Method for preparing diastereomers and solid-phase photosensitizers

The recycle HPLC system with a solid-phase photosensitizer effectively enhances the yield of desired diastereomers by continuously cycling through separation and photoisomerization, addressing the inefficiencies of traditional methods.

JP7748689B2Active Publication Date: 2025-10-03TOKYO UNIVERSITY OF SCIENCE +1
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Patent Information

Application Number
JP2024544195
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-09-01
Filing Date
2023-08-25
Publication Date
2025-10-03
Estimated Expiration
2043-08-25

AI Technical Summary

Technical Problem

Existing methods struggle to selectively prepare one diastereomer from a diastereomeric mixture in high yield, often resulting in waste of the remaining diastereomer through separation techniques like chromatography.

Method used

A method utilizing a recycle HPLC system that continuously circulates between a separation column and a photoisomerization reactor, employing a solid-phase photosensitizer with a thioxanthone skeleton immobilized on a carrier via a linker, to induce a photoisomerization reaction, enhancing the yield of the desired diastereomer.

Benefits of technology

The method achieves high-yield production of the desired diastereomer by repeatedly cycling through separation and photoisomerization, improving efficiency and reducing waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention addresses the problem of providing: a diastereomer preparation method whereby it becomes possible to produce a desired diastereomer from a diastereomer mixture with high efficiency; and a solid-phase photosensitizer which is used in the diastereomer preparation method. The solution for the problem is a diastereomer preparation method in which one diastereomer among cis-trans isomers is selectively prepared utilizing recycle HPLC, the method comprising: a step A that is a separation step for introducing a cis-trans isomer mixture into the separation column to selectively collect one diastereomer; a step B that is a photoisomerization reaction step for irradiating a solution containing the other diastereomer which is obtained after the step A or C with light in the presence of a photosensitizer in a photoisomerization reactor to induce a photoisomerization reaction; and a step C that is a step for introducing a cis-trans isomer mixture produced in the step B into a separation column to selectively collect the one diastereomer.
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Description

[Technical Field]

[0001] The present invention relates to a method for preparing diastereomers and solid-phase photosensitizers. [Background technology]

[0002] It has been known that isomers have different properties. For example, the diastereomers of alkenes (E and Z isomers of cis-trans isomers) produced in the olefination reaction of carbonyl compounds have different physical properties. For example, in pharmaceuticals with an alkene skeleton, it is desirable to obtain one isomer in high purity during clinical trials and pharmaceutical manufacturing.

[0003] In light of this background, various synthetic methods for selectively preparing one diastereomer have been proposed (see, for example, Non-Patent Documents 1 and 2).

[0004] However, it is nearly impossible to selectively prepare only one diastereomer. Also, although separation of diastereomers has been attempted using chromatography, the remaining diastereomer is wasted. [Prior art documents] [Non-patent literature]

[0005] [Non-Patent Document 1] Y. Zhao et al., J. Am. Chem. Soc. 2015, 137,pp.5199-5203 [Non-patent document 2] Tetsuya Ezawa and six others, "Development of Diastereoconvergent (3+2) Cycloaddition Reactions", [online], June 10, 2021, RIKEN, [Retrieved August 19, 2022], Internet<URL:https: / / www.riken.jp / press / 2021 / 20210610_3 / index.html> Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present invention is to provide a method for preparing a diastereomer that can obtain a desired diastereomer from a diastereomeric mixture in high yield, and a solid-phase photosensitizer to be used in the method for preparing a diastereomer. [Means for solving the problem]

[0007] Specific means for solving the above problems include the following embodiments. <1> A method for selectively preparing one diastereomer of cis-trans isomers by using a recycle HPLC that can continuously circulate between a separation column for separating cis-trans isomers and a photoisomerization reactor for inducing a photoisomerization reaction, comprising the steps of: Step A: a separation step of introducing a cis-trans isomer mixture into the separation column and separating one of the diastereomers; Step B: a photoisomerization reaction step in which a solution containing the other diastereomer after Step A or Step C is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction; and Step C: A step of introducing the cis-trans isomer mixture produced in Step B into the separation column and separating one of the diastereomers. Including, The method for preparing a diastereomer, wherein the photosensitizer contains a thioxanthone skeleton represented by the following formula (1): [ka]

[0008] <2> the photosensitizer is a solid-phase photosensitizer in which a structure represented by the following formula (2) is immobilized on a carrier in the photoisomerization reactor by a covalent bond via a linker: <1> The method for preparing diastereomers described in [ka] [In formula (2), R 1represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different from each other.

