in vitro release of adenosine from multilamellar vesicles was superior to nonliposomal adenosine or free adenosine.

[0097] [Example 5] This example provides a method of using the liposomes of the present disclosure.

[0098] Storage stable formulations RgnA09 and RgnA10 A series of shelf-stable formulation options based on lipid components, dissolution efficiency, and retention characteristics were developed and evaluated. RgnA09 and RgnA10 can be rehydrated in a concentrated solution of hydrophilic adenosine. The rehydration process produces multilamellar liposomal particles that contain adenosine in the aqueous compartment of the liposome. The liposomes are approximately 10-100 microns in size and are metastable such that they collapse into a compact form in a warm environment (~40°C). The liposomes achieve sustained release of adenosine when confined to a localized closed compartment, such as within the capsule of the human knee synovial joint. RgnA09 and RgnA10 were tested to evaluate their ability to take up and release adenosine over time. Liposome lyophilisates in sterile glass vials were mixed with sterile adenosine solution (3 mg / mL in saline) in pre-filled plastic syringes (custom-made from Mycoscience Inc). Samples of lipo-adenosine suspension (100 μL) were incubated in phosphate-buffered saline at 37° C. for 0, 1, or 2 hours and for 1, 2, 5, 7, or 10 days. At the end of each incubation period, samples were centrifuged at 23,000×g for 15 minutes at 4° C. The supernatant was removed and the liposomal pellet was resuspended in saline containing 0.5% Triton-X100. The adenosine concentration in the remaining intact liposomes was quantified by high performance liquid chromatography (HPLC). Figures 1, 4 and 12 show the percent adenosine retention in both liposomal formulations. There is an initial bolus release of adenosine (1096 μM for RgnA09 and 2014 μM for RgnA10). No significant differences were detected between the RgnA09 and RgnA10 formulations. Freshly prepared liposome suspensions (time 0) show an adenosine retention of 21% for RgnA09 and 19% for RgnA10. After 1 h of incubation, retention drops to 4% for both formulations and decreases slowly with time, reaching 1.4% and 2% at day 10 (RgnA09 and RgnA10, respectively), which correspond to 159 μM and 227 μM adenosine.These results indicate that both liposomal formulations are good reservoirs for encapsulating and sustained release of adenosine at concentrations sufficient to activate A2A receptors in vivo.

[0099] Furthermore, the efficacy of the newly developed formulation was tested in a post-traumatic OA (PTOA) rat model. As mentioned above, rats develop OA after mechanical disruption of the ACL. PTOA rats were randomly selected for the experimental groups. Incapacitance pain testing was performed before the start of the experiment. Animals were divided into groups of 10 and administered RgnA09 or RgnA10 with 0 (empty liposomes / vehicle), 0.3, 1, or 3 mg / mL adenosine, saline, or the formulation (as previously described in Corciulo et al.). Animals received 6 injections, 1 injection every 10 days. Knee swelling was measured before each injection as a measure of arthritis. Pain testing was performed on rats at baseline (before the first injection), at day 30 (midway through the treatment regimen), and immediately prior to sacrifice (7 days after the last injection). Joints after sacrifice were analyzed using histology and uCT. Pain behavior was measured as weight-bearing asymmetry between the ipsilateral and contralateral hindpaws by an incapacitance meter (Figure 9).

[0100] After the hyperalgesia test, the animals were placed in a rodent restrainer and allowed to stand on their hindlimbs (with the hindlimbs resting on two weight-averaging platform pads). As the animal shifted its weight from each pad, the unit recorded the average weight in grams over 12 seconds for 3-4 consecutive measurements. The average value for each animal was used for analysis. Motor performance was also measured using the rotarod test, which uses pressure and stress on the knee joint to provide an assessment of motor function. Rats were placed on an accelerating rotating rod and the inability to remain on the rod was measured and used for further analysis (data not shown). Based on the incapacitance test, there was a strong dose interaction between vehicle and 1 mg / mL for RgnA09 and between 0.3 mg and 3 mg for RgnA10. Furthermore, at day 30 (after three injections), a consistent dose-response trend was observed in the reduction of joint pain with both formulations, with all doses of Rgn09 being significantly different from vehicle, and 3 mg of Rgn10 being different from Rgn01 and vehicle. The rotarod test also showed a dose-response trend and differences at day 60 with the highest dose of Rgn10 (3 mg / mL). Furthermore, a significant change in arthritis was observed with both formulations, with some doses showing significant differences against vehicle and saline after six injections. Both formulations consistently reduced arthritis over time at 3 mg / mL (Figure 15). Both Rgn09 and Rgn10 may be used at the highest dose of 3 mg / mL.

[0101] Although the present disclosure has been described with reference to one or more specific embodiments, it will be understood that other examples of the present disclosure can be made without departing from the scope of the present disclosure.

[0102] [1] An injectable preparation comprising physiological saline and a liposome comprising one or more layers, wherein the layer of the liposome comprises 70 to 100% by mass of sphingomyelin, and when the sphingomyelin comprises less than 100% by mass, the remainder is 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC), 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG), or DMPC and DMPG; wherein the liposome is (a) has a diameter of 50 nm to 150 μm; and (b) encapsulating adenosine in the aqueous compartment of the liposome; Injectable formulations. [2] The injectable formulation according to [1], wherein the liposomes are metastable. [3] The injectable formulation according to [1], wherein adenosine or a portion thereof is released for up to two weeks. [4] The injectable formulation described in [1], further comprising an excipient. [5] An injectable formulation according to [1], which is suitable for intra-articular injection. [6] The injectable formulation according to [1], wherein the adenosine concentration is 0.1 to 7 mg / mL. [7] The injectable formulation according to [5], wherein the adenosine concentration is 0.1 to 4 mg / mL. [8] The injectable formulation according to [1], wherein the ratio of DMPC to DMPG is 6:4 to 8:2. [9] The injectable formulation according to [8], wherein the ratio of DMPC to DMPG is 7:3.

