Preparation of Cyclosporin Derivatives

The reaction of cyclosporin compounds with amino alcohols using copper triflate and trimethylsilyl chloride addresses the scalability and reproducibility issues of existing methods, achieving efficient production of cyclosporin derivatives with minimal by-products.

JP7761578B2Active Publication Date: 2025-10-28FARSIGHT MEDICAL TECH (SHANGHAI) CO LTD
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Patent Information

Application Number
JP2022556477
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-01
Filing Date
2021-03-25
Publication Date
2025-10-28
Estimated Expiration
2041-03-25

AI Technical Summary

Technical Problem

Existing methods for preparing cyclosporin derivatives, such as Compound 1, are not scalable and suffer from poor reproducibility due to the use of molecular sieves, which are impractical for production-scale processes.

Method used

A method involving the reaction of a cyclosporin compound with an amino alcohol in the presence of a copper salt, such as copper triflate, and a trialkylsilyl halide, such as trimethylsilyl chloride, eliminates the need for molecular sieves, enhancing the reaction efficiency and yield.

Benefits of technology

This method improves the conversion of cyclosporin compounds to their derivatives with reduced by-product formation, making it suitable for large-scale production and maintaining high yields.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a process for the preparation of cyclosporin derivatives.
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Description

[Background technology]

[0001] Cyclosporin A is a compound well known for its immunosuppressive properties. Derivatives of cyclosporin A, including derivatives with modifications at the sarcosine residue, have also been synthesized and investigated for their biological properties.

[0002] For example, U.S. Patent No. 6,583,265 describes the preparation of cyclosporine compounds with sarcosine substitution. Cyclosporine compounds substituted with an "-O-R" substituent at the sarcosine position can be prepared by exchanging the sarcosine substituent "-S-R," and it is disclosed that such an exchange reaction is carried out using a metal salt, a Lewis acid, or a Bronsted acid. Regarding the preparation of the compound [D-Sar-(2-N,N-dimethylaminoethoxy))3]-cyclosporine, it is disclosed that this can be prepared by reacting N,N-dimethylaminoethanol with 3-(mercaptobenzthiazol-2-ylthio)-cyclosporine in the presence of camphorsulfonic acid. U.S. Patent No. 6,583,265 does not disclose the yield of the preparation of this compound.

[0003] WO 2019 / 016572 also discloses a method for preparing this compound, Compound 1. JPEG0007761578000001.jpg95125

[0004] According to WO 2019 / 016572, compound 1 can be obtained by reacting a thiopyridyl cyclosporin A intermediate with dimethylaminoethanol in the presence of copper triflate and molecular sieves. This method is said to overcome the poor reproducibility observed when following the methodology of U.S. Pat. No. 6,583,265. Molecular sieves are used as a desiccant. However, while molecular sieves can be used in a laboratory environment, they are neither preferred nor practical for production-scale processes.

[0005] It is therefore an object of the present invention to provide an improved, scalable method for preparing Compound 1 and related analogs. Further objects of the present invention will become apparent based on the following description, examples, and claims of the invention. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 6,583,265 [Patent Document 2] International Publication No. 2019 / 016572 Summary of the Invention

[0007] In a first aspect, the present invention provides a compound of formula 1a JPEG0007761578000002.jpg95125 or a pharmaceutically acceptable salt thereof, The method comprises reacting a compound of formula 2a JPEG0007761578000003.jpg90125 with an amino alcohol in the presence of a copper salt (e.g., copper triflate) and a trialkylsilyl halide.

[0008] In a further aspect, the present invention provides compound 1 JPEG0007761578000004.jpg88119 or a pharmaceutically acceptable salt thereof, The method comprises: JPEG0007761578000005.jpg130170 with dimethylaminoethanol in the presence of a copper salt, such as copper triflate, and a trimethylalkyl halide (such as trimethylsilyl chloride). DETAILED DESCRIPTION OF THE INVENTION

[0009] In a first aspect, the present disclosure provides a compound of formula 1a JPEG0007761578000006.jpg93125 (in formula R a is ethyl, 1-hydroxyethyl, isopropyl or n-propyl, R 1 and R 2 are independently selected from H, C1-C6 alkyl, or R 1 and R 2 are bonded together to form a C3-C6 cycloalkyl or heterocycloalkyl ring, R 3 and R 4 is independently selected from H, C1-C6 alkyl, substituted C1-C6 alkyl, aryl, substituted aryl, benzyl, carbonyl, carboxyl, sulfonyl, or R 3 and R 4 are bonded together to form a C3-C6 cycloalkyl or heterocycloalkyl ring, R 5 and R 6 are independently selected from H, C1-C6 alkyl, substituted C1-C6 alkyl, or R 5 and R 6 are bonded together to form a C3-C6 cycloalkyl or heterocycloalkyl ring or a pharmaceutically acceptable salt thereof, comprising: The method comprises reacting a compound of formula 2a with an amino alcohol in the presence of a copper salt and a trialkylsilyl halide. The compound of formula 2a is: JPEG0007761578000007.jpg88116 (in the formula, R a is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl; R b is aryl, substituted aryl, heteroaryl, or substituted heteroaryl and The amino alcohol is represented by formula 3 JPEG0007761578000008.jpg6773 (in the formula, R 1 , R 2 , R3 , R 4 , R 5 and R 6 is as defined for Equation 1) The present invention relates to a method for

[0010] In one embodiment, a cyclosporin compound, intermediate, or precursor compound according to the present disclosure is a cyclosporin A compound (R a In other embodiments, the cyclosporin compound according to the present disclosure is a cyclosporin C compound (R a is 1-hydroxyethyl), cyclosporin D compound (R a is isopropyl), or cyclosporin G compounds (R a is n-propyl).