[0009] <3> The linker has a functional group including an alkylene group, an arylene group, an -NR-C(O)- group (wherein R independently represents a hydrogen atom, an alkyl group, or a substituted alkyl group), or a combination thereof. <2> The method for preparing diastereomers described in

[0010] <4> The solid-phase photosensitizer has a structure represented by the following formula (3): <3> The method for preparing diastereomers described in [ka] [In formula (3), R 1 and m are defined as in the formula (2). p represents an integer of 1 to 10, and q represents an integer of 2 to 10. X represents a carrier.]

[0011] <5> The photosensitizer is represented by the following formula (4): <1> The method for preparing diastereomers described in [ka] [In formula (4), R 1 represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different. r represents an integer of 1 to 7. R 2 represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.]

[0012] <6> The step D is performed before the step A. <1> The method for preparing diastereomers described in Step D: A photoisomerization reaction step in which a solution containing only the other diastereomer of the cis-trans isomers is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction, thereby producing a cis-trans isomer mixture.

[0013] <7> The material of the support is silica, glass, or a polymer material, or a composite material thereof; <2> The method for preparing diastereomers described in

[0014] <8> The cis-trans isomer is a cis-trans isomer of an alkene having an amide group in the molecule. <1> The method for preparing diastereomers described in

[0015] <9> The alkene having an amide group in the molecule is a Weinreb amide. <8> The method for preparing diastereomers described in

[0016] <10> A solid-phase photosensitizer having a structure represented by the following formula (3): [ka] [In formula (3), R 1 represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different from each other. p represents an integer of 1 to 10, and q represents an integer of 2 to 10. X represents a carrier.

[0017] <11> A method for producing a solid-phase photosensitizer having a structure represented by the following formula (3): A step of reacting a compound represented by the following formula (5) with a dicarboxylic acid represented by the following formula (6) or an anhydride thereof to obtain a compound represented by the following formula (7); A method for producing a solid-phase photosensitizer, comprising the step of reacting a support having a structure represented by the following formula (8) with a compound represented by the following formula (7) to obtain a solid-phase photosensitizer having a structure represented by the following formula (3): [ka] [In formula (3), R 1 represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different from each other. p represents an integer of 1 to 10, and q represents an integer of 2 to 10. X represents a carrier. [ka] [In formula (5), R 1 and m have the same meanings as in formula (3). [ka] [In formula (6), p has the same meaning as in formula (3)] [ka] [In formula (7), R 1 , m, and p are defined as in formula (3). [ka] [In formula (8), q and X have the same meanings as in formula (3)]

[0018] <12> A compound represented by the following formula (4): [ka] [In formula (4), R 1 represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different. r represents an integer of 1 to 7. R 2 represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.] [Effects of the Invention]

[0019] According to the present invention, it is possible to provide a diastereomer preparation method that can obtain a desired diastereomer from a diastereomeric mixture in high yield, and a solid-phase photosensitizer used in the diastereomer preparation method. [Brief explanation of the drawings]

[0020] [Figure 1] FIG. 1 is a diagram showing an example of a schematic configuration of a recycling HPLC according to the present embodiment. [Figure 2] FIG. 1 shows the change over time in the abundance ratio of the other diastereomer when a photoisomerization reaction is carried out using the photosensitizer thioxanthone alone and a solid-phase photosensitizer obtained by covalently binding thioxanthone to a carrier. [Figure 3] FIG. 1 shows the change over time in the abundance ratio of the other diastereomer when a leaching test was conducted using the photosensitizer thioxanthone alone and a solid-phase photosensitizer obtained by covalently bonding thioxanthone to a carrier. [Figure 4] FIG. 1 is a diagram showing the time change in intensity of isomers detected by the diastereomer preparation system according to the present embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0021] <Diastereomer preparation method> The diastereomer preparation method according to this embodiment is a method for selectively preparing one diastereomer of cis-trans isomers by using a recycle HPLC that can continuously circulate between a separation column for separating cis-trans isomers and a photoisomerization reactor for inducing a photoisomerization reaction, and includes the following steps A to C. Step A: A separation step of introducing the cis-trans isomer mixture into the separation column and separating one diastereomer; Step B: a photoisomerization reaction step in which a solution containing the other diastereomer after Step A or Step C is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction; and Step C: A step of introducing the cis-trans isomer mixture produced in Step B into the separation column and separating one diastereomer.

[0022] The diastereomer preparation method according to this embodiment may include, in addition to the above-mentioned Steps A to C, the following Step D prior to the above-mentioned Step A. Step D: A photoisomerization reaction step in which a solution containing only the other diastereomer of the cis-trans isomers is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction, thereby producing a cis-trans isomer mixture.

[0023] (Mixture of cis-trans isomers) The cis-trans isomer mixture is not particularly limited as long as it is a compound that contains cis-trans isomers of E and Z isomers as defined by IUPAC based on atoms, bonds, or planes in the chemical structure.

