Method for preparing a fluorescent probe library using solid-phase extraction and method for measuring enzyme activity using the same

A combined liquid-phase and solid-phase synthesis scheme addresses the inefficiencies of traditional methods, enabling rapid and sensitive detection of enzyme activities in body fluids, facilitating the development of disease-specific biomarkers.

JP7802305B2Active Publication Date: 2026-01-20THE UNIV OF TOKYO +1
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Patent Information

Application Number
JP2023527924
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-06-09
Filing Date
2022-06-09
Publication Date
2026-01-20
Estimated Expiration
2042-06-09

AI Technical Summary

Technical Problem

Existing methods for synthesizing fluorescent probes are time-consuming and inefficient, making it difficult to comprehensively detect a wide variety of enzyme activities in body fluids like blood and urine, which are potentially associated with diseases.

Method used

A synthesis scheme combining liquid-phase and solid-phase techniques, utilizing SAS (synthesis-based on affinity separation), allowing for the production of highly pure fluorescent probes with high water solubility, enabling easy synthesis and desorption, and facilitating parallel processing of multiple types.

Benefits of technology

This approach significantly enhances the efficiency of fluorescent probe synthesis, enabling the production of diverse probes in a few days and allows for the construction of a library that can detect multiple enzyme activities with ultrahigh sensitivity, aiding in the identification of disease-specific biomarkers.

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Abstract

[Problem] To provide a synthesis scheme that enables the convenient synthesis of multiple types of fluorescent probes. [Solution] A method of producing compounds given by formula (III), wherein the method comprises steps (1) to (5).
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Description

[Technical Field]

[0001] The present invention relates to a novel method for synthesizing fluorescent probes that enables the easy synthesis of a wide variety of fluorescent probes, fluorescent mother compounds that can be used in the synthesis method, fluorescent probes and fluorescent probe libraries for detecting enzyme activity obtained by the synthesis method, methods for measuring enzyme activity using the same, and the use of the fluorescent probes for detecting biomarkers. [Background technology]

[0002] The inventors' research group has previously used a group of enzyme activity detection fluorescent probes compatible with microdevices to detect enzymes in the blood at the single molecule level and profile their activities, discovering new associations with disease. However, it is believed that there are still many enzyme activities in body fluids such as blood and urine whose association with disease has not been reported. Therefore, if it were possible to construct a fluorescent probe library that can detect a wide variety of enzyme activities comprehensively with ultra-high sensitivity in a microdevice, it would be useful in the search for enzyme activities that could serve as new biomarkers.

[0003] On the other hand, fluorescent probes used to detect enzyme activity usually require synthesis and purification over a period of several days to several weeks before being used in fluorescent assays. Therefore, as mentioned above, it has traditionally been difficult to prepare a group of fluorescent probes that can comprehensively detect the activity of various enzymes present in blood, etc. Summary of the Invention

[0004] An object of the present invention is to provide a synthetic scheme for fluorescent probes that takes advantage of the advantages of liquid-phase synthesis and solid-phase synthesis. Another object of the present invention is to provide a synthetic scheme for fluorescent probes that enables solid-phase synthesis and easy desorption from the solid phase. Another object of the present invention is to provide a synthetic scheme that enables the simple synthesis of a wide variety of fluorescent probes. [Means for solving the problem]

[0005] In order to solve the above problems, the inventors conducted extensive research and found that it is possible to provide a synthesis scheme based on SAS (synthesis-based on affinity separation), which combines the advantages of liquid-phase synthesis, which has high reaction efficiency but requires cumbersome purification procedures, and solid-phase synthesis, which has simple purification procedures but low reaction efficiency.This scheme allows for the production of highly pure target products through simple mixing and solution removal procedures, and also enables the easy synthesis of multiple types of fluorescent probes through parallel processing.

[0006] Specifically, a synthesis scheme is provided in which a fluorescent probe is synthesized in the liquid phase using a fluorescent dye having a phosphonic acid, phosphate ester, or phosphoric acid amide in the molecular skeleton as the parent nucleus, followed by solid-phase extraction using a support bound with a phos-tag that specifically captures phosphate groups. Furthermore, in this scheme, the fluorescent probe finally obtained contains phosphonic acid, which makes it possible to impart high water solubility required for assays using microdevices, and this scheme is considered to be optimal for the purposes of the present invention.

[0007] That is, the present invention provides: [1] A compound represented by the following general formula (I): TIFF0007802305000001.tif40152 (in formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), where R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; S is, if present, a linker; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3. [2] A is -NR 2 The compound according to [1], wherein H is [3] The compound according to [1], wherein A is —OH. [4] (1) a step of protecting the group T of a compound represented by the following formula (I): TIFF0007802305000002.tif39157 (in formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), where R 2 represents a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; S is, if present, a linker; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3. (2) Regarding the product obtained in step (1), (i) A is an amino group (-NR 2 In the case of H, the amino group is converted to an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R bare each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO2-R c , R c is converted to a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO); (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) a step of adding a compound represented by the following formula (II) to the product obtained in the step (3); TIFF0007802305000003.tif39158 (in formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III); A method for preparing a compound represented by the following formula (III): TIFF0007802305000004.tif36162 (in formula (III), B is an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R bare each independently selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), a sulfonamide group (—NR 2 -SO2-R c , R c is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphate ester group, a sulfate ester group, an ether group or -O-L' (L' represents a saccharide or a partial structure of a saccharide); S, T, R 1 , m is as defined in formula (I). [5] A method for preparing one type of compound represented by the following formula (III) in each of a plurality of reaction vessels by carrying out the following steps (1) to (5) in parallel in the plurality of reaction vessels: TIFF0007802305000005.tif34154 (in formula (III), B is an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO2-R c , R cis selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphate ester group, a sulfate ester group, an ether group or -O-L' (L' represents a saccharide or a partial structure of a saccharide); S, T, R 1 , m is as defined in formula (I). (1) protecting the group T of a compound represented by the following formula (I); TIFF0007802305000006.tif40149 (in formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), where R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; S is, if present, a linker; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3. (2) Regarding the product obtained in step (1), (i) A is an amino group (-NR 2 In the case of H, the amino group is converted to an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R bare each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO2-R c , R c is converted to a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO); (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) a step of adding a compound represented by the following formula (II) to the product obtained in the step (3); TIFF0007802305000007.tif39158 (in formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) Purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III). [6] A compound represented by the following general formula (III) or a salt thereof: TIFF0007802305000008.tif35157 (in formula (III), B is an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R bare each independently selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), a sulfonamide group (—NR 2 -SO2-R c , R c is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphate ester group, a sulfate ester group, an ether group or -O-L' (L' represents a saccharide or a partial structure of a saccharide); R 1 are, if present, the same or different monovalent substituents present on the benzene ring; S is, if present, a linker; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3. [7] A fluorescent probe for detecting enzyme activity, comprising the compound represented by general formula (III) according to [6] or a salt thereof. [8] A method for detecting the activity of multiple enzymes in a biological sample, the method comprising contacting the biological sample with a compound of general formula (III) described in [6]. [9] The method according to [8], characterized in that a library of compounds of general formula (III) according to [6] is used.

[10] The method according to [8] or [9], characterized in that a microdevice is used.

[11] [6] A method for testing an enzyme assay of a composition comprising a compound of general formula (III) according to the invention, the method comprising contacting the composition with a biological sample containing or suspected of containing an enzyme that cleaves the compound.

[12] A method for screening a fluorescent probe capable of detecting a biomarker for a specific disease, the method comprising: (1) A step of adding a library of compounds of formula (III) according to [6] to a microdevice, the step comprising adding the compound to at least one well of the microdevice so that one type of compound of formula (III) is contained in at least one well of the microdevice; (2) adding a solution containing a biological sample to the microdevice so that at least one well in the microdevice contains one molecule of the enzyme, wherein the biological sample is obtained from a patient with a specific disease or a healthy subject; (3) contacting a compound of formula (III) with an enzyme and detecting fluorescence in a well of the microdevice, the step comprising: contacting a compound of formula (III) with a biological sample obtained from a patient with a specific disease, and measuring the fluorescence intensity (first fluorescence intensity) from the compound of formula (III); contacting the compound of formula (III) with a biological sample obtained from a healthy subject, and measuring the fluorescence intensity (second fluorescence intensity) from the compound of formula (III); Includes; (4) comparing the first fluorescence intensity with the second fluorescence intensity, if there is a difference between them, indicating that the compound is a candidate for the fluorescent probe, and thereby determining the compound as a fluorescent probe for detecting biomarker activity; The screening method comprising:

[13] A method for detecting ENPP activity in a biological sample, comprising contacting a compound of formula (IV) or a salt thereof with the biological sample in an aqueous solution, wherein an increase in fluorescence intensity in the aqueous solution indicates the presence of ENPP activity. TIFF0007802305000009.tif42154In formula (IV), R 1 , S, T, and m are as described in detail in the general formula (I).

[14] The method according to

[13] , wherein the biological sample is from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject.

[15] A method for diagnosing pancreatic cancer, or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) applying a fluorescent probe containing a compound of formula (IV) or a salt thereof to a clinical sample from the subject; and (b) measuring a fluorescent image of the clinical sample to which the fluorescent probe has been applied.

[16] A method for diagnosing pancreatic cancer, or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) contacting a biological sample obtained from a subject with a fluorescent probe containing a compound of formula (IV) or a salt thereof; and (b) measuring the fluorescence intensity of the biological sample contacted with the fluorescent probe.

[17] The diagnostic method or prognostic method according to

[15] or

[16] , wherein the compound of formula (VI) is the following compound: TIFF0007802305000010.tif34156

[18] A fluorescent probe for detecting pancreatic cancer, for use in the method according to

[15] or

[16] , comprising a compound of formula (IV) or a salt thereof.

[19] A kit for detecting pancreatic cancer cells or tissues, comprising a compound of formula (IV) or a salt thereof.

[20] The fluorescent probe according to

[18] , wherein the compound of formula (VI) is the following compound: TIFF0007802305000011.tif34157

[21] Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 A method for diagnosing pancreatic cancer, or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer, by detecting the enzymatic activity of a single molecule of CD13 in a biological sample obtained from a subject using a fluorescent probe containing the compound or its salt according to [6], wherein -CO-L is an alanine, lysine, arginine, or methionine residue. [twenty two] Using a microdevice, a compound represented by general formula (III) in which B is -NR 2A method for diagnosing pancreatic cancer by detecting the enzymatic activity of a single molecule of DPP4 in a biological sample obtained from a subject using a fluorescent probe containing the compound according to [6] or a salt thereof, wherein the -CO-L portion is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid), or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer. [twenty three] Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 -CO-L, wherein the -CO-L moiety is an alanine, lysine, arginine, or methionine residue, and detecting the enzymatic activity of a single molecule of CD13 in a biological sample obtained from a subject using a fluorescent probe containing the compound or a salt thereof according to [6]; Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 A method for diagnosing pancreatic cancer by detecting the enzymatic activity of a single molecule of DPP4 in a biological sample obtained from a subject using a fluorescent probe containing the compound according to [6] or a salt thereof, wherein the -CO-L portion is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid), or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer.

[24] The method according to any one of

[21] to

[23] , wherein the biological sample is a biological sample from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject. This provides: [Effects of the Invention]

[0008] The present invention makes it possible to provide a fluorescent probe synthesis scheme that takes advantage of the advantages of liquid-phase synthesis and solid-phase synthesis. The present invention makes it possible to provide a fluorescent probe synthesis that allows for solid-phase synthesis and easy desorption from the solid phase. Furthermore, the present invention makes it possible to provide a synthetic scheme that allows for the simple synthesis of many types of fluorescent probes. Specifically, the synthetic scheme based on the present invention enables probe synthesis and purification using a very simple scheme that involves only mixing and solution removal. Since parallel processing is also possible, it is possible to prepare around 10 types of probes in a few days, thereby significantly improving the efficiency of probe development.

[0009] Furthermore, by carrying out the reactions according to the synthesis scheme of the present invention in parallel in a plurality of reaction vessels, a library of the compounds (fluorescent probes) of the present invention can be constructed. The compounds of the present invention or libraries thereof can be used to provide a method for detecting the activity of multiple enzymes in a biological sample.