[0011] Position numbering as used herein refers to the commonly used nomenclature and numbering of the 11 amino acid residues characteristic of the cyclosporine core. Based on cyclosporine A, the amino acid residues can be numbered as follows: methyl-butenyl-threonine (which can be abbreviated as MeBmt (1)), aminobutyric acid (2), sarcosine (which can be abbreviated as Sar (3)), N-methylleucine (4), valine (5), N-methylleucine (6), alanine (7), D-alanine (8), N-methylleucine (9), N-methylleucine (10), and N-methylvaline (11).

[0012] In a further aspect, the present disclosure provides a compound of formula 1b JPEG0007761578000009.jpg98133 or a pharmaceutically acceptable salt thereof, The method comprises reacting a compound of formula 2b with an amino alcohol in the presence of a copper salt and a trialkylsilyl halide; The compound of formula 2b is: JPEG0007761578000010.jpg94126.

[0013] As used herein, the term "H" refers to hydrogen. As used herein, the term "C1-C6 alkyl" is defined as a saturated or unsaturated alkyl hydrocarbon moiety containing 1 to 6 carbon atoms in any isomeric arrangement. Included are straight-chain, linear alkyls, such as methyl, ethyl, n-propyl, n-butyl, 1-pentyl, and n-hexyl. Also included are branched alkyls (i.e., branched C3-C6 alkyls), such as isopropyl, sec-butyl, isobutyl, tert-butyl, 2-pentyl, 3-pentyl, isopentyl, tert-pentyl, neopentyl, and hexyl isomers. Also included within the definition of "C1-C6 alkyl" are cyclic isomers such as cyclopropyl, cyclobutyl, cyclopentyl, and cyclohexyl. Examples of unsaturated C1-C6 alkyls include, but are not limited to, vinyl, allyl, butenyl, pentenyl, and hexenyl, as well as other alkenyl or alkylene moieties containing, for example, one or more double bonds, such as pentadienyl. The term "C3-C6" should be understood similarly, but refers to moieties containing a range of 3 to 6 carbon atoms.

[0014] In one embodiment, a C1-C6 alkyl substituent is an unsubstituted hydrocarbon moiety as defined above. In any embodiment, the C1-C6 alkyl is optionally substituted with one or more substituents, whereby one or more hydrogen atoms are replaced by the substituent or a bond to a non-hydrogen moiety.

[0015] The term "substituted," such as substituted alkyl (e.g., substituted C1-C6 alkyl), can refer to a moiety or radical in which one or more hydrogens are independently replaced with at least one or more (e.g., two, three, or more) substituents, such as halogen, haloalkyl, hydroxyl (-OH), C1-C6 alkoxyl, amino (-NH2), monoalkylamino, dialkylamino, thioalkyl, nitro, cyano, carbonyl, carboxylalkoxycarbonyl, aryl, and heteroaryl.

[0016] The term "halogen" is interchangeable with "halo" or "halide" and can refer to chloro, bromo, iodo, or fluoro atoms. "Haloalkyl" refers to an alkyl substituent in which one or more hydrogen atoms are replaced by one or more halogen atoms. An example of a haloalkyl is a trifluoroalkyl, such as trifluoromethyl.

[0017] The term "hydroxyl" refers to the -OH radical. In some embodiments, the hydrogen may be replaced with, for example, a hydroxy protecting group within the art. Terms such as "alkoxyl" refer to an alkylated hydroxyl substituent, i.e., the hydrogen has been replaced with an alkyl group. "C1-C6 alkoxy" refers to the replacement of the hydroxy hydrogen with a C1-C6 alkyl, as defined above. Examples include methoxy, isopropoxy, phenoxy, or t-butoxy.

[0018] The term "amino" may refer to the -NH2 radical. In some embodiments, the hydrogen may be replaced with one or more further substituents, such as, for example, a protecting group or an alkyl. The term "monoalkylamino" refers to an amino radical in which one of the hydrogens is replaced with an alkyl, for example, a C1-C6 alkyl as defined above (i.e., -NHR, where R is alkyl). "Dialkylamino" refers to an amino radical in which both hydrogens are independently replaced with an alkyl (i.e., -NRR', where R and R' are alkyl and can be the same (e.g., dimethylamino) or different). "Thioalkyl" may refer to the radical -SR'' where R'' is alkyl, for example, a C1-C6 alkyl as defined above. The term "carbonyl" refers to the radical -C(O)-R c where R c may be selected from hydrogen, alkyl, aryl, hetaryl, hydroxy, alkoxy (e.g., —OCH), amino, alkylamino, dialkylamino, thioalkyl, etc. The term “alkoxycarbonyl” or “carboxyl” refers to the radical —OC(O)—R c where R c is selected from alkyl (eg, C1-C6 alkyl, eg, methyl, tert-butyl), aryl, hetaryl, alkoxy, amino, alkylamino, dialkylamino, thioalkyl, and the like.