[0024] Suitable cis-trans isomer mixtures include, for example, alkenes having an amide group in the molecule. Examples of alkenes having an amide group in the molecule include Weinreb amide shown in the following formula (9) and cinnamamide shown in the following formula (10). Note that the cis-trans isomer mixture is not limited to the above.

[0025] [ka] [In formula (9), R 3 represents a halogen atom, an optionally substituted alkyl group, an optionally substituted alkenyl group, an optionally substituted alkynyl group, an optionally substituted aryl group, an optionally substituted heteroaryl group, an optionally substituted arylalkyl group, or an optionally substituted heteroarylalkyl group. 4 represents a hydrogen atom or an alkyl group.

[0026] [ka]

[0027] In the above formula (9), R 3 Examples of the halogen atom represented by the formula (I) include a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom.

[0028] In the above formula (9), R 3 or R 4 Examples of the alkyl group represented by the formula (I) include linear, branched, or cyclic alkyl groups having 1 to 20 carbon atoms, such as a methyl group, an ethyl group, an n-propyl group, an isopropyl group, an n-butyl group, an isobutyl group, a sec-butyl group, a tert-butyl group, an n-pentyl group, an isopentyl group, a cyclopentyl group, an n-hexyl group, and a cyclohexyl group.

[0029] In the above formula (9), R 3 Examples of the alkenyl group represented by the formula (I) include linear or branched alkenyl groups having 2 to 20 carbon atoms, such as a vinyl group, an allyl group, a propenyl group, an isopropenyl group, a butenyl group, an isobutenyl group, a 1,3-butadienyl group, a pentenyl group, and a hexenyl group.

[0030] In the above formula (9), R 3 Examples of the alkynyl group represented by the formula (I) include linear or branched alkynyl groups having 2 to 20 carbon atoms, such as ethynyl, propynyl, butynyl, pentynyl, and hexynyl.

[0031] In the above formula (9), R 3 Examples of the aryl group represented by the formula (I) include monocyclic or polycyclic aromatic hydrocarbon groups having 6 to 20 carbon atoms. Specific examples of the aryl group include a phenyl group, a naphthyl group, an anthryl group, a phenanthryl group, and a pyrenyl group.

[0032] In the above formula (9), R 3Examples of the heteroaryl group represented by the formula (I) include monocyclic or polycyclic aromatic heterocyclic groups having 2 to 9 ring carbon atoms and containing 1 to 4 heteroatoms selected from oxygen, sulfur, and nitrogen atoms. Specific examples of the heteroaryl group include a pyrrolyl group, a pyridyl group, an imidazolyl group, a pyrazolyl group, a pyrazinyl group, a pyridazinyl group, a pyrimidinyl group, a triazolyl group, a tetrazolyl group, a furanyl group, a thienyl group, an oxazolyl group, an isoxazolyl group, an oxadiazolyl group, a thiazolyl group, an isothiazolyl group, a thiadiazolyl group, an indolyl group, an isoindolyl group, a benzimidazolyl group, an indazolyl group, a benzotriazolyl group, a tetrahydroquinolyl group, a quinolyl group, a tetrahydroisoquinolyl group, Examples thereof include an isoquinolyl group, a quinolidinyl group, a cinnolinyl group, a phthalazinyl group, a quinazolinyl group, a quinoxalinyl group, a naphthyridinyl group, a pyrrolopyridyl group, an imidazopyridyl group, a pyrazolopyridyl group, a pyridopyrazyl group, a purinyl group, a pteridinyl group, a benzofuranyl group, an isobenzofuranyl group, a benzothienyl group, a benzoxazolyl group, a benzoisoxazolyl group, a benzoxadiazolyl group, a benzothiazolyl group, a benzoisothiazolyl group, a benzothiadiazolyl group, and a thiazolopyridyl group.

[0033] In the above formula (9), R 3 Examples of the arylalkyl group represented by the formula (I) include an alkyl group having 1 to 6 carbon atoms substituted with the above-mentioned aryl group. Specific examples of the arylalkyl group include a benzyl group, a phenethyl group, a 3-phenylpropyl group, a 4-phenylbutyl group, a 1-phenylethyl group, and a 2-phenylpropan-2-yl group.

[0034] In the above formula (9), R 3Examples of heteroarylalkyl groups represented by the formula (I) include alkyl groups having 1 to 6 carbon atoms substituted with the above heteroaryl groups. Specific examples of heteroarylalkyl groups include a pyridylmethyl group, a pyridylethyl group, an imidazolylmethyl group, an imidazolylethyl group, a pyrazolylmethyl group, a pyrazolylethyl group, a pyrazinylmethyl group, a pyrazinylethyl group, a pyridazinylmethyl group, a pyridazinylethyl group, a pyrimidinylmethyl group, a pyrimidinylethyl group, an oxazolylmethyl group, an oxazolylethyl group, a thiazolylmethyl group, and a thiazolylethyl group.