[0010] Furthermore, since the compound library of the present invention includes hundreds of compounds capable of detecting multiple enzymes, it can be used to comprehensively search (screen) candidate biomarker activities from biological samples with ultrahigh sensitivity, and it can also be used to screen fluorescent probes for detecting biomarker activity.

[0011] Furthermore, the fluorescent probe for detecting biomarker activity obtained by the screening method of the present invention can be used to detect a biomarker specific to a given disease, thereby diagnosing the disease. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a schematic diagram comparing the preparation method of the present invention with conventional liquid phase synthesis and solid phase synthesis. [Figure 2] An example of the synthesis of the fluorescent probe of the present invention will be shown. [Figure 3] Schematic diagram of the preparation method of the compounds of the invention. [Figure 4] 1 shows the results of HPLC measurement in the synthesis of an amidase probe (Synthesis Example 3). [Figure 5] 1 is a perspective view schematically illustrating a microdevice according to one embodiment of the present invention. [Figure 6] 1 shows a conceptual diagram of disease diagnosis using the present invention. [Figure 7A] 1 shows fluorescent microscope images of enzyme activity in blood of each probe detected using a microdevice in Example 1. [Figure 7B] 1 shows fluorescent microscope images of enzyme activity in blood of each probe detected using a microdevice in Example 1. [Figure 8] 1 shows a fluorescence microscope image obtained using Arg-PMAC in Example 2. [Figure 9] 1 shows the ROC curve obtained in the test carried out using Arg-PMAC in Example 2. [Figure 10] 1 shows the ROC curve obtained in the test carried out using Met-PMAC in Example 2. [Figure 11] 1 shows representative fluorescence microscope images obtained in Example 3. [Figure 12] ROC curve obtained in Example 3. [Figure 13] The results of measuring the activity of PMUM-dCMP using a plate reader with purified ENPP3 enzyme are shown. [Figure 14] Fluorescence microscope images obtained in Example 6 are shown. [Figure 15] 1 shows the results of comparing the number of wells with a detected fluorescence intensity of 2500 AU or more between healthy subjects and pancreatic cancer patients in Example 6. [Figure 16] 1 shows an ROC curve prepared by making a judgment based on the results of the ENPP activity measurement performed in Example 6. DETAILED DESCRIPTION OF THE INVENTION

[0013] In this specification, the term "halogen atom" refers to a fluorine atom, a chlorine atom, a bromine atom, or an iodine atom.

[0014] In this specification, "alkyl" may be any of a linear, branched, or cyclic aliphatic hydrocarbon groups, or a combination thereof. The number of carbon atoms in the alkyl group is not particularly limited, but for example, alkyl groups having 1 to 6 carbon atoms (C 1~6 ), 1 to 10 carbon atoms (C 1~10 ), 1 to 15 carbon atoms (C 1~15 ), carbon number 1~20 (C 1~20 When the number of carbon atoms is specified, it means "alkyl" having the number of carbon atoms in that range. For example, C 1~8 Alkyl includes methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, neo-pentyl, n-hexyl, isohexyl, n-heptyl, n-octyl, and the like. As used herein, alkyl groups may have one or more optional substituents. Examples of such substituents include, but are not limited to, alkoxy groups, halogen atoms, amino groups, mono- or di-substituted amino groups, substituted silyl groups, and acyl. When an alkyl group has two or more substituents, they may be the same or different. The same applies to the alkyl moieties of other substituents containing an alkyl moiety (e.g., alkoxy groups, arylalkyl groups, and the like).

[0015] In this specification, when a functional group is defined as "optionally substituted," the type, substitution position, and number of substituents are not particularly limited, and when two or more substituents are present, they may be the same or different. Examples of substituents include, but are not limited to, alkyl groups, alkoxy groups, hydroxyl groups, carboxyl groups, halogen atoms, sulfo groups, amino groups, alkoxycarbonyl groups, and oxo groups. These substituents may further contain substituents. Examples of such substituents include, but are not limited to, halogenated alkyl groups and dialkylamino groups.

[0016] In this specification, the term "alkoxy group" refers to a structure in which the alkyl group is bonded to an oxygen atom, and examples thereof include saturated alkoxy groups that are linear, branched, cyclic, or a combination thereof. Suitable examples include methoxy, ethoxy, n-propoxy, isopropoxy, cyclopropoxy, n-butoxy, isobutoxy, s-butoxy, t-butoxy, cyclobutoxy, cyclopropylmethoxy, n-pentyloxy, cyclopentyloxy, cyclopropylethyloxy, cyclobutylmethyloxy, n-hexyloxy, cyclohexyloxy, cyclopropylpropyloxy, cyclobutylethyloxy, and cyclopentylmethyloxy groups.

[0017] 1. Fluorescent dye core One embodiment of the present invention is a compound represented by the following general formula (I) (hereinafter also referred to as "Compound 1 of the present invention"). TIFF0007802305000012.tif37154

[0018] Compound 1 of the present invention serves as a core molecule in the method for preparing the novel fluorescent probe of the present invention, which will be described later. Furthermore, since compound 1 of the present invention has a phosphonic acid, a phosphate ester group, or a phosphoric acid amide group, the fluorescent probe finally obtained using said compound also has a phosphonic acid, a phosphate ester, or a phosphoric acid amide group, and therefore, it is possible to impart high water solubility required for assays using microdevices.

[0019] In formula (I), A is an amino group (—NR 2 H) or a hydroxyl group (-OH).

[0020] R 2 is selected from the group consisting of a hydrogen atom and a branched, straight-chain or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms. Examples of the alkyl group having 1 to 8 carbon atoms include methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, neo-pentyl, n-hexyl, isohexyl, n-heptyl, n-octyl, and the like. wherein one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO. 2 The alkyl group defined as R 2 The case where the entire chain is a polyethylene glycol chain is also included. Also, R 2 Examples of the substituent that the alkyl group may have include, but are not limited to, an alkoxy group, a hydroxyl group, a carboxyl group, a halogen atom, a sulfo group, an amino group, an alkoxycarbonyl group, and an oxo group.

[0021] In one preferred aspect of compound 1 of the present invention, R 2 is a hydrogen atom.

[0022] In formula (I), R 1 R, if present, are the same or different monovalent substituents present on the benzene ring. 1Examples of the monovalent substituent include halogen, a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, an alkoxy group, a carboxyl group, a sulfonyl group, and an aryl group. where R 1 One or more non-adjacent, non-terminal C atoms of the alkyl group of R may be replaced by O, S, CO or COO. 1 The alkyl group of R may contain, for example, a polyethylene glycol chain as part of the alkyl group. 1 The case where the entire chain is a polyethylene glycol chain is also included.

[0023] m is an integer of 0 to 3, preferably 0 to 1. R 1 The monovalent substituent may be introduced at any position on the benzene ring of the coumarin skeleton.

[0024] In formula (I), T is selected from a phosphonic acid group (-P(=O)(OH)2), a phosphate ester group (-OP(=O)(OH)2), or a phosphoric acid amide group (-NH-P(=O)(OH)2). Preferably, T is a phosphonic acid group (-P(=O)(OH)2).

[0025] In formula (I), S, when present, is a linker that connects the phosphonate, phosphate, or phosphate amide group of T to the coumarin. Examples of linkers include, but are not limited to, substituted or unsubstituted hydrocarbon groups, polyethylene glycol, heterocyclic groups, amide groups (including any of the groups represented by -NHCO- and -CONH-), aromatic rings having an amide group, etc. Linkers that can be used for Compound 1 of the present invention also include those having two or more of the above-mentioned groups bonded thereto. Examples of the hydrocarbon group include an alkylene group having 1 to 10 carbon atoms, an alkynylene group having 1 to 10 carbon atoms, a cycloalkylene group, and an aromatic hydrocarbon. Polyethylene glycol is -(C2H4-O) t- (t is an integer of 1 to 10), and either the ethylene group or the oxo group may be the side that bonds to the coumarin. Examples of the heterocyclic ring include a triazole group. The aromatic ring having an amide group can be represented by *-NHCO-Ar- or *-Ar-CONH- (Ar represents the aromatic ring, and * represents the side bonded to the coumarin). Furthermore, the polyethylene glycol, heterocyclic group, amide group, or aromatic ring having an amide group may have a substituted or unsubstituted hydrocarbon group, preferably an alkylene group having 1 to 10 carbon atoms, at one or both ends thereof.

[0026] In one preferred aspect of the invention, the phosphonic acid group, phosphate ester group or phosphoric acid amide group is directly attached to the coumarin.

[0027] In another preferred aspect of the present invention, the phosphonic acid group, phosphate ester group, or phosphate amide group is bonded to the coumarin via an alkylene group having 1 to 10 carbon atoms (e.g., a methylene group, an ethylene group), an amide group, or a triazole group.

[0028] The phosphonic acid group, phosphate ester group, or phosphoric acid amide group can be introduced into either the 3- or 4-position of the coumarin skeleton.

[0029] One preferred embodiment of the present invention is a compound represented by the formula (I) wherein A is -NR 2 H, a compound having the following structure: TIFF0007802305000013.tif36166

[0030] In formula (Ia), S, T, R 1 , R 2 and m are as defined in formula (I).

[0031] A preferred embodiment of the present invention is a compound of formula (I) where A is -NH2.

[0032] Furthermore, one preferred aspect of the compound represented by formula (Ia) is a compound having the following structure: TIFF0007802305000014.tif41158

[0033] In formula (Ia-1), R 1 , R 2 , m is as defined in formula (I), and n is an integer of 0-10.

[0034] A preferred example of the compound represented by formula (Ia-1) is the following compound: TIFF0007802305000015.tif48153

[0035] Another preferred embodiment of the present invention is a compound of formula (I) having the following structure, where A is -OH: TIFF0007802305000016.tif36159

[0036] In formula (Ib), S, T, R 1 and m are as defined in formula (I).

[0037] Furthermore, one preferred aspect of the compound represented by formula (Ib) is a compound having the following structure: TIFF0007802305000017.tif36155

[0038] In formula (Ib-1), R 1 , m is as defined in formula (I), and n is an integer of 0-10.

[0039] A preferred example of the compound represented by formula (Ib-1) is the following compound: TIFF0007802305000018.tif51158

[0040] The examples of this specification specifically show methods for producing representative compounds of Compound 1 of the present invention. Therefore, a person skilled in the art can produce Compound 1 of the present invention by appropriately selecting reaction raw materials, reaction conditions, reaction reagents, etc. based on these explanations and modifying or altering these methods as necessary.

[0041] 2. Preparation of fluorescent probes (1) Method for preparing a compound represented by general formula (III) Another embodiment of the present invention is a method for preparing a compound represented by the following formula (III), which comprises the following steps (1) to (5) (hereinafter also referred to as the "preparation method of the present invention"). TIFF0007802305000019.tif33158(1) A step of protecting the group T of a compound represented by the following formula (I): TIFF0007802305000020.tif36155 (in formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), where R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; S is, if present, a linker; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3. (2) Regarding the product obtained in step (1), (i) A is an amino group (-NR 2 In the case of H, the amino group is converted to an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2-CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO2-R c , R c is converted to a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO); (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) a step of adding a compound represented by the following formula (II) to the product obtained in the step (3); TIFF0007802305000021.tif39156 (in formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) Purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III).

[0042] The preparation method of the present invention can employ a procedure in which a fluorescent probe is synthesized in the liquid phase using a fluorescent dye having a phosphonic acid, phosphate ester, or phosphoric acid amide in the molecular skeleton as the parent nucleus, followed by solid-phase extraction using a support bound with a phos-tag that specifically captures phosphate groups.

[0043] A schematic diagram comparing the preparation method of the present invention with conventional liquid phase synthesis and solid phase synthesis is shown in FIG. Liquid-phase synthesis has high reaction efficiency, but is cumbersome because it requires column chromatography or preparative HPLC for purification, requiring several hours per compound for purification. Solid-phase synthesis, on the other hand, has the drawback of simple purification procedures but low reaction efficiency. The preparation method of the present invention combines the advantages of both methods, based on the SAS (synthesis-based on affinity separation) method, and allows the target product (preferably with high purity) to be obtained simply by mixing and removing the solution. The preparation method of the present invention also makes it possible to easily synthesize multiple types of fluorescent probes through parallel processing.