[0019] In some embodiments, two adjacent R 1 and R 2 Substituent (or adjacent R 5 or R 6 Substituents) may be bonded together to form a ring, for example, a C3-C6 cycloalkyl ring. As used herein, "cycloalkyl" refers to a saturated or unsaturated non-aromatic hydrocarbon ring. Adjacent R 1 and R 2 Substituent (or adjacent R 5 or R 6Examples of moieties formed by two adjacent R 1 and R 2 Substituent (or adjacent R 5 or R 6 substituents) are linked to form a cyclopropyl ring.

[0020] The term "hetero," when used to describe a compound or substituent, means that one or more carbon atoms have been replaced with an oxygen, nitrogen, or sulfur atom. In a further embodiment of the present disclosure, R 1 and R 2 adjacent substituents such as, or the substituent R 5 and R 6 are joined together to form a heterocycloalkyl ring, e.g., a C3-C6 heterocycloalkyl ring. Unless otherwise indicated, "heterocycloalkyl" refers to a saturated or unsaturated non-aromatic ring forming at least part of the ring structure, in which at least one or more carbon atoms is replaced with an oxygen, nitrogen, or sulfur atom (and in the case of a C3-C6 heterocycloalkyl containing 3 to 6 carbon atoms). For example, the substituent R 1 and R 2 or a substituent R 5 and R 6 may be joined together to form a 4-, 5-, or 6-membered saturated non-aromatic ring containing at least one heteroatom. The heterocycloalkyl ring may contain at least one heteroatom selected from O, N, or S.

[0021] Substituent R of compounds of formula 1a, 1b, 2a or 2b a may be selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl. a is selected from the group consisting of 1-hydroxyethyl, isopropyl, and n-propyl. a is ethyl.

[0022] In one embodiment of the disclosed method, R as defined in the formula herein1 and R 2 are both hydrogen. In another embodiment, R 1 or R 2 In a further embodiment, at least one of R 5 and R 6 At least one of R is hydrogen. 5 and R 6 and R are both hydrogen. In yet another embodiment of the method according to the present disclosure, 5 is C1-C6 alkyl (e.g., methyl), and R 6 is H (hydrogen). In a further embodiment, R 1 R 2 , R 5 and R 6 are all selected as hydrogen.

[0023] In an embodiment according to the present disclosure, R of formula 3 and R 4 are independently selected from H, C1-C6 alkyl, substituted C1-C6 alkyl, aryl, substituted aryl, benzyl, carbonyl, carboxyl, sulfonyl, or R 3 and R 4 are joined together to form a C3-C6 cycloalkyl or heterocycloalkyl ring. In a preferred embodiment, R 3 and R 4 and R are both -CH3 (methyl). In another embodiment of the method, R is as defined in the formulas herein. 3 and R 4 In still further embodiments, at least one of R 3 and R 4 At least one of the groups is a carbonyl or carboxyl substituent, such as tert-butoxycarbonyl, or the like, which can be used to protect the nitrogen group but can be later removed to allow further functionalization of the nitrogen atom.

[0024] In another embodiment, R 3 and R 4are bonded together to form a C3-C6 cycloalkyl or heterocycloalkyl ring. For example, the substituent R 3 and R 4 may be joined together to form a 4-, 5-, or 6-membered saturated non-aromatic ring. In the context of compounds of the formula of the present invention, adjacent R 3 and R 4 The cycloalkyl ring formed by the substituents can include, for example, azetidine, pyrrolidine, or piperidine. The heterocycloalkyl ring can be a saturated or unsaturated non-aromatic ring that forms at least part of the ring structure, and at least one or more carbon atoms in the ring structure can be selected from the R 3 and R 4 In addition to the nitrogen to which it is attached, the substituent R is replaced by an oxygen, nitrogen, or sulfur atom. 3 and R 4 may be joined together to form a 4-, 5-, or 6-membered saturated non-aromatic ring containing at least one additional heteroatom relative to the nitrogen atom to which they are attached, e.g., at least one additional heteroatom selected from O, N, or S. In one embodiment, R 3 and R 4 are linked together to form a morpholine residue. 3 and R 4 The cycloalkyl or heterocycloalkyl moiety formed by may be substituted with one or more substituents, as defined above, in which one or more hydrogen atoms are replaced with a bond to the substituent.