[0035] Examples of the substituent that the above-mentioned aryl group, alkenyl group, alkynyl group, heteroaryl group, arylalkyl group, or heteroarylalkyl group may have include an alkyl group, alkenyl group, alkynyl group, aryl group, heteroaryl group, alkoxy group, alkoxycarbonyl group, halogen atom, hydroxy group, carboxy group, amino group, nitro group, nitroxy group, mercapto group, cyanate group, thiocyanate group, isothiocyanate group, sulfo group, sulfamino group, sulfino group, sulfamoyl group, phospho group, phosphono group, boronyl group, cyano group, etc. The number of substituents is not particularly limited.

[0036] Specific examples of Weinreb amides represented by the above formula (9) are shown below. However, the Weinreb amides in this embodiment are not limited to these examples. For convenience, only the E isomers are shown below, but the cis-trans isomer mixture according to this embodiment also includes the Z isomers of the following substances.

[0037] [ka]

[0038] (Process A) In step A, a cis-trans isomer mixture is separated into one diastereomer and the other diastereomer by high performance liquid chromatography (HPLC) using a separation column.

[0039] The cis-trans isomer mixture is not particularly limited as long as it contains the Z isomer and the E isomer. The isomer excess of the cis-trans isomer mixture (the ratio (%) of one diastereomer - the ratio (%) of the other diastereomer) may be 0% to 25%, 0% to 10%, or 0% to 5%.

[0040] The separation column for separating cis-trans isomers is not particularly limited, and any separation column used in high performance liquid chromatography (HPLC) can be used. For example, it is preferable to use a normal phase column utilizing silanol groups.

[0041] (Process B) In step B, the other diastereomer obtained in step A or step C described below is irradiated with light in the presence of a photosensitizer in a photoisomerization reactor to induce a photoisomerization reaction, thereby producing a cis-trans isomer mixture from the diastereomer. As described below, the photoisomerization reaction is induced by irradiating the other diastereomer with light having a specific wavelength.

[0042] The other diastereomer to be irradiated with light is in a state of being dissolved in a solvent. That is, the eluate containing the other diastereomer eluted in step A can be irradiated with light.

[0043] In step B, the solution containing the other diastereomer may contain a solvent. Examples of the solvent include, but are not limited to, one or more solvents selected from the group consisting of methanol (MeOH), ethanol (EtOH), isopropanol (iPA), diethyl ether (EtO), ethyl acetate (AcOEt), tetrahydrofuran (THF), dimethyl sulfoxide (DMSO), acetonitrile (MeCN), N,N-dimethylformamide (DMF), and dichloromethane (CHCl). Two or more of the above solvents may be mixed together, and may be mixed with water (HO) or hexane (Hex).

[0044] The solvent for dissolving the other diastereomer in step B is preferably one or more solvents selected from the group consisting of methanol (MeOH), dimethyl sulfoxide (DMSO), dichloromethane (CHCl), and ethanol (EtOH), and more preferably a mixed solvent of dichloromethane (CHCl) and methanol (MeOH) (a mixed solvent in which the CHCl:MeOH volume ratio is 1:1 to 9:1), or methanol (MeOH). Use of such a solvent can improve the reaction rate of the photoisomerization reaction in step B.

[0045] The wavelength of the light irradiated in step B is preferably adjusted appropriately depending on the types of cis-trans isomer mixture and photosensitizer, and may be, for example, 200 nm to 450 nm, 200 nm to 400 nm, or 254 nm to 365 nm. The light irradiation time varies depending on the type of cis-trans isomer mixture, the wavelength of the irradiated light, and other factors, but generally, light irradiation for 5 minutes to 2 hours is sufficient to induce the photoisomerization reaction.

[0046] (Process C) In step C, the cis-trans isomer mixture obtained in step B is separated into one diastereomer and the other diastereomer. The isomer excess of the cis-trans isomer mixture (ratio (%) of one diastereomer - ratio (%) of the other diastereomer) may be 0% to 25%, 0% to 10%, or 0% to 5%.

[0047] The separation method in step C is high performance liquid chromatography using the same separation column as in step A.

[0048] By carrying out the above steps B and C, the yield of the desired diastereomer can be significantly improved compared to carrying out only step A. By repeating the above steps B and C as necessary, the yield of the desired diastereomer can also be further improved.

[0049] (Process D) Step D is carried out before step A. In step D, when only the other diastereomer of the Z or E isomer is used as the starting material, a solution containing only the other diastereomer is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction, thereby producing a cis-trans isomer mixture. The other diastereomer to be irradiated with light is in a dissolved state in a solvent. The light irradiation conditions in step D are the same as those in step B.