[0044] Each step of the preparation method of the present invention is described in detail below.

[0045] Process (1) In step (1), the above-described procedure for protecting the group T of the compound 1 of the present invention is carried out. TIFF0007802305000022.tif36159(A, S, T, R 1 and m is as defined above.)

[0046] The phosphonic acid group, phosphate ester group, and phosphoric acid amide group represented by T can be protected by methods commonly used for protecting these groups. For example, they can be suitably protected with a silyl protecting group (e.g., tert-butyldiphenylsilyl group) or a tert-butyl group. Suitable protecting reagents for phosphonic acid groups, phosphate ester groups, and phosphoric acid amide groups include TBDPS-Cl (tert-butyl(chloro)diphenylsilane), TBDMS-Cl (tert-butyldimethylsilyl chloride), isobutene, and tert-butanol. For example, compound 1 of the present invention can be dissolved in a solution containing imidazole (e.g., a DMSO solution) and TBDPS-Cl added to the solution to protect the phosphonic acid, phosphate ester, and phosphoric acid amide.

[0047] Process (2) In step (2), the A moiety in the product obtained in step (1) is converted into a functional group that is cleaved upon contact with a substance to be measured, such as an enzyme. The functional group cleaved by contact with the substance to be measured is appropriately determined depending on the type of biomolecule targeted in the measurement of enzyme activity or the like using the final product, compound (III), and is divided into the following (i) and (ii) depending on whether A is an amino group or a hydroxyl group.

[0048] (i) A is an amino group (-NR 2 In the case of H, the amino group is converted to an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, -NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO2-R c , R c is converted to a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO). Here, the partial structure of an amino acid means that it, together with the C=O to which it is bonded, constitutes an amino acid, an amino acid residue, a peptide, or a part of an amino acid.

[0049] As used herein, the term "amino acid" refers to any compound having both an amino group and a carboxyl group, including natural and unnatural amino acids. Neutral, basic, or acidic amino acids may be used. In addition to amino acids that function as neurotransmitters and other transmitters, amino acids that are components of polypeptide compounds such as physiologically active peptides (including dipeptides, tripeptides, tetrapeptides, and oligopeptides) and proteins may also be used, such as α-amino acids, β-amino acids, and γ-amino acids. Optically active amino acids are preferably used as amino acids. For example, while either D- or L-amino acids may be used for α-amino acids, it may be preferable to select optically active amino acids that function in living organisms. Furthermore, the N-terminus of the amino acid may be N-acylated (for example, N-acetylated) or N-carbamoylated.

[0050] As used herein, the term "amino acid residue" refers to a structure corresponding to the partial structure remaining after removing the hydroxyl group from the carboxyl group of an amino acid. The amino acid residues include alpha amino acid residues, beta amino acid residues, and gamma amino acid residues.

[0051] As used herein, the term "peptide" refers to a structure in which two or more amino acids are linked by peptide bonds.

[0052] When L, together with the C=O to which it is bonded, forms part of an amino acid, for example, the carboxyl group of the amino acid side chain is -NR 2 One example is a structure in which a carbonyl group is bonded to H and becomes part of an amino acid.

[0053] In one embodiment of the present invention, the partial structure of the amino acid of L is represented by the following formula (3):

[0054] TIFF0007802305000023.tif23153* represents the site of bonding with C=O.

[0055] In one preferred embodiment of the present invention, -NR 2 -CO-L is represented by the following formula: -NH-CO-CHR3-NHR0(1)

[0056] In formula (1), the portion -CO-CHR3-NHR0 constitutes an amino acid residue. In formula (1), R3 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, and proline). R3 can also form a ring together with the nitrogen atom of NHR0. R 3 R3 also includes groups that form the side chains of unnatural amino acids (such as citrulline and norvaline). R3 also includes groups in which a portion of the group that forms the side chain of a natural amino acid or unnatural amino acid is substituted or modified with another substituent. R3 also includes groups other than the groups that form the side chains of natural amino acids or unnatural amino acids, such as alkyl groups having various substituents.

[0057] In formula (1), R0 represents an N-terminal protecting group (for example, an acetyl group (-COCH3), succinamide (-CO-C2H4-COOH), Cbz (benzyloxycarbonyl group), etc.), or a saturated or unsaturated alkyl group having 1 to 20 carbon atoms.

[0058] Examples of the amino acid residue represented by -CO-CHR3-NHR0 in formula (1) include glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, proline, pyroglutamic acid, Lys(Cbz) (a group in which the amino group in the side chain of lysine is substituted with a benzyloxycarbonyl group), citrulline, Me Examples of amino acid residues include, but are not limited to, t(O2) (a group in which the sulfur (S) in the side chain of methionine is replaced with sulfur dioxide (SO2)), sarcosine, 2-aminobutanoic acid, thioproline, azetidine carbonyl, Tyr(4-NO2) (a group in which the hydroxyl group in the side chain of tyrosine is substituted with a nitro group), Ac-Met (a group in which the N-terminus of methionine is protected with an acetyl group), and Cbz-Ala (a group in which the N-terminus of alanine is protected with Cbz (benzyloxycarbonyl group)). The amino acid residue represented by -CO-CHR3-NHR0 in formula (1) may be either an L-form or a D-form.

[0059] In one preferred embodiment of the present invention, -NR 2 -CO-L is represented by the following formula: TIFF0007802305000024.tif25159

[0060] In formula (2), R4 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, or proline). R4 can also form a ring with the nitrogen atom of the NH group adjacent to the carbon to which it is attached. R4 also includes groups that constitute the side chain of an unnatural amino acid (e.g., citrulline or norvaline). R4 also includes groups in which a portion of the group that constitutes the side chain of a natural or unnatural amino acid is substituted or modified with another substituent. R4 also includes groups other than the groups that constitute the side chain of a natural or unnatural amino acid, such as alkyl groups having various substituents.

[0061] In formula (2), R5 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, or proline). R5 can also form a ring with the nitrogen atom of an amino group or other group adjacent to the carbon to which it is attached. R5 also includes groups that constitute the side chain of an unnatural amino acid (e.g., citrulline or norvaline). R5 also includes groups in which a portion of the group that constitutes the side chain of a natural or unnatural amino acid is substituted or modified with another substituent. R5 also includes groups other than the groups that constitute the side chain of a natural or unnatural amino acid, such as alkyl groups having various substituents.

[0062] In equation (2), TIFF0007802305000025.tif7164 represents an amino group, an N-acetylated or similar amino group, a structure in which an amino group is bonded to an amino acid (the N-terminus may be acetylated or similar), or a structure in which an amino group is bonded to a peptide (the N-terminus may be acetylated or similar) in which multiple amino acids are linked by peptide bonds.

[0063] The portion of formula (2) represented by the following formula (2a) constitutes a peptide. TIFF0007802305000026.tif26142

[0064] Examples of the peptide represented by formula (2a) include Glu-Pro-, Suc-Ala-Ala-Pro-Abu-, Gly-Pro-, Lys-Ala, Phe-Met-, Cbz-Arg-Arg -, D-Ala-Leu-Lys-, Ac-Leu-Leu-Arg-, Lys-His-Leu-Tyr-, Phe-Thr-Thr-Tyr-, Suc-Leu-Leu-Val-Tyr-, A Examples include, but are not limited to, c-Asp-Glu-Val-Asp-, Ac-Ile-Glu-Thr-Asp-, Ac-Ala-Ala-Pro-Val-, MeOSuc-Ala-Ala-Pro-Val-, Cbz-Gly-Val-Val-, Cbz-Gly-Pro-, Cbz-Ser-Lys-Leu-Gln-, Ac-Leu-Arg-Gly-Gly- and the like.

[0065] Amino group (-NR 2 H) can be converted to an amide group by condensing the organic acid with a dehydrating condensing agent (COMU, HATU, etc.), or by adjusting and reacting an acid anhydride or acid chloride.

[0066] Amino group (-NR 2 H) into the group represented by formula (1) can be achieved by condensing an appropriately protected amino acid with a dehydrating condensing agent (COMU, HATU, etc.), or by reacting an acid anhydride or acid chloride to form an amide bond, followed by deprotecting the protecting group of the amino acid side chain.

[0067] Amino group (-NR 2 When converting H) to a group represented by formula (2), a separately prepared side-chain protected peptide is condensed with a dehydrating condensing agent (COMU, HATU, etc.) to deprotect the side-chain protecting group.

[0068] Amino group (-NR 2 When H) is converted to a phosphoramidite group, this is done by a method using a reagent such as phosphoramidite.

[0069] Amino group (-NR 2 When H) is converted into a sulfonamide group, it is carried out by reaction with a sulfonic acid chloride.

[0070] (ii) When A is a hydroxyl group, the hydroxyl group is converted into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide).

[0071] The ester group is -COOR 3 and R 3 represents a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, -(C2H4) s -CH3 (where s is an integer from 1 to 10).

[0072] The phosphate ester group includes a monophosphate ester and a diphosphate ester.

[0073] In the case of a phosphate diester (-OP(=O)(OH)(OR'), R' is represented, for example, by WU-, where W is an organic base and U is a partial structure of a sugar or a derivative thereof, or a single bond. The sugar or derivative of U is ribose, deoxyribose, or a derivative thereof. The ribose, deoxyribose, or a derivative thereof is bound to an organic base at the 1'-position and to a phosphate at the 5'-position. The organic base of W is preferably a nucleic acid base and its derivatives; a choline partial structure ((CH3)3N + The amino group or ammonium group represented by the amino group (R"N-) is selected from the group consisting of a hydrogen atom or an alkyl group having 1 to 10 carbon atoms, and may be the same or different. The nucleobase is selected from the group consisting of adenine, thymine, cytosine, guanine and uracil.

[0074] Furthermore, the phosphoric acid monoester and phosphoric acid diester may be bonded to the benzene ring via a linker (Y). In this case, the moiety having the phosphoric acid monoester is represented by the formula -YOP(=O)(OH)2, and the moiety having the phosphoric acid diester is represented by the formula -YOP(=O)(OH)(OR'). Y is -O-(CH2) n1 -, -O-(CH2) n2 -Ar1-, -NH-(CH2) n3 - or -NH-(CH2) n4 -Ar2-. In the above linker, the bond to the benzene ring may be in either the left or right direction, but preferably O or NH is bonded to the benzene ring. n1, n2, n3 and n4 each independently represent an integer of 1 to 10. Ar1 and Ar2 each independently represent a substituted or unsubstituted arylene group. The unsubstituted arylene group in Ar1 and Ar2 preferably has 6 to 14 carbon atoms, and specific examples thereof include a phenylene group, a naphthylene group, etc. Among these, the unsubstituted arylene group in Ar1 and Ar2 is preferably a phenylene group. Examples of the substituent that the arylene group has include a halogen atom and an alkyl group having 1 to 10 carbon atoms. The halogen atom is preferably a chlorine atom, a bromine atom, or an iodine atom. The alkyl group having 1 to 10 carbon atoms is preferably a straight chain alkyl group, and methyl A group or an ethyl group is more preferred.

[0075] Sulfuric acid esters are represented by -OS(=O)2(OH).

[0076] The ether group is -OR 4 and R 4 is a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms.

[0077] The sugar substructure of L' in -O-L', together with the O to which L' is attached, constitutes a sugar, a part of a sugar. Examples of sugars include D-glucose, D-galactose, L-galactose, D-glucopyranose, D-xylose, D-mannose, D-fucose, L-fucose, D-arabinose, L-arabinose, DN-acetylglucosamine, DN-acetylgalactosamine, sialic acid, and the like, with D-glucopyranose being preferred.

[0078] When a hydroxyl group is converted to an ester group, this is done by condensing an organic acid with a dehydrating condensing agent (COMU, HATU, etc.), or by adjusting and reacting an acid anhydride or acid chloride.

[0079] When the hydroxyl group is converted into a phosphate group, the product obtained in step (1) is reacted with a phosphate chloride such as phosphoryl chloride or its analogue.

[0080] When a hydroxyl group is converted into a sulfate group, this is done by a methodology such as using a base complex.

[0081] When a hydroxyl group is converted into an ether group, it is carried out by reacting it under basic conditions with a bromide, iodide, or the like that gives the desired alkylation.