[0025] Trialkylsilyl halides as defined in the present invention are of the formula R 7 R 8 R 9 SiX (wherein, R 7 , R 8 , R 9 is selected from alkyl substituents (e.g., C1-C6 alkyl) and X is a halide, preferably chloride. 7 , R 8 , R 9are the same alkyl substituent. In a preferred embodiment, the trialkylsilyl halide used in the method according to the present disclosure is trimethylsilyl chloride (TMSCl, or (CH3)SiCl). In one embodiment, a compound of formula 2a or 2b can be reacted with an amino alcohol of formula 3, as defined herein, in the presence of 1.0 to 3 equivalents or 1.8 to 2.4 equivalents of a trialkylsilyl halide, such as trimethylsilyl chloride. In another embodiment, the described reaction process can be carried out in the presence of 1.8 to 2.4 equivalents of a trialkylsilyl halide, such as trimethylsilyl chloride.

[0026] The use of a trialkylsilyl halide, such as TMSCl (trimethylsilyl chloride), has been found to increase the conversion and yield of the desired reaction product and reduce the loss of starting material (e.g., compound 2, or compounds of formula 2a or 2b), particularly to the formation of hydrolysis adducts, such as Sar-3-hydroxycyclosporin. Surprisingly, the reaction can consequently be carried out in the absence of molecular sieves (e.g., 3 Å or 4 Å) or similar types of drying agents.

[0027] The compound of formula 2a or 2b is reacted with 3 to 5 equivalents of a compound of formula 3 JPEG0007761578000011.jpg7777 (in the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 is as defined herein. In one embodiment, the compound of formula 2a or 2b is reacted with 4 to 5 equivalents of an amino alcohol.

[0028] In one embodiment, the amino alcohol compound is an amino ethanol compound, wherein R 5 , R 6 , R 1 and R 2 is selected as hydrogen. In a preferred embodiment, the amino alcohol is dimethylaminoethanol. In another embodiment, R 3or R 4 At least one of R is selected from C1-C6 alkyl, such as methyl, ethyl, propyl, isopropyl, n-butyl, sec-butyl, and tert-butyl. 3 or R 4 At least one of the groups may be selected from more labile substituents, such as carbonyl or carboxyl residues, which can optionally be removed in downstream processing steps, for example for further functionalization of the amino substituent.

[0029] According to the method disclosed herein, a compound of Formula 2a or 2b, or compound 2, is reacted with an aminoalcohol compound of Formula 3 in the presence of a copper salt. The copper salt may be a copper(II) salt. In a preferred embodiment, the copper salt is copper triflate. The copper salt, e.g., copper triflate, is preferably substantially anhydrous and, in one embodiment of the method, may be subjected to a pretreatment before use in the reaction to remove any traces of residual water or acid, for example, by vacuum drying, optionally at elevated temperature.

[0030] In one embodiment of the method according to the present disclosure, a compound of formula 2a or 2b is reacted with an amino alcohol in the presence of 3 to 4 equivalents of a copper salt. In a preferred embodiment, the copper salt used in the method according to the present disclosure is copper triflate. In one embodiment, the amount of copper salt (e.g., copper triflate) used in the method is 3.6 equivalents relative to the compound of formula 2a or 2b.

[0031] In one specific embodiment of the methods disclosed herein, a compound of formula 1a or 1b is prepared by reacting a compound of formula 2a or 2b with 3 to 5 equivalents (e.g., 4.2 equivalents) of an amino alcohol of formula 3 in the presence of 1.8 to 2.4 equivalents (e.g., 2.4 equivalents) of trimethylsilyl chloride and 3 to 4 equivalents (e.g., 3.6 equivalents) of copper triflate.

[0032] With respect to compounds of formula 2a or 2b, the substituent R b can be aryl, substituted aryl, or heteroaryl or substituted heteroaryl.

[0033] The term "aryl," as used herein, refers to a carbocyclic ring system having one (monocyclic) or more (e.g., bicyclic) aromatic rings; examples may include, but are not limited to, phenyl, naphthalenyl, anthracenyl, and the like. The aryl ring radical may be attached to the sulfur atom of formula 2a or 2b at any one of its ring atoms. The term "substituted" aryl refers to an aryl moiety or radical in which one or more hydrogen atoms are independently replaced with at least one or more (e.g., two, three, or more) substituents, including, but not limited to, C1-C6 alkyl, halogen, haloalkyl, hydroxyl (—OH), C1-C6 alkoxyl, amino (—NH2), monoalkylamino, dialkylamino, thioalkyl, nitro, cyano, carboxylalkoxycarbonyl, aryl, and heteroaryl. The substituent may feature any one of the ring atoms of the aryl moiety that is not bound to the compound.

[0034] The term "heteroaryl" refers to a cyclic aromatic ring system having one or more (e.g., bicyclic) aromatic rings in which one of the ring atoms is replaced with at least one atom selected from S, O, and N, and the remaining atoms are carbon. A cyclic aromatic ring system may contain, for example, 5 to 10 ring atoms and may include one, two, or more rings. A "substituted heteroaryl" refers to a heteroaryl moiety in which one or more hydrogen atoms are independently replaced with at least one or more (e.g., two, three, or more) substituents as defined herein. The heteroaryl radical may be attached to the compound at any of the ring atoms of the compound. Examples of heteroaryl substituents include, but are not limited to, pyridine, pyrimidine, pyrazine, thiazole, oxazole, benzothiazole, benzimidazole, furan, quinoline, pyrazole, and imidazole, which may be optionally substituted.