[0050] [Photosensitizer] In step B, the efficiency of the photoisomerization reaction can be further increased by irradiating with light in the presence of a photosensitizer. The photosensitizer contains a thioxanthone skeleton represented by the following formula (1).

[0051] [ka]

[0052] The photosensitizer is preferably a solid-phase photosensitizer that is covalently immobilized on a carrier such as silica gel. Use of the solid-phase photosensitizer facilitates separation of the cis-trans isomer mixture obtained in step B from the photosensitizer. The solid-phase photosensitizer is preferably one in which a structure represented by the following formula (2) is covalently immobilized on a carrier such as silica gel via a linker.

[0053] [ka] [In formula (2), R 1 represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different from each other.

[0054] In the above formula (2), R 1Examples of the alkyl group represented by the formula (2) include an ethyl group, an n-propyl group, and an isopropyl group. 1 Examples of the alkoxycarbonyl group represented by the following formula include groups having a linear or branched alkyl moiety having 1 to 3 carbon atoms.

[0055] The photosensitizer is preferably immobilized on the carrier by a covalent bond via a linker, thereby preventing the photosensitizer from leaking into the reaction system. The linker preferably has a functional group containing an alkylene group, an arylene group, an -NR-C(O)- group (where R independently represents a hydrogen atom, an alkyl group, or a substituted alkyl group), or a combination thereof.

[0056] The solid-phase photosensitizer has, for example, a structure represented by the following formula (3).

[0057] [ka] [In formula (3), R 1 and m are defined as in the above formula (2). p represents an integer of 1 to 10, and q represents an integer of 2 to 10. X represents a carrier.]

[0058] In the above formula (3), p is preferably an integer of 1 to 8, and more preferably an integer of 1 to 6. q is preferably an integer of 2 to 8, and more preferably an integer of 2 to 6.

[0059] The carrier on which the photosensitizer is immobilized can be made of any material such as silicon, glass, or a polymer material. The carrier may also be a composite material of the above materials. An example of the carrier is silica gel. The particle size of the carrier is preferably 60 to 100 μm.

[0060] <Method of manufacturing solid-phase photosensitizer> The method for producing a solid-phase photosensitizer having the structure represented by the above formula (3) includes the steps of reacting a compound represented by the following formula (5) with a dicarboxylic acid represented by the following formula (6) or an anhydride thereof to obtain a compound represented by the following formula (7), and reacting a support having the structure represented by the following formula (8) with the compound represented by the following formula (7) to obtain a solid-phase photosensitizer having the structure represented by the above formula (3).

[0061] [ka] [In formula (5), R 1 and m have the same meaning as in formula (3).

[0062] [ka] [In formula (6), p has the same meaning as in formula (3) above.]

[0063] [ka] [In formula (7), R 1 , m, and p have the same meanings as in formula (3).

[0064] [ka] [In formula (8), q and X have the same meanings as in formula (3) above.]

[0065] <Other photosensitizers> In addition to the above, examples of photosensitizers that can be used in the diastereomer preparation method according to this embodiment include compounds represented by the following formula (4): The compound represented by the following formula (4) may be immobilized on a carrier.

[0066] [ka] [In formula (4), R 1represents an alkyl group, a hydroxy group, or an alkoxycarbonyl group having 2 to 3 carbon atoms, and m represents an integer of 0 to 5. When m is an integer of 2 to 5, a plurality of R 1 may be the same or different. r represents an integer of 1 to 7. R 2 represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.]

[0067] <Recycled HPLC> The recycle HPLC according to this embodiment is a recycle HPLC used in the above-described diastereomer preparation method, and includes a separation column that separates a cis-trans isomer mixture into one diastereomer and the other diastereomer, and a photoisomerization reactor that irradiates the other diastereomer obtained in the separation column with light to induce a photoisomerization reaction of the diastereomer.

[0068] An example of the schematic configuration of the recycle HPLC according to this embodiment is shown in Fig. 1. As shown in Fig. 1, the recycle HPLC 1 includes a separation column 10 and a photoisomerization reactor 20.

[0069] The separation column 10 separates the cis-trans isomer mixture into one diastereomer (e.g., Z isomer) and the other diastereomer (e.g., E isomer). Any separation column used in high performance liquid chromatography can be used as the separation column 10.

[0070] The photoisomerization reactor 20 irradiates the other diastereomer (e.g., E isomer) obtained in the separation column 10 with light in the presence of a photosensitizer, thereby inducing a photoisomerization reaction of the diastereomer and producing a cis-trans isomer mixture. The light source for the photoisomerization reactor 20 is not particularly limited as long as it irradiates light of the wavelength necessary to induce the photoisomerization reaction of the other diastereomer. Specific examples of light sources include high-pressure mercury lamps, low-pressure mercury lamps, xenon lamps, and LED lamps. When a material that absorbs light from the light source or a material that changes the wavelength of light from the light source is present between the light source and the other diastereomer, it is preferable to irradiate light while taking into consideration the light absorption or change in wavelength. The photoisomerization reactor 20 then sends the resulting cis-trans isomer mixture back to the separation column 10.