[0082] The hydroxyl group can be converted to -O-L' (where L' represents a sugar or a partial structure of a sugar) by reacting it under basic conditions with a bromide, an ester, or the like that gives the desired glycosidic bond.

[0083] Process (3) In step (3), the protecting group of the group T in the product obtained in step (2) is removed. The protecting group can be removed by, for example, exposing the reaction solution to acidic conditions such as trifluoroacetic acid, or by using a reagent that provides fluoride ions such as TBAF.

[0084] Furthermore, in step (3), a crude purification step may be included after removal of the protecting group of the T group. Here, the crude purification step includes, but is not limited to, ether precipitation, HPLC elution, and the like.

[0085] Process (4) In step (4), a compound represented by the following formula (II) is added to the product obtained in step (4)(3). TIFF0007802305000027.tif37154

[0086] The step (4) is characterized by the use of a solid-phase extraction using a carrier (compound represented by formula (II)) bound with phos-tag, which specifically captures phosphate groups. As shown in Figure 1, at the end of step (3), the liquid phase contains various reactants, reagents, and products, but the addition of the compound represented by formula (II) allows the specific capture of compounds with phosphonic acid groups.

[0087] In formula (II), M is Zn or Cu, preferably Zn.

[0088] In formula (II), X is a linker group. Examples of linker groups include C1-C6 alkylene groups, amino groups (-NH-), ether groups (-O-), thioether groups (-S-), carbonyl groups (-C(=O)-), thionyl groups (-C(=S)-), ester groups, amide groups, urea groups (-NHC(=O)NH-), thiourea groups (-NHC(=S)NH-), and polyethylene glycol; and C1-C6 alkylene groups having at one end a group selected from the group consisting of amino groups, ether groups, thioether groups, carbonyl groups, thionyl groups, ester groups, amide groups, urea groups, thiourea groups, and polyethylene glycol; C1-C6 alkylene groups having at both ends the same or different groups selected from the group consisting of amino groups, ether groups, thioether groups, carbonyl groups, thionyl groups, ester groups, amide groups, urea groups, and thiourea groups; and groups in which two or more groups selected from the group consisting of these groups are linearly linked. The linker group is preferably a C1-C6 alkylene group having an amide group at one end, polyethylene glycol, or a combination of these structures linked by an amide bond or triazole structure.

[0089] In formula (II), P is a carrier. Any carrier used in solid-phase synthesis and solid-phase extraction can be used as the carrier for P, but for example, agarose gel, resin (such as polystyrene beads), magnetic beads, and metal nanoparticles can be suitably used.

[0090] Process (5) In step (5), the product obtained in step (4) is purified, and then the compound of formula (III) is eluted or separated.

[0091] Purification of the product is achieved by washing with a wash buffer (e.g., a solution of 50% H2O and 50% MeCN containing Bis Tris-AcOH and NaCl), followed by washing with water.

[0092] The compound of formula (III) can be eluted by adjusting the pH and / or adding a phosphoric acid or phosphonic acid-containing compound (typically phosphoric acid) to elute the compound. The pH can be adjusted using an appropriate acid or base, but for example, the target compound can be eluted by adjusting the pH by adding an aqueous NH3 solution, an aqueous ethylenediamine solution, or the like.

[0093] (2) Compound represented by general formula (III) The preparation method of the present invention provides a compound represented by the following general formula (III). TIFF0007802305000028.tif32161

[0094] Another embodiment of the present invention is a compound represented by general formula (III) (hereinafter also referred to as "the compound of the present invention"). The compound represented by formula (III) is also referred to as "the fluorescent probe of the present invention." The compound of the present invention can be used as a fluorescent probe for detecting one or more enzyme activities, depending on the type of functional group introduced as B.

[0095] In formula (III), S, T, R 1 and m are as defined in formula (I).

[0096] In formula (III), B is an amide group (—NR 2 C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, -NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), a sulfonamide group (—NR 2 -SO2-R c , R cis selected from a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide).

[0097] B is an amide group (-NR 2 When the compound represented by formula (III) is C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, the compound represented by formula (III) can be used as a fluorescent probe for detecting amidase activity. The substituent may be a carboxyl group or the like. Examples of the substituted or unsubstituted alkyl group having 1 to 8 carbon atoms for R include, but are not limited to, a hexyl group and an ethyl group having a carboxyl group.

[0098] -NR 2 The partial structure of an amino acid L in -CO-L means that it, together with the C=O to which it is bonded, constitutes an amino acid, an amino acid residue, a peptide, or a part of an amino acid. The amino acids, amino acid residues and peptides are as described in detail in step (2).

[0099] When L, together with the C=O to which it is bonded, constitutes a part of an amino acid, for example, the carboxyl group of the side chain of the amino acid is -NR 2 One example is a structure in which a carbonyl group is bonded to H and becomes part of an amino acid.

[0100] In one embodiment of the present invention, the partial structure of the amino acid of L is represented by the following formula (3):

[0101] TIFF0007802305000029.tif22151* represents the C=O bonding site.

[0102] In one preferred embodiment of the present invention, -NR 2 -CO-L is represented by the following formula: -NH-CO-CHR3-NHR0(1)

[0103] In formula (1), the portion -CO-CHR3-NHR0 constitutes an amino acid residue. In formula (1), R3 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, and proline). R3 can also form a ring together with the nitrogen atom of -NHR0. R3 also includes groups that form the side chains of unnatural amino acids (such as citrulline and norvaline). R3 also includes groups in which a portion of the group that forms the side chain of a natural amino acid or unnatural amino acid has been substituted or modified with another substituent. R3 also includes groups other than the groups that form the side chains of natural amino acids or unnatural amino acids, such as alkyl groups having various substituents.

[0104] In formula (1), R0 represents an N-terminal protecting group (for example, an acetyl group (-COCH3), succinamide (-CO-C2H4-COOH), Cbz (benzyloxycarbonyl group), etc.), or a saturated or unsaturated alkyl group having 1 to 20 carbon atoms.

[0105] Examples of the amino acid residue represented by -CO-CHR3-NHR0 in formula (1) include glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, proline, pyroglutamic acid, Lys(Cbz) (a group in which the amino group in the side chain of lysine is substituted with a benzyloxycarbonyl group), citrulline, Me Examples of amino acid residues include, but are not limited to, t(O2) (a group in which the sulfur (S) in the side chain of methionine is replaced with sulfur dioxide (SO2)), sarcosine, 2-aminobutanoic acid, thioproline, azetidine carbonyl, Tyr(4-NO2) (a group in which the hydroxyl group in the side chain of tyrosine is substituted with a nitro group), Ac-Met (a group in which the N-terminus of methionine is protected with an acetyl group), and Cbz-Ala (a group in which the N-terminus of alanine is protected with Cbz (benzyloxycarbonyl group)). The amino acid residue represented by -CO-CH2R3-NHR0 in formula (1) may be either an L-form or a D-form.

[0106] When B is a substituent represented by formula (1), the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of an aminopeptidase or protease.

[0107] In one preferred embodiment of the present invention, -NR 2 -CO-L is represented by the following formula: TIFF0007802305000030.tif25157

[0108] In formula (2), R4 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, or proline). R4 can also form a ring with the nitrogen atom of the NH group adjacent to the carbon to which it is attached. R4 also includes groups that constitute the side chain of an unnatural amino acid (e.g., citrulline or norvaline). R4 also includes groups in which a portion of the group that constitutes the side chain of a natural or unnatural amino acid is substituted or modified with another substituent. R4 also includes groups other than the groups that constitute the side chain of a natural or unnatural amino acid, such as alkyl groups having various substituents.

[0109] In formula (2), R5 represents a group such as hydrogen or a methyl group that constitutes the side chain of a natural amino acid (glycine, alanine, leucine, isoleucine, valine, lysine, cysteine, threonine, arginine, asparagine, aspartic acid, glutamine, glutamic acid, serine, histidine, phenylalanine, methionine, tryptophan, tyrosine, or proline). R5 can also form a ring with the nitrogen atom of an amino group or other group adjacent to the carbon to which it is attached. R5 also includes groups that constitute the side chain of an unnatural amino acid (e.g., citrulline or norvaline). R5 also includes groups in which a portion of the group that constitutes the side chain of a natural or unnatural amino acid is substituted or modified with another substituent. R5 also includes groups other than the groups that constitute the side chain of a natural or unnatural amino acid, such as alkyl groups having various substituents.

[0110] In equation (2), TIFF0007802305000031.tif7161 represents an amino group, an N-acetylated or similar amino group, a structure in which an amino group is bonded to an amino acid (the N-terminus may be acetylated or similar), or a structure in which an amino group is bonded to a peptide (the N-terminus may be acetylated or similar) in which multiple amino acids are linked by peptide bonds.

[0111] The portion of formula (2) represented by the following formula (2a) constitutes a peptide. TIFF0007802305000032.tif27156

[0112] Examples of the peptide represented by formula (2a) include Glu-Pro-, Suc-Ala-Ala-Pro-Abu-, Gly-Pro-, Lys-Ala, Phe-Met-, Cbz-Arg-Arg -, D-Ala-Leu-Lys-, Ac-Leu-Leu-Arg-, Lys-His-Leu-Tyr-, Phe-Thr-Thr-Tyr-, Suc-Leu-Leu-Val-Tyr-, A Examples include, but are not limited to, c-Asp-Glu-Val-Asp-, Ac-Ile-Glu-Thr-Asp-, Ac-Ala-Ala-Pro-Val-, MeOSuc-Ala-Ala-Pro-Val-, Cbz-Gly-Val-Val-, Cbz-Gly-Pro-, Cbz-Ser-Lys-Leu-Gln-, Ac-Leu-Arg-Gly-Gly- and the like.

[0113] When B is a substituent represented by formula (2), the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of a peptidase or protease.

[0114] B is a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO)), the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of serine hydrolase.

[0115] B is a sulfonamide group (-NR 2 -SO2-R c , Rc is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO)), the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of sulfur metabolism-related enzymes such as glutathione S-transferase.

[0116] The ester group is -COOR 3 and R 3 represents a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, -(C2H4) s -CH3 (where s is an integer from 1 to 10).

[0117] B is R 3 When is an ester group that is a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of esterase.

[0118] B is R 3 Ga-(C2H4) s When the ester group is —CH3 (where s is an integer of 1 to 10), the compound represented by formula (III) can be used as a fluorescent probe for detecting lipase activity.

[0119] The phosphate ester group includes a phosphate monoester (-OP(=O)(OH)2) and a phosphate diester (-OP(=O)(OH)(OR')).

[0120] When B is a phosphoric acid monoester, the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of phosphatase.

[0121] When B is a phosphate diester (-OP(=O)(OH)(OR'), R' is represented, for example, by WU-, where W is an organic base and U is a partial structure of a sugar or a derivative thereof, or a single bond. The sugar or derivative of U is ribose, deoxyribose, or a derivative thereof. The ribose, deoxyribose, or a derivative thereof is bound to an organic base at the 1'-position and to a phosphate at the 5'-position. The organic base of W is preferably a nucleic acid base and its derivatives; a choline partial structure ((CH3)3N + The amino group or ammonium group represented by the amino group (R"N-) is selected from the group consisting of a hydrogen atom or an alkyl group having 1 to 10 carbon atoms, and may be the same or different. The nucleobase is selected from the group consisting of adenine, thymine, cytosine, guanine and uracil.

[0122] Furthermore, the phosphoric acid monoester and phosphoric acid diester may be bonded to the benzene ring via a linker (Y). In this case, the moiety having the phosphoric acid monoester is represented by the formula -YOP(=O)(OH)2, and the moiety having the phosphoric acid diester is represented by the formula -YOP(=O)(OH)(OR'). Y is -O-(CH2) n1 -, -O-(CH2) n2 -Ar1-, -NH-(CH2) n3 - or -NH-(CH2) n4 -Ar2-. In the above linker, the bond to the benzene ring may be in either the left or right direction, but preferably O or NH is bonded to the benzene ring. n1, n2, n3 and n4 each independently represent an integer of 1 to 10. Ar1 and Ar2 each independently represent a substituted or unsubstituted arylene group. The unsubstituted arylene group in Ar1 and Ar2 preferably has 6 to 14 carbon atoms, and specific examples thereof include a phenylene group, a naphthylene group, etc. Among these, the unsubstituted arylene group in Ar1 and Ar2 is preferably a phenylene group. Examples of the substituent that the arylene group has include a halogen atom and an alkyl group having 1 to 10 carbon atoms.