[0035] In a further embodiment of the process according to the invention, the process for preparing a compound of formula 1a, 1b or compound 1 may comprise reacting a compound of formula 2a with an amino alcohol in the presence of a copper salt, such as copper triflate, and a trialkylsilyl halide, to give a compound of formula 2a having the formula: JPEG0007761578000012.jpg109168 (in the formula, R a is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl, and the amino alcohol compound and trialkylsilyl halide are defined according to any one or combination of embodiments described herein. Preferably, R a is ethyl. In a related embodiment, the copper salt is copper triflate and the trialkylsilyl halide is trimethylsilyl chloride.

[0036] In yet another embodiment of the process according to the invention, the process for preparing a compound of formula 1a, 1b or compound 1 may comprise reacting a compound of formula 2b with an amino alcohol in the presence of a copper salt and a trialkylsilyl halide, to give the compound: JPEG0007761578000013.jpg110170 (in the formula, R a is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl, and the amino alcohol compound and trialkylsilyl halide are defined according to any one or combination of embodiments described herein. Preferably, R a is ethyl. In a related embodiment, the copper salt is copper triflate and the trialkylsilyl halide is trimethylsilyl chloride.

[0037] The present disclosure further provides Compound 1 1. A process for the preparation of JPEG0007761578000014.jpg88123 or a pharmaceutically acceptable salt thereof, comprising: The method is as follows: JPEG0007761578000015.jpg91121 with dimethylaminoethanol in the presence of a copper salt and a trialkylsilyl halide.

[0038] In a preferred embodiment of this method, the copper salt is a copper(II) salt such as copper triflate and the trialkylsilyl halide is trimethylsilyl chloride.

[0039] In another embodiment of this method, 3 to 5 equivalents of dimethylaminoethanol are reacted with compound 2. In another embodiment, 4 to 5 equivalents of dimethylaminoethanol are used. The amount of copper salt, e.g., copper triflate, used can be 3 to 4 equivalents. In a particular embodiment, the amount of copper salt, e.g., copper triflate, used in the reaction process is 3.6 equivalents. In a further embodiment, compound 2 is reacted with dimethylaminoethanol in the presence of 1.8 to 2.4 equivalents of a trialkylsilyl halide, e.g., trimethylsilyl chloride.

[0040] In a specific embodiment of this method, compound 2 is reacted with 4.2 equivalents of dimethylaminoethanol in the presence of 2.4 equivalents of trimethylsilyl chloride and 3.6 equivalents of copper triflate.

[0041] As used herein, the term "equivalent" refers to a molar equivalent relative to compound 2, or a compound of formula 2a or 2b.

[0042] In one embodiment, the process according to the present invention is carried out in anhydrous THF (tetrahydrofuran) as a reaction solvent or medium. The reaction may be carried out under an inert atmosphere. The reaction may be carried out at room temperature (e.g., 20-25°C). Preferably, the reaction is carried out under substantially anhydrous conditions. Optionally, any one of the reagents, intermediates, or starting materials may be dried or treated to remove traces of water before being introduced into the reaction process.

[0043] In a further aspect, the present disclosure relates to a method for the preparation of a compound of formula 1a or a compound of formula 1b, Compound 1, or a salt thereof, the method comprising: a) reacting cyclosporin A with a disulfide compound (e.g., pyridyl disulfide) in the presence of a base; and b) reacting the product of step a) with dimethylaminoethanol in the presence of a copper salt and a trialkylsilyl halide.

[0044] In the process, step b) may be carried out under any one or combination of reaction conditions defined herein and for the preparation of any of the compounds 1 of formula 1a, 1b, or any one of the compounds described in the Examples. When the process relates to the preparation of a compound of formula 1a or 1b, R a When is not ethyl but is selected from 1-hydroxyethyl, isopropyl and n-propyl, cyclosporin A in step a) can be replaced by cyclosporin C, D or G as appropriate.

[0045] The compounds and intermediates of the present disclosure may exist in various stereoisomeric forms and mixtures. In addition to the stereocenters designated or depicted in the formula, the present disclosure also includes their enantiomers, diastereomers, racemic or other mixtures, as well as polymorphs, solvates, hydrates, complexes, free forms, or salt forms. Unless otherwise indicated, compounds within the scope of the present disclosure that contain one or more asymmetric centers not designated or depicted in the formula or specifically designated / described may also include all enantiomers, diastereomers, or mixtures thereof, racemic or otherwise. The use of any optically pure or stereochemically pure stereoisomers, as well as any combination of stereoisomers, as determined by methods well known in the art, may also be included. Optionally, the compounds of the present invention may also include compounds in which atoms are replaced with isotopes thereof, such as isotopes of hydrogen with deuterium or carbon with carbon-13.

[0046] As defined herein, a pharmaceutically acceptable compound is a compound that is generally safe, non-toxic, not biologically or otherwise undesirable, tolerable, and compatible for pharmaceutical use in humans. Pharmaceutically acceptable salts are salts of a compound that retain its biological properties and are non-toxic and compatible for pharmaceutical use.