[0071] In the photoisomerization reactor 20, the solid-phase photosensitizer is filled in a light-transmitting flow path such as a glass column, and the other diastereomer (e.g., E-isomer) flowing through the flow path is irradiated with light from a light source. The flow path may be filled with light-transmitting particles in addition to the solid-phase photosensitizer. This allows the light irradiated from the light source to reach the center of the flow path. This also reduces the amount of solid-phase photosensitizer used and the risk of leakage of the solid-phase photosensitizer. Examples of light-transmitting particles include, but are not limited to, glass beads, amorphous glass powder, and resin beads. The light-transmitting particles may have a median diameter (D50) of, for example, about 10 to 100 μm. The mass ratio of the solid-phase photosensitizer to the light-transmitting particles filled in the flow path is preferably 1 to 50 mass%, more preferably 5 to 25 mass%, and even more preferably 5 to 10 mass%, relative to the total mass of the solid-phase photosensitizer and the light-transmitting particles.

[0072] Thus, with the recycle HPLC 1, the yield of the desired diastereomer can be significantly improved by repeating optical resolution and photoracemization in the separation column 10 and the photoisomerization reactor 20. Furthermore, the use of the recycle HPLC 1, which is a circulating system, makes it possible to reuse the solvent and facilitates repeating the separation of diastereomers and the photoisomerization reaction. [Example]

[0073] The present invention will be explained in more detail below with reference to examples, but the present invention is not limited to these examples.

[0074] <Preparation of solid-phase thioxanthone> (1) Synthesis of 4-oxo-4-[(9-oxo-9H-thioxanthen-2-yl)amino]butanoic acid (formula 7 below)

[0075] [ka]

[0076] 544 mg (2.4 mmol, 1.0 eq) of 4-aminothioxanthone (formula 6) and 360 mg (3.6 mmol, 1.5 eq) of succinic acid were added to a 100 mL recovery flask, dissolved in toluene (24 mL, 0.1 M) under an argon atmosphere, and heated under reflux for 2 hours. After returning to room temperature and washing with toluene, the target compound (formula 7) was filtered out as a yellow solid (yield 738 mg, 94%).

[0077] (2) Immobilization of 4-oxo-4-[(9-oxo-9H-thioxanthen-2-yl)amino]butanoic acid: Synthesis of immobilized thioxanthone (formula 8)

[0078] [ka]

[0079] In a 50 mL recovery flask, 1 g (0.6-1.3 mmol, 1.0 eq) of 3-aminopropyl silica gel, 426 mg (1.3 mmol, 1.0 eq) of 4-oxo-4-[(9-oxo-9H-thioxanthen-2-yl)amino]butanoic acid (formula 7), 1.35 g (2.6 mmol, 2.0 eq) of 1H-benzotriazol-1-yloxytripyrrolidinophosphonium hexafluorophosphate, and 1.1 mL (6.5 mmol, 5.0 eq) of N-ethyldiisopropylamine were dissolved in DMF (13 mL, 0.1 M) and stirred at room temperature for 24 hours. The solid phase was then filtered, washed thoroughly with dichloromethane and acetonitrile, and dried. After drying, the solid phase was added to 10 mL of a 9:1 pyridine:acetic anhydride mixture and stirred at room temperature for 24 hours. The solid phase was then filtered, thoroughly washed with dichloromethane, and dried to obtain a covalent bond-type solid-phase photosensitizer (formula 8) as a yellow solid.

[0080] (Photoisomerization reaction test) Figure 2 shows the change over time in the abundance ratio of the other diastereomer when the photoisomerization reaction proceeded using the photosensitizer thioxanthone without immobilization on a support (5 mol% thioxanthone) and when the immobilized thioxanthone prepared above was used. (E)-Cinnamamide was used as the target for the photoisomerization reaction, and the irradiation light was 405 nm. As shown in Figure 2, it is clear that the use of immobilized thioxanthone allows the photoisomerization reaction to proceed more smoothly than when thioxanthone is used without immobilization on a support.

[0081] (Leakage test) Figure 3 shows the results of a test in which the photosensitizer thioxanthone was used without immobilization on a support (5 mol% thioxanthone), without a photosensitizer (No Catalyst), and with the immobilized thioxanthone prepared above. The photosensitizer was stirred in a solvent for a certain period of time, and then (E)-cinnamamide was added to the filtrate (solvent from which the photosensitizer had been removed). Light irradiation was then performed to confirm whether isomerization occurred, i.e., whether the photosensitizer had leaked out of the system. As shown in Figure 3, the use of immobilized thioxanthone clearly prevented the photosensitizer from leaking out of the system.