[0123] When B is a phosphate diester, the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of ENPPs.

[0124] Sulfuric acid esters are represented by -OS(=O)2(OH). When B is a sulfate ester, the compound represented by formula (III) can be used as a fluorescent probe for detecting sulfatase activity.

[0125] The ether group is -OR 4 and R 4 is a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms. When B is an ether group, the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of oxidoreductases such as cytochrome P450.

[0126] The sugar substructure of L' in -O-L', together with the O to which L' is attached, constitutes a sugar, a part of a sugar. Examples of sugars include D-glucose, D-galactose, L-galactose, D-glucopyranose, D-xylose, D-mannose, D-fucose, L-fucose, D-arabinose, L-arabinose, DN-acetylglucosamine, DN-acetylgalactosamine, sialic acid, and the like, with D-glucopyranose being preferred.

[0127] When B constitutes a part of β-D-glucopyranose, the compound represented by formula (III) can be used as a fluorescent probe for detecting the activity of β-glycosidase.

[0128] Non-limiting examples of fluorescent probes of the present invention are shown below.

[0129] (1) Fluorescent probes for detecting peptidases, amidases, and proteases TIFF0007802305000033.tif182169

[0130] TIFF0007802305000034.tif175170

[0131] (2) Fluorescent probe for detecting glycosidases TIFF0007802305000035.tif32169

[0132] The compound represented by general formula (III) may have one or more asymmetric carbon atoms depending on the type of substituent, and may exist as stereoisomers such as optical isomers or diastereoisomers. Pure stereoisomers, any mixture of stereoisomers, racemates, etc. are all included within the scope of the present invention. In addition, the compound represented by general formula (III) or a salt thereof may exist as a hydrate or solvate, and all of these substances are included within the scope of the present invention. The type of solvent that forms the solvate is not particularly limited, and examples include solvents such as ethanol, acetone, and isopropanol.

[0133] As a non-limiting example of the preparation method of the present invention, Figure 2 shows an example in which the fluorescent probe of the present invention was synthesized using PMAC by first protecting the phosphonic acid group with TBDPS-Cl, amidating the amino group, deprotecting it, reacting it with a phos-tag, purifying it, and adjusting the pH. At the stage where the amidation of PMAC is completed, as shown in the upper part of Figure 2, the liquid phase contains various reactants, reagents, and products, as shown in the middle part of Figure 2. When the compound of formula (II) (a carrier bound to a phos-tag) is added, the compound specifically captures PMAC-AC having a phosphonic acid group, and the desired fluorescent probe of the present invention can be obtained simply by purifying it and adjusting the pH (see Figure 4).

[0134] The preparation method of the present invention enables probe synthesis with simple experimental procedures, and can be carried out, for example, in a small plastic tube (for example, a 1.5 mL plastic tube).

[0135] 3. Fluorescent probe of the present invention As described above, the fluorescent probe of the present invention, which is a compound represented by formula (III), can be used as a fluorescent probe for detecting one or more types of enzyme activity, depending on the type of functional group introduced as B. Therefore, another embodiment of the present invention is a fluorescent probe for detecting enzyme activity, which comprises a compound represented by general formula (III) or a salt thereof.

[0136] Another aspect of the present invention is a method for detecting the activity of a target enzyme in a cell, comprising the steps of (a) introducing a fluorescent probe of the present invention into the cell, and (b) measuring the fluorescence emitted by the fluorescent probe reacting with the target enzyme in the cell. Here, the fluorescent probe can be introduced into cells by using a cell lysate or cultured cells.

[0137] The method of the present invention can further include observing the fluorescent response using a fluorescent imaging means. The means for observing the fluorescent response can be a fluorometer with a wide measurement wavelength range, but the fluorescent response can also be visualized using a fluorescent imaging means capable of displaying a two-dimensional image. By using a fluorescent imaging means, the fluorescent response can be visualized two-dimensionally, allowing the target enzyme to be instantly visualized. Any device known in the technical field can be used as the fluorescent imaging device. In some cases, the reaction between the sample to be measured and the fluorescent probe can also be detected by changes in the ultraviolet-visible absorption spectrum (e.g., changes in absorbance at a specific absorption wavelength).

[0138] The method of using the fluorescent probe of the present invention is not particularly limited, and it can be used in the same manner as conventionally known fluorescent probes. Typically, the compound of the present invention or a salt thereof is dissolved in an aqueous medium such as physiological saline or a buffer solution, or a mixture of an aqueous medium and a water-miscible organic solvent such as ethanol, acetone, ethylene glycol, dimethyl sulfoxide, or dimethylformamide, and the resulting solution is added to an appropriate buffer solution containing cells or tissues to measure the fluorescence spectrum. The fluorescent probe of the present invention may also be used in the form of a composition in combination with an appropriate additive. For example, it can be combined with additives such as a buffer, solubilizer, or pH adjuster.

[0139] The cell sample to be measured in step (a) above can be cells expressing the target enzyme, but when such cells are cancer cells or cancer tissues expressing the target enzyme, the cancer cells or cancer tissues can be detected or visualized by the detection method of the present invention. That is, the fluorescent probe of the present invention, the composition containing the fluorescent probe, and the detection method of the present invention can also be used for predicting or diagnosing cancer.

[0140] As used herein, the term "cancer tissue" refers to any tissue that contains cancer cells. The term "tissue" should be interpreted in the broadest sense, including an organ or a part or the whole of an organ, and should not be interpreted in any restrictive sense. As cancer tissue, tissue expressing the target enzyme is preferred. Furthermore, the term "diagnosis" as used herein should be interpreted in the broadest sense, including confirming the presence of disease in any biological site, for example, in the case of cancer, confirming the presence of cancer tissue with the naked eye or under a microscope.

[0141] In the detection method of the present invention, it is preferable to use a kit for detecting a target enzyme containing the above-mentioned fluorescent probe. In the kit, the fluorescent probe of the present invention is usually prepared as a solution, but it can also be provided as a composition in an appropriate form, such as a powder mixture, a lyophilized product, granules, tablets, or liquid, and can be applied by dissolving it in distilled water for injection or an appropriate buffer solution before use.

[0142] The kit may also contain other reagents, etc., as needed. For example, additives such as solubilizing agents, pH adjusting agents, buffering agents, and isotonic agents can be used, and the amounts of these additives to be added can be appropriately selected by those skilled in the art.

[0143] The fluorescent probe for detecting a target enzyme of the present invention can be used in a method for detecting the enzymatic activity of a target enzyme in a biological sample by providing the probe in the well of a microdevice described below. That is, one preferred embodiment of the present invention is a fluorescent probe for detecting a target enzyme, which comprises the fluorescent probe of the present invention and is used in a microdevice.

[0144] 4. Microdevices A microdevice according to one embodiment of the present invention comprises the above-described fluorescent probe for enzyme detection according to the present invention. In this specification, the term "microdevice" includes microchamber devices, liposomes, droplets, and the like.

[0145] According to the microdevice of this embodiment, the activity of a target enzyme in a biological sample can be detected with high quantitative accuracy and sensitivity.

[0146] The material of the microdevice is not particularly limited, and examples thereof include glass materials, silicon, and plastics containing dendritic polymers or copolymers. Examples of glass materials include soda-lime glass, Pyrex® glass, Vycor® glass, and quartz glass. Examples of resin polymers include poly(vinyl chloride), poly(vinyl alcohol), poly(methyl methacrylate), poly(vinyl acetate-co-maleic anhydride), poly(dimethylsiloxane) monomethacrylate, cyclic olefin polymers, fluorocarbon polymers, polystyrene, polypropylene, and polyethyleneimine. Examples of copolymers include poly(vinyl acetate-co-maleic anhydride), poly(styrene-co-maleic anhydride), poly(ethylene-co-acrylic acid), and derivatives thereof. Furthermore, examples of the shape of the microdevice include a multiwell plate in which an arbitrary number of wells (e.g., microwells) are arranged, as shown in Figure 5. The number of wells per plate can be, for example, from 1 to 10 million, for example, from 10 to 500,000, for example, about 100,000.

[0147] The pore size of the wells of the microdevice may be, for example, 10 nm or more and 10 μm or less, for example, 100 nm or more and 10 μm or less, for example, 1 μm or more and 10 μm or less. The depth of the wells of the microdevice may be, for example, 10 nm or more and 100 μm or less, for example, 100 nm or more and 80 μm or less, or for example, 200 nm or more and 70 μm or less. When the pore size and depth are within the above ranges, it is possible to capture one molecule of the target enzyme in the well, and to detect the enzymatic activity of each molecule of the enzyme in the biological sample.

[0148] The microdevice may have one type of the above-mentioned enzyme-detecting fluorescent probe per well. This allows the fluorescence intensity of one type of fluorescent probe of the present invention to be detected for one molecule of target enzyme in a biological sample, and allows the enzymatic activity of one molecule of target enzyme to be compared.

[0149] Furthermore, the amount of the fluorescent probe of the present invention contained in one well of the microdevice may be, for example, 100 nM or more and 1000 μM or less, for example, 1 μM or more and 1000 μM or less, for example, 10 μM or more and 1000 μM or less. To use the microdevice, first, a solution containing a biological sample is added to the microdevice, and then a sealing oil is added dropwise to encapsulate the target enzyme in the biological sample in the well of the microdevice. The fluorescent probe of the present invention may be added to the solution containing the biological sample.

[0150] 5. Fluorescent Probe Library Construction Organic small molecule fluorescent probes are excellent molecular tools that can detect enzyme activity through increased fluorescence. In particular, the inventors' research has shown that by using them to detect single-molecule enzyme activity using the above-mentioned microdevice, it is possible to detect multiple enzyme activities in biological samples with ultra-high sensitivity and diagnose diseases by detecting abnormalities in the activities (e.g., PCT / JP2020 / 22546, Science Advances 2020). On the other hand, the fluorescent probes used for such activity detection are usually prepared by synthesizing and purifying a single compound over a period of several days to several months, making it difficult to prepare a group of fluorescent probes that can comprehensively detect the activity of various enzymes present in blood, etc. In contrast, the method for preparing fluorescent probes of the present invention described above allows for probe synthesis and purification using a very simple scheme that involves only mixing and removing the solution, and since parallel processing is also possible, it is possible to prepare around 10 types of probes in a few days, which can greatly improve the efficiency of development such as probe improvement.

[0151] That is, another embodiment of the present invention is This method involves carrying out the following steps (1) to (5) in parallel in a plurality of reaction vessels, thereby preparing one type of compound represented by the following formula (III) in each of the reaction vessels. TIFF0007802305000036.tif30157 (in formula (III), B is an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), a sulfonamide group (—NR 2 -SO2-R c , R c is selected from a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide); R 1 , m, and n are as defined in formula (I). (1) protecting the group T of a compound represented by the following formula (I); TIFF0007802305000037.tif29155 (in formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), where R 2 represents a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms; R 1 are, if present, identical or different monovalent substituents present on the benzene ring; T is selected from a phosphonic acid group (-P(=O)(OH)), a phosphate ester group (-OP(=O)(OH)), or a phosphoric acid amide group (-NH-P(=O)(OH)); m is an integer from 0 to 3; n is an integer from 0 to 1. (2) Regarding the product obtained in step (1), (i) A is an amino group (-NR 2 In the case of H, the amino group is converted to an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramidate group (-NR 2 -PO(OR a )(OR b ), R a and R b are each independently a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), or a sulfonamide group (—NR 2 -SO2-R c , R c is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms; (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -O-L' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) a step of adding a compound represented by the following formula (II) to the product obtained in the step (3); TIFF0007802305000038.tif38152 (in formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) Purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III).

[0152] As described above, by carrying out steps (1) to (5) in parallel in a plurality of reaction vessels, one type of compound represented by the following formula (III) can be prepared in each of the reaction vessels, thereby constructing a group of compounds represented by formula (III). Therefore, the method for preparing the compound represented by formula (III) above is also referred to as "method 2 for preparing the compound of the present invention" or "method for preparing a group of compounds of the present invention." The steps (1) to (5) used in the preparation method 2 of the compound of the present invention are the same as those described in detail in the preparation method of the present invention.