[0047] Compound 1, or compounds of formula 1a or 1b, can be obtained by a method according to any one or combination of the embodiments described herein. The general method described for the preparation of compound 1 can also be applied to the preparation of other or related cyclosporin analogs. These can include, for example, first reacting a cyclosporin compound (e.g., cyclosporin C, D, G, or other analogs) with dipyridyl disulfide to form a thiopyridyl intermediate (2'-(2-thiopyridyl)-Sar). 3 -cyclosporin C, or D, or G, etc., followed by a second step comprising reacting this intermediate with an amino alcohol compound in the presence of a copper salt, for example copper triflate, and a trialkylsilyl halide (such as TMSCl), according to embodiments described herein.

[0048] In a further aspect, the compounds prepared by the method defined in any one or combination of the above embodiments (i.e., Compound 1, or compounds of Formula 1a or 1b) can be used in the prevention and / or treatment of a disease or medical condition. They can further be used in the manufacture of a medicament for preventing and / or treating a disease or medical condition. Examples of diseases or conditions include, but are not limited to, diseases or conditions associated with cell, tissue, or organ damage.

[0049] The following examples serve to illustrate the invention, but they should not be understood as limiting the scope of the invention. Example

[0050] Example 1 - Preparation of Compound 1 Step 1: Compound 2 or [2'-(2-thiopyridyl)-Sar]3 -Cyclosporin A) can be prepared from cyclosporin A according to the general methods described in WO 2019 / 016572. JPEG0007761578000016.jpg86168

[0051] Step 2: The reaction of compound 2 with dimethylaminoethanol to prepare compound 1 was carried out under various conditions as outlined in Table 1 and analyzed by HPLC.

[0052] A solution of compound 2 (97.8% purity) and dimethylaminoethanol in anhydrous THF was prepared and added under an inert atmosphere to a suspension of copper triflate (vacuum dried) and, if present, molecular sieves or additional reagents in anhydrous THF. Prior to use, the copper triflate and molecular sieves were dried, for example, under vacuum. The resulting reaction mixture was stirred at room temperature for 16 hours, after which the reaction mixture was analyzed by HPLC.

[0053] JPEG0007761578000017.jpg78153JPEG0007761578000018.jpg70170

[0054] Although compound 1 can be prepared using methods according to the art in the presence of molecular sieves as a drying agent (Table 1, entry no. 1), it was observed that a significant amount of compound 2 was converted to Sar-3-hydroxycyclosporin A as a by-product (A). The production of a large amount of the undesired by-product is undesirable from a cost standpoint and because of the additional purification burden.

[0055] However, omitting molecular sieves from the reaction process did not reduce the conversion to the hydroxy adduct (see Table 1, entry 2). However, unexpectedly, it was found that the addition of a trialkylsilyl halide compound, i.e., trimethylsilyl chloride (TMSCl) as a reagent, could improve the efficiency of the conversion of compound 2 to compound 1 (see Table 1, entry 4). In contrast, the use of acetyl chloride as a water scavenger slowed the reaction rate and had no effect on further reducing the formation of the hydroxy by-product A (see Table 1, entry 3).

[0056] The addition of 1.8 to 2.4 equivalents of trimethylsilyl chloride (TMSCl) to the reaction mixture was found to improve the conversion efficiency of compound 2 to compound 1, even in the absence of molecular sieves as a drying agent. Less than approximately 10% of the hydroxycyclosporine by-product A was observed to be formed during the reaction (see Table 2).

[0057] JPEG0007761578000019.jpg63170

[0058] Improved reaction profiles were observed in comparative reaction runs conducted in the presence of TMSCl compared to molecular sieves (see Table 3), and these reactions were carried out using the same batch of compound 2 and reactants. The reactions were carried out under substantially anhydrous conditions. Prior to carrying out the reaction, compound 2 was dried under vacuum at 60°C, and Cu(OTf)2 and molecular sieves (4 Å) were dried under vacuum at 120°C for 4 hours.

[0059] Reaction 1: A solution of compound 2 and dimethylaminoethanol in THF was added to a flask containing Cu(OTf)2 and THF at 0° C. TMSCl was added and the reaction mixture was warmed to room temperature and stirred for 16 h.

[0060] Reaction 2: A solution of compound 2 and dimethylaminoethanol in THF was added to a flask containing Cu(OTf)2 and 4 Å molecular sieves in THF at 0° C. The reaction mixture was warmed to room temperature and stirred for 16 h.

[0061] The reaction was performed in duplicate. The crude reaction mixture was analyzed by HPLC (Thermo Hypersil GOLD™, diameter 250 × 4.6 mm, particle size 5 μm, column temperature 40 °C, phase A: 1000 mL HO + 0.5 mL formic acid / phase B: 1000 mL acetonitrile + 0.5 mL formic acid).

[0062] JPEG0007761578000020.jpg68170

[0063] The formation of hydroxycyclosporine by-product from compound 2 was observed to be significantly reduced when TMSCl was used as the additive instead of molecular sieves.