[0082] (Calculation of required UV exposure) Using the solidified thioxanthone prepared above, the required UV irradiation dose (J / cm 2 The calculation was carried out by irradiating the E-diastereomers (solvent: acetonitrile 0.01M) shown in the following formula with 405 nm (LED) light in the presence of 5 mol% of each photosensitizer, and measuring the amount of light (J / cm) required for the abundance ratio of the E-diastereomer to reach 55% (the abundance ratio of the Z-diastereomer to reach 45%). 2 The results are shown in Table 1.

[0083] [ka]

[0084] [Table 1]

[0085] <Reference Example: Preparation of Photosensitizer> Similarly to the above-mentioned immobilized thioxanthone, photosensitizers not immobilized on a carrier were prepared according to the following formula.

[0086] [ka]

[0087] [ka]

[0088] (Calculation of required UV exposure) The required UV irradiation dose (J / cm) was determined using the photosensitizers of the following formulas prepared as described above. 2 The calculation was carried out by irradiating (E)-cinnamamide (solvent: acetonitrile 0.01M) with 405 nm (LED) light in the presence of 5 mol% of each photosensitizer, and measuring the amount of light (J / cm) required for the abundance ratio of (E)-cinnamamide to reach 55% (the abundance ratio of (Z)-cinnamamide to reach 45%). 2 The results are shown in Table 2.

[0089] [ka]

[0090] [Table 2]

[0091] As shown in Table 2, it is clear that the linker-conjugated 6 and the solid-phase photosensitizer 7 require less UV irradiation than thioxanthone (TX). It is also clear that the amide bond in thioxanthone reduces the UV irradiation dose required.

[0092] Example 1: Selective preparation of cinnamamide using recycle HPLC 5.7 g of Fuji Glass Beads (FGB-200) and 300 mg of the covalently bonded thioxanthone photosensitizer prepared above were mixed at a total weight of 6 g (95:5 ratio) and packed into a glass column [YMC, ECOPLUS (φ5 mm)] to a total length of 210 mm. The glass column was connected to a Multiple Preparative HPLC Forte and vertically aligned, and the solution was passed through at a flow rate of 1.0 mL / min using 100% acetonitrile as the solvent. The glass column was then connected to a YMC-Pack SIL-06 (250 × 20.0 mm, DS-5 μm, 6 nm). The glass column was placed in a photoisomerization reactor (Iwasaki Electric Manufacturing Co., Ltd.) and the solution was passed through at a flow rate of 4.7 mL / min using 100% acetonitrile as the solvent.

[0093] Next, a sample was prepared by dissolving 10 mg (0.0679 mmol) of (E)-cinnamamide in 1 mL of acetonitrile. The cooling fan attached to the photoisomerization reactor was turned on, and the DC stabilized power supply was turned on at a current of 1.0 A to irradiate with 405 nm light. The entire sample was then added. Five minutes after addition, irradiation was stopped. The detected (Z)-cinnamamide peak was collected, and light irradiation was restarted at the same time as recycling of (E)-cinnamamide was started. Irradiation was stopped five minutes after the end of recycling. This process was repeated six times. The relationship between the peak intensities of the Z and E isomers and the time elapsed since the start of recycling is shown in the graph in Figure 4.

[0094] By carrying out the isomerization of (E)-cinnamamide using recycling HPLC in the presence of immobilized thioxanthone, (Z)-cinnamamide was obtained in 95% yield with a purity of Z / E ratio = 99:1, confirming that the photoisomerization reaction was proceeding efficiently.

[0095] Example 2: Selective preparation of (2E)-N-methoxy-3-(4-methoxyphenyl)-N-methyl-2-propenamide using recycling HPLC As in Example 1, a recycling HPLC was set up using the immobilized thioxanthone prepared above.

[0096] Next, a sample was prepared by dissolving 10 mg (0.0679 mmol) of (2c-E): (2E)-N-methoxy-3-(4-methoxyphenyl)-N-methyl-2-propenamide (shown below) in 1 mL of acetonitrile. The cooling fan attached to the photoisomerization reactor was turned on, and the DC stabilized power supply was turned on at a current of 1.0 A to irradiate with 405 nm light. The entire sample was then added. Five minutes after addition, irradiation was terminated. The peak of (2c-Z): (2Z)-N-methoxy-3-(4-methoxyphenyl)-N-methyl-2-propenamide (shown below) was collected, and light irradiation was initiated again while recycling (2c-E). Five minutes after the end of recycling, irradiation was terminated. This process was repeated six times.