[10] The injectable formulation according to [1], wherein the total lipid concentration is 7 to 12 mg / mL.

[11] The injectable formulation described in [1], wherein one or more of the liposomes have a diameter of 50 nm to 100 μm.

[12] The injectable formulation described in [6], wherein one or more of the liposomes have a diameter of 100 nm to 150 μm.

[13] The injectable formulation according to [1], wherein the liposomes disintegrate at a temperature of 35 to 45°C.

[14] The injectable formulation of [1], wherein at least a portion of the adenosine is released within 1 second to 1 hour after administration to a joint of an individual.

[15] The injectable formulation of

[14] , wherein at least a portion of the adenosine is released within 1 minute to 1 hour after administration to a joint of an individual.

[16] The injectable formulation of

[15] , wherein at least 1-20% of the adenosine is released within 1 minute to 1 hour after administration to a joint of an individual.

[17] The injectable formulation of

[14] , wherein at least a portion of the adenosine, or at least 1 to 20% of the adenosine, is released within 1 second to 10 minutes after administration to a joint of an individual.

[18] A method for i) inducing cartilage regeneration, and / or ii) reducing joint pain and / or inflammation, and / or iii) slowing and / or halting and / or reversing progressive structural tissue damage, comprising administering to an individual an injectable formulation according to [1], wherein: A method in which i) cartilage regeneration is induced, and / or ii) joint pain and / or inflammation is reduced or partially reduced, and / or iii) progressive structural tissue damage is slowed or partially slowed and / or halted or partially halted and / or reversed or partially reversed.

[19] The method of

[18] , wherein the injectable formulation is administered by intra-articular injection into a joint of the individual.

[20] The method of

[18] , wherein the injectable formulation is administered in one or more injections. [twenty one] The method according to

[18] , wherein the injectable formulation is administered multiple times, each administration being given once every 10 days. [twenty two] The method according to

[18] , wherein the individual has osteoarthritis, rheumatoid arthritis, acute gouty arthritis, and / or synovitis. [twenty three] The method according to

[19] , wherein the individual is a human or non-human mammal.

Claims

1. An injectable formulation comprising a physiological saline solution and a liposome comprising one or more lamellae, wherein the lamellae of the liposome comprise 70-100% by weight of sphingomyelin, and when the lamellae comprise less than 100% by weight of sphingomyelin, the remainder is 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) and 1,2-dimyristoyl-sn-glycero-3-phosphorylglycerol (DMPG), the ratio of DMPC to DMPG being 6:4 to 8:2; wherein the liposome is (a) having a diameter of 50 nm to 150 μm; and (b) encapsulating adenosine in the aqueous compartment of the liposome; Where: The concentration of adenosine is 1 mg / mL or more and less than 3 mg / mL. Injectable formulations.

2. The injectable formulation of claim 1 , wherein the liposomes are metastable.

3. 2. The injectable formulation of claim 1, wherein adenosine or a portion thereof is released for up to two weeks.

4. The injectable formulation of claim 1 further comprising an excipient.

5. 2. The injectable formulation of claim 1, which is suitable for intra-articular injection.

6. 2. The injectable formulation of claim 1, wherein the ratio of DMPC to DMPG is 7:

3.

7. 2. The injectable formulation of claim 1, wherein one or more of the liposomes have a diameter of from 50 nm to 100 μm.

8. 2. The injectable formulation of claim 1, wherein one or more of the liposomes have a diameter of from 100 nm to 150 μm.

9. 2. The injectable formulation of claim 1, wherein the liposomes collapse at a temperature of 35-45°C.

10. 2. The injectable formulation of claim 1, wherein at least a portion of the adenosine is released within 1 second to 1 hour after administration to a joint of an individual.

11. 11. The injectable formulation of claim 10, wherein at least a portion of the adenosine is released within 1 minute to 1 hour after administration to a joint of an individual.

12. 12. The injectable formulation of claim 11, wherein at least 1-20% of the adenosine is released within 1 minute to 1 hour after administration to a joint of an individual.

13. 11. The injectable formulation of claim 10, wherein at least a portion of the adenosine, or at least 1-20% of the adenosine, is released within 1 second to 10 minutes after administration to a joint of an individual.

14. 14. The injectable formulation according to any one of claims 1 to 13, wherein the injectable formulation is administered to an individual to i) induce cartilage regeneration, and / or ii) reduce joint pain and / or inflammation, and / or iii) slow and / or stop and / or reverse progressive structural tissue damage.

15. The injectable formulation according to any one of claims 1 to 14, wherein the injectable formulation is administered by intra-articular injection into a joint of an individual.

16. The injectable formulation according to any one of claims 1 to 15, wherein the injectable formulation is administered in one or more injections.

17. The injectable formulation of any one of claims 1 to 16, wherein the injectable formulation is administered multiple times, each administration occurring once every 10 days.

18. The injectable formulation of any one of claims 1 to 17, administered to an individual with osteoarthritis, rheumatoid arthritis, acute gouty arthritis, and / or synovitis.

19. The injectable formulation according to any one of claims 1 to 18, which is administered to an individual selected from a human or a non-human mammal.