[0064] Example 2 - Preparation of Compound 1 (100 g scale)

[0065] A solution of compound 2 (100 g) and dimethylaminoethanol (28.54 g, 4.3 equiv.) in THF was added to a reaction vessel containing Cu(OTf)2 (dry, 99.26 g, 3.6 equiv.) and trimethylsilyl chloride (19.88 g, 2.4 equiv.) in anhydrous THF (total volume 1000 mL). The resulting reaction mixture was stirred at room temperature for 16 h. After 16 h, the reaction mixture was quenched with water. The crude reaction mixture was analyzed by HPLC (HPLC results: 66.3% compound 1, 6.1% A, 3.5% B, and 0% compound 2).

[0066] The aqueous phase was extracted with i-PrOAc. The organic phase was washed twice with aqueous malic acid solution. The aqueous phases were combined, adjusted to a pH of 8, and extracted again with i-PrOAc. The combined organic phases were washed with brine, dried over magnesium sulfate, concentrated, and purified by column chromatography to give 75.22 g of compound 1 (76.5% yield) (characterization is consistent with literature, e.g., WO 2019 / 016572 A1; 1 H-NMR (400 MHz CDCl3, δ (ppm)): 6.01, sarcosine resonance.

[0067] Example 3 - Preparation of Cyclosporine Analogues

[0068] The procedure described for the preparation of compound 1 in Example 2 was generally applied to prepare analog compounds based on other amino alcohol intermediates (see Table 4). LC-MS analysis of the crude reaction mixtures demonstrated that the amount of hydroxycyclosporine A by-product formed remained low in all reactions. JPEG0007761578000021.jpg52170

[0069] TIFF0007761578000022.tif94170

[0070] Additional compounds are prepared based on the methodology of Example 2 as follows: Cu(OTf)2 catalyst (5.0 g, 16.39 mmol) was placed in 15 mL of THF and cooled to 0 °C. A solution of compound 2 (5.0 g, 3.81 mmol) and amino alcohol compound G25 (1.9 g, 16.39 mmol) in 35 mL of THF was added to the flask. TMSCl (1.0 g, 9.15 mmol) was finally added dropwise to the mixture. The mixture was then stirred at 20–25 °C. After 16 h, the reaction mixture was poured into 150 mL of water. The pH was adjusted to 10 by adding aqueous K2CO3 solution. i-PrOAc (50 mL) was added to the mixture, and the insoluble material was filtered off. The filtrate was extracted with i-PrOAc (50 mL × 2). The organic phase was washed twice with aqueous malic acid solution. The aqueous phases were combined, adjusted to pH 8, and extracted again with i-PrOAc. The organic phase was washed with brine, dried over magnesium sulfate, and concentrated to give 1.4 g of compound 3. The product was further purified by chromatography. Compound 3(( 1 H-NMR (400 MHz CDCl, δ (ppm)): 5.90, sarcosine residue; HRMS electrospray (M+1) 1317.80; 1318.70; mass from isotopic distribution 1316.94 (100%), 1317.94 (73.5%).

[0071] Compound 4 was prepared under similar conditions by reaction of compound 2 with amino alcohol compound H25. Compound 4(( 1 H-NMR (400 MHz CDCl, δ (ppm)): 5.82, sarcosine residue; HRMS electrospray (M+1) 1315.70; 1316.60; mass from isotopic distribution: 1314.93 (100%), 1315.93 (73.5%).

[0072] JPEG0007761578000025.jpg66170 Compound 5: To a stirred solution of 2 (1 g) and R1 (338.2 mg) in 20 mL of THF, u(OTf)2 (1 g) was first added to the flask under N2 at 0 °C, followed by the addition of TMSCl (198 mg). The mixture was then stirred at room temperature under N2 for 16 h. The resulting mixture was poured into 20 mL of water, and then 20 mL of i-PrOAc was added. The aqueous phase was adjusted to pH 8.0 by the addition of aqueous K2CO3 solution. The aqueous phase was separated and extracted with another portion of i-PrOAc. The combined organic phase was washed twice with aqueous malic acid (840 mg of malic acid in 20 mL of water). After phase separation, the aqueous phase was adjusted to pH 8.0 by the addition of aqueous K2CO3 solution. The aqueous solution was then extracted twice with 20 mL of i-PrOAc. The organic phase was dried and concentrated to give 340 mg of the desired compound 5. Compound 5: (( 1 H-NMR (400 MHz CDCl, δ (ppm)): 6.08, sarcosine residue; HRMS electrospray (M+1) 1303.7; 1304.6; mass from isotopic distribution: 1302.93 (100%), 1303.93 (72.5%).

[0073] JPEG0007761578000026.jpg64161 Compound 6 was similarly prepared from compound 2 and R2 according to the general method described above for compound 5, and obtained after further purification by chromatography. Compound 6(( 1H-NMR (400 MHz CDCl, δ (ppm)): 6.31, sarcosine residue; HRMS electrospray (M+1) 1303.4, 1304.6; mass from isotopic distribution: 1302.93 (100%); 1303.93 (72.5%).