[0153] When carrying out the method 2 for preparing the compound of the present invention, the compound of formula (I) used in step (1) may be the same or different in each reaction vessel. When the compound of formula (I) used in step (1) is the same in each reaction vessel, it is preferable to use a different reagent in each reaction vessel in step (2) to convert the A moiety into a functional group that is cleaved upon contact with a substance to be measured, such as an enzyme.

[0154] As the multiple reaction vessels used in the preparation method 2 of the compound of the present invention, multiple small plastic tubes (for example, 1 to 30 tubes) described in the preparation method of the fluorescent probe of the present invention can be used in parallel.

[0155] In the preparation method 2 of the compound of the present invention, the compounds constituting the obtained compound group may all be different, or may contain some of the same compounds and most of them may be different from each other. It is preferable that 80% or more of the compounds constituting the compound group are different, more preferably that 90% or more of the compounds constituting the compound group are different, even more preferably that 95% or more of the compounds constituting the compound group are different, and even more preferably that all of the compounds constituting the compound group are different.

[0156] By carrying out the preparation method 2 of the compound of the present invention, it is possible to synthesize several tens of probes per day. Furthermore, by the compound preparation method 2 of the present invention, it is possible to simultaneously prepare a group of fluorescent probes that can detect various hydrolases (esterases, sulfatases, ENPPs, phosphatases, lipases, glycosidases, amidases, aminopeptidases, peptidases, proteases, etc.), as schematically shown in Figure 3.

[0157] Furthermore, by repeating the compound preparation method 2 of the present invention several times, it is possible to construct a library of several hundred compounds capable of detecting multiple enzymes.

[0158] That is, another aspect of the present invention is a method for constructing a library of compounds of formula (III), which comprises repeating the preparation of a group of compounds of formula (III) multiple times (hereinafter also referred to as the "library construction method of the present invention").

[0159] 6. Method for detecting enzyme activity in biological samples Another embodiment of the present invention is a method for detecting the activity of multiple enzymes in a biological sample using a compound of formula (III) (i.e., a compound of the present invention) or a library thereof (hereinafter also referred to as the "detection method of the present invention").

[0160] In the detection method of the present invention, a microdevice can be suitably used.

[0161] The microdevice used in the detection method of the present invention comprises the compound of formula (III) or a library thereof.

[0162] According to the microdevice of this embodiment, the activities of multiple enzymes in a biological sample can be detected with high quantitative accuracy and sensitivity.

[0163] The materials and shapes of the microdevice that can be used in the detection method of the present invention are as described in detail for the microdevice that can be used in the fluorescent probe for enzyme detection of the present invention.

[0164] The pore size of the wells of the microdevice may be, for example, 10 nm or more and 10 μm or less, for example, 100 nm or more and 10 μm or less, for example, 1 μm or more and 10 μm or less. The depth of the wells of the microdevice may be, for example, 10 nm or more and 100 μm or less, for example, 100 nm or more and 80 μm or less, or for example, 200 nm or more and 70 μm or less. When the pore size and depth are within the above ranges, it is possible to capture one molecule of the enzyme in the well, and to detect the enzymatic activity of each molecule of the enzyme in the biological sample.

[0165] The microdevice may have one type of compound of formula (III) (fluorescent probe of the present invention) per well. This allows the fluorescence intensity of one type of fluorescent probe of the present invention to be detected for each of multiple enzyme molecules in a biological sample, and the enzymatic activity of each of the multiple enzymes can be compared with that of one molecule of the compound of the present invention.

[0166] Furthermore, the amount of the fluorescent probe of the present invention contained in one well of the microdevice may be, for example, 100 nM or more and 1000 μM or less, for example, 1 μM or more and 1000 μM or less, for example, 10 μM or more and 1000 μM or less. To use the microdevice, first, a solution containing a biological sample is added to the microdevice. Next, sealing oil is added dropwise to encapsulate the enzyme in the biological sample in the well of the microdevice. The fluorescent probe of the present invention may also be added to the solution containing the biological sample.

[0167] According to the present invention, there is provided a method for detecting the activity of multiple enzymes in a biological sample, the method comprising contacting the biological sample (e.g., a biological sample isolated from a subject, a biopsy sample, a body fluid sample, an aqueous solution) with a compound of formula (III). In some embodiments, the biological sample can be a blood sample (e.g., a serum sample or a plasma sample). The method can further comprise measuring the fluorescence of the compound after contacting the compound with the aqueous solution. If the compound emits fluorescence, the presence or absence of the fluorescence indicates the presence of enzyme activity in the aqueous solution, and the intensity of the fluorescence indicates the intensity of the enzyme activity in the aqueous solution.

[0168] One aspect of the invention is a method for detecting enzyme activity in a biological sample, comprising contacting a compound of formula (III) with a plurality of enzymes.

[0169] In one preferred aspect of the method for detecting enzyme activity of the present invention, the contacting is carried out in the presence of serum.

[0170] According to the detection method of the present invention, the enzymatic activities of multiple enzymes in a biological sample can be detected. The detection method of the present invention will be described in detail below.

[0171] [Process 1] First, a solution containing a biological sample is added to a microdevice equipped with the compound of formula (III) or a library thereof. Examples of the biological sample include a biological sample isolated from a subject, a biopsy sample, a body fluid sample, and an aqueous solution. The biological sample may also be a blood sample (e.g., a serum sample or a plasma sample). The pH of the solution containing the biological sample may be selected at any value. For example, the pH of the solution may be set to a value close to that in vivo, for example, between 6.0 and 8.0. Alternatively, to target a specific group of enzymes, the pH of the solution may be set to an acidic pH, which corresponds to the optimal pH. Alternatively, a solution containing a biological sample and a solution containing the fluorescent probe of the present invention may be prepared separately, and the two may be mixed by appropriately adjusting the ratio of the biological sample to the fluorescent probe, and the mixed solution may be added to the microdevice.

[0172] The protein concentration of a biological sample, as the concentration of the "protein of interest," is usually, for example, 1 pM or more and 100 pM or less, for example, 10 pM or more and 100 pM or less. Furthermore, the upper limit of the total protein concentration in the sample can be, for example, about 10 μM. As a method for measuring the protein concentration of a biological sample, for example, a method utilizing an antibody-antigen reaction (e.g., ELISA) can be used to measure the concentration of a "protein of interest." In addition, as a method for measuring the total protein concentration in a sample, colorimetric methods utilizing a reaction between a protein and a reagent (e.g., bicinchoninic acid (BCA) method, Bradford method, Lowry method, Biuret method, etc.) can be used. The biological sample may be diluted to the above-mentioned concentration using various aqueous solvents, etc. Examples of the aqueous solvent include, but are not limited to, water, saline, phosphate buffered saline (PBS), Tris buffered saline (TBS), and HEPES buffered saline.

[0173] [Process 2] Next, sealing oil is dropped onto the wells of the microdevice to seal the enzyme in the biological sample. The sealing oil may be any known oil typically used for sealing samples in microdevices, such as fluorine-based oil (FC-40, etc.).

[0174] [Process 3] Next, the fluorescence in the wells of the microdevice is detected using a fluorescence scanner, a fluorescence microscope, etc. The enzyme activity can be evaluated from the detected fluorescence intensity.

[0175] Here, the type of enzyme contained in the well of the microdevice in which the enzyme activity was detected can be determined, for example, by comparing the enzyme activity pattern with that of a separately prepared target protein.

[0176] In one embodiment of the detection method of the present invention, one type of fluorescent probe of the present invention is contacted with multiple enzymes in a biological sample, and the fluorescence intensity of one type of fluorescent probe of the present invention is detected for each of the multiple enzyme molecules in the biological sample, allowing the enzymatic activity of each of the multiple enzyme molecules to be compared. In step 1 above, by preparing a well (e.g., multiple wells) containing one enzyme molecule and multiple fluorescent probes, it becomes possible to measure the enzymatic activity of a single enzyme molecule.

[0177] In another embodiment of the detection method of the present invention, by contacting each fluorescent probe included in the fluorescent probe library of the present invention with multiple enzymes in a biological sample, the fluorescence intensity of each fluorescent probe of the present invention can be detected for each of the multiple enzyme single molecules in the biological sample, and the enzymatic activity of the multiple enzyme single molecules can be compared.It is also possible to screen for fluorescent probes that are more useful in detecting the activity of multiple enzymes in a biological sample.

[0178] The detection method of the present invention makes it possible to detect various pathological enzymes in the blood at the single molecule level.

[0179] Yet another aspect of the present invention is a method for testing an enzyme assay of a composition comprising a compound of formula (III), the method comprising contacting the composition with a biological sample containing or suspected of containing an enzyme that cleaves the compound. In this test method, the same techniques as those described in the above detection method of the present invention can be used.

[0180] 7. Screening Method The library of compounds of formula (III) obtained by the library construction method of the present invention includes a plurality of compounds, for example, several hundred compounds, capable of detecting a plurality of enzymes, and can be used to comprehensively search (screen) candidate biomarker activities from biological samples. More specifically, it is possible to screen fluorescent probes useful for diagnosing diseases, and identify enzyme activities that can serve as biomarkers from the results. That is, another embodiment of the present invention is a method for screening a fluorescent probe capable of detecting a biomarker for a specific disease using a library of compounds of formula (III). In the screening method of the present invention, it is preferable to use a microdevice.

[0181] One aspect of the present invention is a method for producing a medicament for the treatment of a pulmonary arthritis. A method for screening a fluorescent probe capable of detecting a biomarker for a specific disease, the method comprising: (1) adding a library of compounds of formula (III) to a microdevice, such that at least one well of the microdevice contains one compound of formula (III); (2) adding a solution containing a biological sample to the microdevice so that at least one well in the microdevice contains one molecule of the enzyme, wherein the biological sample is obtained from a patient with a specific disease or a healthy subject; (3) contacting a compound of formula (III) with an enzyme and detecting fluorescence in a well of the microdevice, the step comprising: contacting a compound of formula (III) with a biological sample obtained from a patient with a specific disease, and measuring the fluorescence intensity (first fluorescence intensity) from formula (III); contacting the compound of formula (III) with a biological sample obtained from a healthy subject, and measuring the fluorescence intensity (second fluorescence intensity) from formula (III); Includes; (4) comparing the first fluorescence intensity with the second fluorescence intensity, if there is a difference between them, indicating that the compound is a candidate for the fluorescent probe, and thereby determining the compound as a fluorescent probe for detecting biomarker activity; (hereinafter also referred to as "the screening method of the present invention"). The screening method of the present invention makes it possible to comprehensively search (screen) candidate compounds for fluorescent probes capable of detecting biomarker activity from a library of compounds of formula (III) with ultrahigh sensitivity.

[0182] Examples of biological samples include biological samples isolated from subjects, biopsy samples, body fluid samples, and aqueous solutions. Biological samples can also be blood samples (e.g., serum samples or plasma samples). In the screening method of the present invention, the biological sample is preferably a clinical specimen sample.

[0183] Steps (1) and (2) of the screening method of the present invention and the procedure for measuring fluorescence in step (3) are carried out in the same manner as described in the detection method of the present invention. Furthermore, in step (2), the specific conditions for adding the enzyme so that at least one well contains one molecule of the enzyme are to add the enzyme at a concentration that is equal to or greater than the concentration at which at least one well in one lane stochastically contains one molecule of the enzyme. Furthermore, in the screening method of the present invention, for steps (1) and (2), a solution containing a biological sample and a solution containing a compound of formula (III) may be prepared separately, and the ratio of the biological sample to the fluorescent probe may be appropriately adjusted before mixing the two solutions. The mixed solution (i.e., the solution containing the biological sample and the compound of formula (III)) may be added to each well in one lane of the microdevice so that approximately one molecule of the enzyme in the biological sample is distributed.

[0184] In one embodiment of the present invention, body fluid samples (including blood, urine, saliva, etc.) derived from healthy individuals and diseased patients are used as biological samples in steps (1) to (3), and fluorescence in the wells of the microdevice is detected. Based on the results of the detected fluorescence, the enzyme activity in the biological samples is determined. If the activity is significantly different between the two (i.e., the body fluid samples derived from the healthy individual and the diseased patient), the compound of formula (III) added to the microdevice in step (1) is determined to be a fluorescent probe for detecting biomarker activity.