[0097] [ka]

[0098] By carrying out the isomerization of (2c-E) in the above formula by recycling HPLC in the presence of immobilized thioxanthone, (2c-Z) in the above formula was obtained in 60% yield with a purity of Z / E ratio >99:1, confirming that the photoisomerization reaction was proceeding efficiently.

[0099] <Relationship between solvent and reaction rate in step B> (E)-Cinnamamide (3.0 mg, 0.02 mmol) was dissolved in each of the solvents (0.01 M) shown in Tables 3 and 4 below to prepare a solution. The solution was then subjected to irradiation at 405 nm (LED, 18.1 mW / cm) in the presence of thioxanthone (5 mol%), a photosensitizer. 2 ) and the time (t 1 / 2 (s)) was calculated. -1 S -1) was determined. The results are shown in Tables 3 and 4. The abbreviations for the solvents shown in Tables 3 and 4 have the same meanings as those shown in the above embodiment, and the ratio of the solvents means the mixing ratio (volume ratio).

[0100] [Table 3]

[0101] [Table 4]

[0102] From the results shown in Tables 3 and 4, it is clear that the reaction rate of the photoisomerization reaction can be improved by using one or more solvents selected from the group consisting of methanol (MeOH), dimethyl sulfoxide (DMSO), dichloromethane (CHCl), and ethanol (EtOH) as the solvent contained in the solution in step B. From the above viewpoints, it is also clear that the solvent is more preferably a mixed solvent of dichloromethane (CHCl):methanol (MeOH) (a mixed solvent in which the mixing ratio (volume ratio) of CHCl:MeOH is 1:1 to 9:1), or methanol (MeOH). [Explanation of symbols]

[0103] 1 recycling HPLC, 10 separation columns, 20 photoisomerization reactors

Claims

1. A diastereomer preparation method for selectively preparing one diastereomer of cis-trans isomers by utilizing a recycle HPLC capable of continuously circulating a separation column for separating cis-trans isomers based on double bonds and a photoisomerization reactor for inducing a photoisomerization reaction, comprising: Step A: A separation step of introducing a cis-trans isomer mixture into the separation column and separating one of the diastereomers; Step B: a photoisomerization reaction step in which a solution containing the other diastereomer after Step A or Step C is irradiated with light in the presence of a photosensitizer in the photoisomerization reactor to induce a photoisomerization reaction; and Step C: A step of introducing the cis-trans isomer mixture produced in Step B into the separation column and separating one of the diastereomers. Including, The method for preparing a diastereomer, wherein the photosensitizer is a solid-phase photosensitizer represented by the following formula (3) that is covalently immobilized on a carrier in the photoisomerization reactor via a linker, or the photosensitizer has a structure represented by the following formula (4): 【Chemical 1】 [In formula (3), m is 0, p is an integer of 1 to 10, and q is an integer of 2 to 10. X represents the carrier.] 【Chemistry 2】 [In formula (4), m is 0, r is an integer of 1 to 7, and R 2 is a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.]

2. 2. The method for preparing diastereomers according to claim 1, wherein the support material is silica, glass, a polymer material, or a composite material thereof.

3. 2. The method for preparing a diastereomer according to claim 1, wherein the cis-trans isomer is a cis-trans isomer of an alkene having an amide group in the molecule.

4. The method for preparing a diastereomer according to claim 3, wherein the alkene having an amide group in the molecule is a Weinreb amide.

5. A solid-phase photosensitizer having a structure represented by the following formula (3): 【Chemistry 3】 [In formula (3), m is 0, p is an integer of 1 to 10, and q is an integer of 2 to 10. X is a carrier.]

6. A method for producing a solid-phase photosensitizer having a structure represented by the following formula (3): A step of reacting a compound represented by the following formula (5) with a dicarboxylic acid represented by the following formula (6) or an anhydride thereof to obtain a compound represented by the following formula (7); A method for producing a solid-phase photosensitizer, comprising the step of reacting a carrier having a structure represented by the following formula (8) with a compound represented by the following formula (7) to obtain a solid-phase photosensitizer having a structure represented by the following formula (3): 【Chemistry 4】 [In formula (3), m is 0, p is an integer of 1 to 10, and q is an integer of 2 to 10. X is a carrier.] 【Chemistry 5】 [In formula (5), m has the same meaning as in formula (3)] 【Chemistry 6】 [In formula (6), p has the same meaning as in formula (3)] 【Chemistry 7】 [In formula (7), m and p have the same meanings as in formula (3)] 【Chemistry 8】 [In formula (8), q and X have the same meanings as in formula (3)]

7. A compound represented by the following formula (4): 【Chemistry 9】 [In formula (4), m is 0. r is an integer of 1 to 7. R 2 represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.

Citation Information

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