Claims

1. Formula 1a (In the ceremony R a is ethyl, 1-hydroxyethyl, isopropyl or n-propyl, R 1 and R 2 are independently H, C 1 ~C 6 alkyl, or R 1 and R 2 are bonded together to form C 3 ~C 6 forming a cycloalkyl or heterocycloalkyl ring, R 3 and R 4 are independently H, C 1 ~C 6 Alkyl, substituted C 1 ~C 6 alkyl, aryl, substituted aryl, benzyl, carbonyl, carboxyl, sulfonyl, or R 3 and R 4 are bonded together to form C 3 ~C 6 forming a cycloalkyl or heterocycloalkyl ring, R 5 and R 6 are independently H, C 1 ~C 6 Alkyl, substituted C 1 ~C 6 alkyl, or R 5 and R 6 are bonded together to form C 3 ~C 6 forming a cycloalkyl or heterocycloalkyl ring), or a pharmaceutically acceptable salt thereof, comprising: The method comprises reacting a compound of formula 2a with an amino alcohol in the presence of a copper salt and a tri(C 1 -C 6 alkyl)silyl halide. The compound of formula 2a is: (In the formula, R a is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl; R b is aryl, substituted aryl, heteroaryl, or substituted heteroaryl and The amino alcohol has formula 3: (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 is as defined for formula 1a) The method is as follows.

2. The method comprises reacting a compound of formula 1b or a pharmaceutically acceptable salt thereof, the method comprising reacting a compound of formula 2b with an amino alcohol in the presence of a copper salt and a tri(C 1 -C 6 alkyl)silyl halide; The compound of formula 2b is: The method of claim 1, wherein

3. R b 3. The method of claim 1 or 2, wherein is a heteroaryl or substituted heteroaryl substituent.

4. The compound of formula 2a is: and R a 2. The method of claim 1, wherein is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl.

5. The compound of formula 2b is: and R a 3. The method of claim 2, wherein is selected from ethyl, 1-hydroxyethyl, isopropyl, and n-propyl.

6. R 1 and R 2 are both hydrogen, or R 1 or R 2 At least one of the following is C 1 ~C 6 alkyl, or R 1 and R 2 are bonded together to form C 3 ~C 6 The method according to any one of claims 1 to 5, wherein a cycloalkyl or heterocycloalkyl ring is formed.

7. R a The method according to any one of claims 1 to 6, wherein is ethyl.

8. R 3 and R 4 at least one of is methyl, or R 3 and R 4 are both methyl, or R 3 and R 4 at least one of R is a carbonyl or carboxyl substituent, or R 3 and R 4 are bonded together to form C 3 ~C 6 The method according to any one of claims 1 to 7, wherein a cycloalkyl or heterocycloalkyl ring is formed.

9. R 5 and R 6 at least one of is hydrogen, or R 5 and R 6 are both hydrogen, or R 5 is C 1 ~C 6 alkyl, and R 6 The method of any one of claims 1 to 8, wherein is H.

10. The method according to any one of claims 1 to 9, wherein the amino alcohol is dimethylaminoethanol.

11. reacting the compound of formula 2a with the amino alcohol in the presence of 3 to 4 equivalents of a copper salt, optionally with 3 to 5 equivalents of the amino alcohol; and / or The method of any one of claims 1, 3-4, 6-10, wherein the compound of formula 2a is reacted with the amino alcohol in the presence of 1.8 to 2.4 equivalents of a tri(C 1 -C 6 alkyl)silyl halide.

12. Reacting the compound of formula 2b with the amino alcohol in the presence of 3 to 4 equivalents of a copper salt, and optionally with 3 to 5 equivalents of the amino alcohol; and / or The method of any of claims 2 or 5, wherein the compound of formula 2b is reacted with the amino alcohol in the presence of 1.8 to 2.4 equivalents of a tri(C 1 -C 6 alkyl)silyl halide.

13. the tri(C 1 -C 6 alkyl)silyl halide is trimethylsilyl chloride, and / or 13. The method of any of claims 1 to 12, wherein the copper salt is a copper(II) salt, and optionally the copper salt is copper triflate.

14. Compound 1 or a pharmaceutically acceptable salt thereof, comprising: The method comprises: of, a copper salt, optionally wherein the copper salt is a copper(II) salt; and tri(C 1 -C 6 alkyl)silyl halide, optionally wherein said tri(C 1 -C 6 alkyl)silyl halide is trimethylsilyl chloride; with dimethylaminoethanol in the presence of Optionally, the reaction is carried out in the absence of molecular sieves.

15. 15. The method of claim 14, wherein compound 2 is reacted with 4.2 equivalents of the dimethylaminoethanol in the presence of 2.4 equivalents of trimethylsilyl chloride and 3.6 equivalents of copper triflate.

16. Compound 1 or a salt thereof, comprising: The method comprises: a) reacting cyclosporin A with a disulfide compound in the presence of a base; b) reacting the product of step a) with dimethylaminoethanol in the presence of a copper salt and a tri(C 1 -C 6 alkyl)silyl halide; A method comprising:

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