[0185] If the assay results of the compound of formula (III) determined above as a fluorescent probe for detecting biomarker activity show a significant difference in enzyme activity between body fluid samples derived from a healthy subject and a diseased patient, the difference is considered to be due to the activity of the biomarker candidate in the body fluid sample derived from the diseased patient, and therefore the biomarker candidate is likely to be contained in the body fluid sample. Then, by identifying the enzyme contained in the well where the assay results of both body fluid samples are significantly different, the type of biomarker candidate can be determined.

[0186] Furthermore, depending on the type of disease, a body fluid sample derived from a patient may contain multiple biomarker candidates. In such cases, the screening method of the present invention can also assess the activity of two or more compounds of formula (III) as fluorescent probes for detecting biomarker activity.

[0187] 8. Biomarker detection As described above, the fluorescent probe of the present invention, which is a compound represented by formula (III), can be used as a fluorescent probe for detecting one or more types of enzyme activity depending on the type of functional group introduced as B. Furthermore, the fluorescent probe of the present invention can be used to detect a biomarker specific to a specific disease, thereby diagnosing the disease. That is, another embodiment of the present invention is a method for diagnosing a pathological condition by detecting single-molecule enzyme activity using the fluorescent probe of the present invention (hereinafter also referred to as the "diagnostic method of the present invention"). A conceptual diagram of disease diagnosis using the present invention is shown in Figure 6. The diagram on the left relates to the screening method of the present invention described above, and the diagram on the right outlines a method for diagnosing pathological conditions by detecting single-molecule enzyme activity. It is expected that the use of the present invention will enable disease diagnosis based on information such as the number, activity, and activity fluctuations of enzymes. Examples of fluorescent probes of the present invention that can be used to detect such biomarkers, as well as non-limiting examples of diagnostic methods of the present invention, are provided below.

[0188] (1) Detection of ENPP activity That is, another embodiment of the present invention is a method for detecting ENPP activity in a biological sample, comprising contacting a compound of formula (IV) or a salt thereof with the biological sample in an aqueous solution, wherein an increase in fluorescence intensity in the aqueous solution indicates the presence of ENPP activity. TIFF0007802305000039.tif42160In formula (IV), R 1 , S, T, and m are as described in detail in the general formula (I).

[0189] In the above-mentioned method for detecting ENPP activity, one preferred example of the biological sample is a biological sample from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject.

[0190] Another aspect of the present invention is a method for diagnosing pancreatic cancer or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising the steps of: (a) applying a fluorescent probe containing a compound of formula (IV) or a salt thereof to a clinical sample from the subject; and (b) measuring a fluorescent image of the clinical sample to which the fluorescent probe has been applied (hereinafter also referred to as "diagnostic or predictive method 1 of the present invention"). In step (a), the fluorescent probe can be applied to the clinical specimen by, for example, locally spraying a solution of the fluorescent probe onto the clinical specimen.

[0191] The diagnostic or prognostic method 1 of the present invention can be performed during surgical treatment of pancreatic cancer or can be performed ex vivo. The diagnostic or prognostic method 1 of the present invention also includes an embodiment in which the method is performed without involving medical treatment.

[0192] Another aspect of the present invention is a method for diagnosing pancreatic cancer or a method for predicting the possibility that the subject from whom the biological sample was derived has pancreatic cancer, comprising: (a) contacting a biological sample obtained from a subject with a fluorescent probe containing a compound of general formula (IV) or a salt thereof; and (b) measuring the fluorescence intensity of the biological sample contacted with the fluorescent probe (hereinafter also referred to as "diagnostic or predictive method 2 of the present invention").

[0193] The diagnostic or prognostic methods 1 and 2 of the present invention are based on detecting the enzymatic activity of ENPP using a compound of formula (IV) or a salt thereof. Preferably, the enzymatic activity of ENPP3, which is specifically found in pancreatic cancer, is detected as the ENPP.

[0194] The diagnostic or prognostic method 2 of the present invention can preferably be carried out using a microdevice.

[0195] The diagnostic or prognostic method 2 of the present invention can be performed by preparing a solution containing a biological sample and a compound of general formula (IV) or a salt thereof, adding the solution to a microdevice, sealing the added solution in each well, incubating the microdevice with the solution sealed in it, and then measuring the fluorescence intensity of each well using a fluorescence microscope. Furthermore, the diagnostic method of the present invention can include counting the number of wells in which the detected fluorescence intensity is equal to or greater than a predetermined intensity, that is, the number of wells in which ENPP is considered to be encapsulated.

[0196] Specifically, the diagnostic or prognostic method 2 of the present invention is carried out, for example, as follows, but is not limited thereto. The compound of formula (IV) is diluted with an assay buffer to a predetermined concentration (e.g., 200 μM). The composition of the assay buffer can be determined appropriately, but can be, for example, 100 mM Tris-HCl (pH 9.3), 1 mM MgCl, and 0.5% (w / v) CHAPS. Next, a biological sample collected from a subject (including both pancreatic cancer patients and healthy individuals), preferably a blood sample (e.g., a serum sample or a plasma sample), is diluted with the above-mentioned assay buffer (e.g., about 250-fold) and mixed with a diluted solution of the compound of general formula (IV) in a predetermined ratio (e.g., equal amounts). Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. The microdevice containing the solution is incubated under predetermined conditions (for example, at 25° C. for 40 minutes), and then the fluorescence intensity of each well is measured using a fluorescence microscope. The number of wells in which the detected fluorescence intensity is equal to or greater than a predetermined intensity (for example, equal to or greater than 2500 AU), ie, wells in which ENPP is considered to be encapsulated, is counted.

[0197] Here, to diagnose the subject from whom the biological sample was derived as having pancreatic cancer and predict the possibility of pancreatic cancer based on the number of wells that are thought to contain ENPP measured above, an ROC curve is created to make a judgment based on the results of ENPP activity measurements using a compound of general formula (IV) or a salt thereof, and the possibility of pancreatic cancer is determined using this ROC curve.

[0198] In a preferred aspect of the detection method of the present invention and the diagnostic method of the present invention, the compound of general formula (VI) is preferably the following compound: TIFF0007802305000040.tif47159

[0199] Another embodiment of the present invention is a fluorescent probe for detecting pancreatic cancer, which comprises a compound of general formula (IV) or a salt thereof, and is used in the diagnostic or prognostic methods 1 and 2 of the present invention. The method of using the fluorescent probe for detecting pancreatic cancer is the same as that described for the fluorescent probe of the present invention.

[0200] Another embodiment of the present invention is a kit for detecting pancreatic cancer cells or tissues, which comprises a compound of general formula (IV) or a salt thereof.

[0201] In the kit, the compound of general formula (IV) or a salt thereof is usually prepared as a solution, but it may also be provided as a composition in an appropriate form such as a powder mixture, a lyophilized product, granules, tablets, or a liquid, and can be applied by dissolving it in distilled water for injection or an appropriate buffer solution at the time of use.

[0202] The kit may also contain other reagents, etc., as needed. For example, additives such as solubilizing agents, pH adjusting agents, buffering agents, and isotonic agents can be used, and the amounts of these additives to be added can be appropriately selected by those skilled in the art.

[0203] In the above-mentioned fluorescent probe for detecting pancreatic cancer and the kit for detecting pancreatic cancer cells or tissues, the compound of general formula (VI) is preferably the above-mentioned PMUM-dCMP.

[0204] (2) Detection of CD13 activity and DPP4 activity Another embodiment of the present invention is a method for detecting CD13 activity in a biological sample, comprising the steps of: 2 The method includes contacting a biological sample with a compound of the present invention (hereinafter also referred to as "compound A of the present invention"), wherein in the case of -CO-L, the -CO-L moiety is an alanine, lysine, arginine, or methionine residue, in an aqueous solution, wherein an increase in fluorescence intensity in the aqueous solution indicates the presence of CD13 activity.

[0205] Another embodiment of the present invention is a method for producing a compound represented by general formula (III) wherein B is —NR 2 2This is a method for diagnosing pancreatic cancer or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer, by detecting the enzymatic activity of a single molecule of CD13 in a biological sample obtained from a subject using a fluorescent probe containing compound A of the present invention, in which the -CO-L moiety is an alanine, lysine, arginine, or methionine residue (hereinafter also referred to as the "diagnostic or predictive method A1 of the present invention").

[0206] Another aspect of the present invention is a method for diagnosing pancreatic cancer or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) using a microdevice to contact a biological sample obtained from a subject with a fluorescent probe containing compound A of the present invention; and (b) measuring the fluorescence intensity of the biological sample contacted with the fluorescent probe (hereinafter also referred to as "diagnostic or predictive method A2 of the present invention").

[0207] The diagnostic or prognostic methods A1 and A2 of the present invention are based on detecting the enzymatic activity of one molecule of CD13 using compound A of the present invention.

[0208] Another embodiment of the present invention is a method for detecting DPP4 activity in a biological sample, comprising the steps of: 2 The method includes contacting a biological sample with a compound of the present invention (hereinafter also referred to as "compound B of the present invention"), wherein the -CO-L moiety is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid), in the case of -CO-L, and an increase in fluorescence intensity in the aqueous solution indicates the presence of DPP4 activity.

[0209] Another embodiment of the present invention is a method for producing a compound represented by general formula (III) wherein B is —NR 2 2This method diagnoses pancreatic cancer or predicts the possibility that the subject from whom the biological sample is derived has pancreatic cancer by detecting the enzymatic activity of a single molecule of DPP4 in a biological sample obtained from the subject using a fluorescent probe containing compound B of the present invention, wherein the -CO-L moiety is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid) (hereinafter also referred to as the "diagnostic or predictive method B1 of the present invention").

[0210] Another aspect of the present invention is a method for diagnosing pancreatic cancer or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) using a microdevice to contact a biological sample obtained from a subject with a fluorescent probe containing compound B of the present invention; and (b) measuring the fluorescence intensity of the biological sample contacted with the fluorescent probe (hereinafter also referred to as "diagnostic or predictive method B2 of the present invention").

[0211] The diagnostic or prognostic methods B1 and B2 of the present invention are based on detecting the enzymatic activity of one molecule of DPP4 using compound B of the present invention.

[0212] Another aspect of the present invention is to provide a method for producing a compound represented by general formula (III) in which B is —NR 2 Detecting the enzymatic activity of a single molecule of CD13 in a biological sample obtained from a subject using a fluorescent probe containing the compound of the present invention, wherein, in the case of -CO-L, the -CO-L moiety is an alanine, lysine, arginine, or methionine residue; and Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 The method for diagnosing pancreatic cancer or the method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer is characterized by detecting the enzymatic activity of a single molecule of DPP4 in a biological sample obtained from the subject using a fluorescent probe containing the compound of the present invention, wherein the -CO-L moiety is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid).

[0213] The diagnostic or prognostic methods A1 and A2 (or B1 and B2) of the present invention can be performed by preparing a solution containing a biological sample and compound A (or B) of the present invention, adding the solution to a microdevice, sealing the added solution in each well, incubating the microdevice with the solution sealed in it, and then measuring the fluorescence intensity of each well using a fluorescence microscope. Furthermore, the diagnostic or prognostic methods of the present invention can include counting the number of wells in which the detected fluorescence intensity is equal to or greater than a predetermined intensity, i.e., wells in which CD13 (or DPP4) is thought to be encapsulated.

[0214] Subjects in the diagnostic or prognostic methods A1, A2, B1 and B2 of the present invention, the combination of diagnostic or prognostic methods A1 and B1 of the present invention, the combination of diagnostic or prognostic methods A2 and B2 of the present invention, etc. (collectively referred to as the "diagnostic or prognostic methods of the present invention") include pancreatic cancer patients, patients suspected of having pancreatic cancer (such as those at high risk of pancreatic cancer, diabetic patients, people with a family history of pancreatic cancer, smokers, etc.), and healthy individuals. In other words, the diagnostic or predictive method of the present invention is not limited to pancreatic cancer patients or patients suspected of having pancreatic cancer, but can also be performed on healthy middle-aged or elderly people (healthy individuals) for the purpose of confirming the possibility of pancreatic cancer, and can also contribute to detecting early-stage pancreatic cancer by subjecting subjects with a high probability of having pancreatic cancer to imaging tests (detailed examinations) such as MRI.

[0215] The diagnostic or prognostic methods of the present invention can be performed during surgical treatment of pancreatic cancer or can be performed ex vivo. The diagnostic or prognostic methods of the present invention also include embodiments that do not involve medical treatment.

[0216] The diagnostic or prognostic methods A1 and A2 of the present invention are specifically carried out, for example, as follows, but are not limited thereto. Compound A of the present invention is diluted with an assay buffer to a predetermined concentration (e.g., 100 μM). The composition of the assay buffer can be determined appropriately, but may be, for example, 100 mM HEPES-NaOH (pH 7.4), 1 mM MgCl, 1 mM CaCl, and 3 mM Triton X-100. Next, a biological sample collected from a subject (including both pancreatic cancer patients and healthy individuals), preferably a blood sample (e.g., a serum sample or a plasma sample), is diluted with the above-mentioned assay buffer (e.g., about 10,000-fold) and mixed with a diluted solution of Compound A of the present invention in a predetermined ratio (e.g., equal amounts). Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. The microdevice containing the solution is incubated under predetermined conditions (for example, at 37° C. for 2 hours), and then the fluorescence intensity of each well is measured using a fluorescence microscope. The number of wells in which the detected fluorescence intensity is equal to or greater than a predetermined intensity (for example, equal to or greater than 2500 AU), ie, wells in which CD13 is thought to be encapsulated, is counted.

[0217] Here, to diagnose the subject from whom the biological sample was derived as having pancreatic cancer and predict the possibility of pancreatic cancer based on the number of wells believed to contain CD13 measured above, an ROC curve is created based on the results of measuring CD13 activity using compound A of the present invention, and the possibility of pancreatic cancer is determined using this ROC curve.

[0218] The diagnostic or prognostic methods B1 and B2 of the present invention are specifically carried out, for example, as follows, but are not limited thereto. Compound B of the present invention is diluted with an assay buffer to a predetermined concentration (e.g., 100 μM). The composition of the assay buffer can be determined appropriately, but can be 100 mM HEPES-NaOH (pH 7.4), 1 mM MgCl, 1 mM CaCl, and 3 mM Triton X-100. Next, a biological sample collected from a subject (including both pancreatic cancer patients and healthy individuals), preferably a blood sample (e.g., a serum sample or a plasma sample), is diluted with the above-mentioned assay buffer (e.g., about 2,500-fold) and mixed with a diluted solution of compound B of the present invention in a predetermined ratio (e.g., equal amounts). Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. The microdevice containing the solution is incubated under predetermined conditions (for example, at 25° C. for 2 hours), and then the fluorescence intensity of each well is measured using a fluorescence microscope. A histogram created based on the fluorescence intensity of each well is fitted to a curve consisting of two normal distributions. Wells with fluorescence intensity higher than the minimum value of the fitted curve are classified as the high activity group, and wells with low fluorescence intensity are classified as the low activity group. The proportion of the high activity group in the total is then calculated.

[0219] Here, to diagnose the subject from whom the biological sample was derived as having pancreatic cancer and predict the possibility of pancreatic cancer based on the proportion of the high activity group measured above, an ROC curve for making a judgment based on the results of DPP4 activity measurement using compound B of the present invention is created, and the possibility of pancreatic cancer is judged using this ROC curve.

[0220] Non-limiting examples of Compound A of the present invention are the following compounds: TIFF0007802305000041.tif111146

[0221] Non-limiting examples of Compound B of the present invention are the following compounds: TIFF0007802305000042.tif44156 [Example]

[0222] The present invention will be described below with reference to examples, but the present invention is not limited to these examples.

[0223] [Samples and measurement methods] Reagents and solvents for organic synthesis were supplied by Tokyo Chemical Industry Co., Ltd. (TCI), Wako Pure Chemical Industries, Ltd., or Aldrich Chemical Co., Ltd., and were used without further purification. Proton nuclear magnetic resonance ( 1 1 H NMR spectra were recorded on a JEOL JMN-LA400 instrument. Mass spectra were measured on a JEOL JMS-T100LP AccuTOF™ LC-plus4G.

[0224] 1. Synthesis of fluorescent core having phosphonic acid [Synthesis Example 1] Synthesis of compound 2 A compound (Compound 2) in which the phosphonic acid of the NH2-type fluorescent mother nucleus was protected was synthesized by the following procedure.

[0225] (1) Synthesis of Compound 1 (TFA-PMAC (4-phosphonomethyl-7-aminocoumarin): ((2-oxo-7-(2,2,2-trifluoroacetamido)-2H-chromen-4-yl)methyl)phosphonic acid)) Compound 1 was synthesized according to the following scheme. TIFF0007802305000043.tif34152

[0226] N-(4-(chloromethyl)-2-oxo-2H-chromen-7-yl)-2,2,2-trifluoroacetamide (182 mg, 0.60 mmol) was dissolved in P(OTMS) (2 mL, 6.0 mmol). The mixture was refluxed at 170 °C for 5 min. The mixture was then extracted with THF and brine, and the organic phase was evaporated. The residue was purified by MPLC (eluent: A / B = 95 / 5 > 5 / 95, A: 100% HO containing 0.1% TFA, B: 100% CHCN containing 0.1% TFA). Toluene was added to the eluent, and the mixture was evaporated to give compound 1 (80 mg, 0.23 mmol, 38% yield) as a colorless solid. The obtained compound 1 H-NMR, 13 The results of analysis by C-NMR and high-resolution mass spectrometry (HR-MS) are shown below.

[0227] 1 H-NMR (400 MHz, CD3OD) δ 7.84 (d, J = 9.1 Hz, 1H), 7.74 (d, J = 2.3 Hz, 1H), 7.57 (dd, J = 8.7, 2.3 Hz, 1H), 6.35 (d, J = 4.1 Hz, 1H), 3.37 (d, J = 22.9 Hz, 2H) 13 C-NMR (100 MHz, CDCl3) δ 161.0, 154.0, 149.4, 140.0, 126.8, 117.2, 116.3, 115.2, 115.1, 114.4, 107.9, 30.9. HRMS (ESI-): Calcd. for [MH] - , 350.00413, Found, 350.00261 (-1.52 mmu).

[0228] (2) Synthesis of Compound 2 (PMAC-TBDPS: tert-butyldiphenylsilylhydrogen((7-amino-2-oxo-2H-chromen-4-yl)methyl)phosphonate) Compound 2 was synthesized according to the following scheme. TIFF0007802305000044.tif32164

[0229] To a solution of compound 1 (150 mg, 0.43 mmol) and imidazole (117 mg, 1.72 mmol) in DMSO (1.5 mL), TBDPS-Cl (219 μL, 0.86 mmol) was added dropwise. The reaction mixture was stirred in air at room temperature for 1 h. Then, 2N aqueous K2CO3 solution (4.5 mL) was added, and the whole was heated at 60 °C for 30 min. The mixture was then purified by MPLC (eluent: A / B = 70 / 30 > 0 / 100, A: 100% HO containing 0.1 M TEAA, B: 100% CH3CN containing 0.1 M TEAA). The eluent was evaporated to remove the organic solvent, and the aqueous phase was extracted with AcOEt under acidification. The organic solution was washed with brine, dried over Na2SO4, and evaporated to give compound 2 (65 mg, 0.13 mmol, 31% yield) as a yellow solid. The obtained compound 1 H-NMR, 13 The results of analysis by C-NMR and high-resolution mass spectrometry (HR-MS) are shown below.

[0230] 1 H-NMR (400 MHz, CDCl3) δ 7.72-7.53 (m, 4H), 7.46-7.27 (m, 6H), 7.20-7.01 (m, 1H), 6.41 (s, 1H), 6.27 (d, J = 8.7 Hz, 1H), 5.82 (d, J = 3.7 Hz, 2H), 2.91 (d, J = 23.3 Hz, 2H), 1.04 (s, 9H) 13 C-NMR (100 MHz, CDCl3) δ 161.2, 155.5, 147.9, 135.3, 131.7, 130.5, 129.1, 128.3, 128.0, 127.0, 112.5, 112.1, 101.8, 32.2, 26.4, 19.4. HRMS (ESI-): Calcd. for [MH] - , 492.13961, Found, 492.13778 (-1.83 mmu).

[0231] [Synthesis Example 2] Synthesis of compound 4 A compound (Compound 4) in which the OH-type fluorescent core phosphonic acid was protected was synthesized by the following procedure.

[0232] (1) Synthesis of Compound 3 (PMUM (4-phosphonomethylumbelliferone): ((7-hydroxy-2-oxo-2H-chromen-4-yl)methyl)phosphonic acid) Compound 3 was synthesized according to the following scheme. TIFF0007802305000045.tif36159

[0233] 4-(Chloromethyl)-7-hydroxy-2H-chromen-2-one (209 mg, 0.99 mmol) was dissolved in P(OTMS)3 (5 mL, 14.9 mmol), and the whole was refluxed at 170 °C for 1 h. The mixture was then extracted with THF and brine, acidified with 2 N aqueous HCl, and the organic phase was evaporated. The residue was purified by MPLC (eluent: A / B = 95 / 5 > 5 / 95, A: 100% HO containing 0.1% TFA, B: 100% CH3CN containing 0.1% TFA). Toluene was added to the eluent, and the mixture was evaporated. The product was lyophilized to give compound 3 (105 mg, 0.41 mmol, 41% yield) as a colorless solid. The obtained compound 1 H-NMR, 13 The results of analysis by C-NMR and high-resolution mass spectrometry (HR-MS) are shown below.

[0234] 1 H-NMR (400 MHz, CD3OD) δ 7.70 (d, J = 8.7 Hz, 1H), 6.79 (dd, J = 8.7, 2.3 Hz, 1H), 6.68 (d, J = 2.3 Hz, 1H), 6.19 (d, J = 4.6 Hz, 1H), 3.32 (d, J = 23.3 Hz, 2H). 13 C-NMR (100 MHz, CD3OD) δ 162.1, 161.8, 155.6, 150.5, 127.3, 112.9, 111.8, 111.6, 102.1, 31.1. HRMS (ESI+ ): Calcd. for [M+H] + , 257.02150, Found, 257.02155 (+0.05 mmu).

[0235] (2) Synthesis of Compound 4 (PMUM-TBDPS: tert-butyldiphenylsilylhydrogen((7-hydroxy-2-oxo-2H-chromen-4-yl)methyl)phosphonate) To a solution of compound 3 (200 mg, 0.78 mmol) and imidazole (212 mg, 3.12 mmol) in DMSO (2 mL), TBDPS-Cl (298 μL, 1.17 mmol) was added dropwise. The reaction mixture was stirred in air at room temperature for 15 min. The mixture was then purified by MPLC (eluent: A / B = 70 / 30 > 0 / 100, A: 0.1 M TEAA in 100% HO, B: 0.1 M TEAA in 100% CHCN). The eluent was evaporated to remove the organic solvent, followed by filtration. The residue was dried to give compound 4 (182 mg, 0.37 mmol, 47% yield) as a colorless solid. The obtained compound 1 H-NMR, 13 The results of analysis by C-NMR and high-resolution mass spectrometry (HR-MS) are shown below.

[0236] 1H-NMR (400 MHz, CDCl3) δ 7.91-7.81 (dd, J = 8.0, 1.6 Hz, 4H), 7.48 (d, J = 8.7 Hz, 1H), 7.44-7.33 (m, 6H), 6.56 (dd, J = 8.7, 2.3 Hz, 1H), 6.52 (d, J = 2.3 Hz, 1H), 5.95 (d, J = 4.1 Hz, 1 H), 3.12 (d, J = 22.4 Hz, 2H), 1.13 (s, 9H) 13C-NMR (100 MHz, CDCl3) δ 162.7, 162.2, 155.5, 153.2, 153.1, 135.7, 134.1, 129.8, 127.7, 114.0, 111.6, 110.7, 102.8, 37.1, 26.8, 19.5. HRMS (ESI - ): Calcd. for [MH] - , 493.12363, Found, 493.12158 (-2.05 mmu).

[0237] 2. Synthesis of fluorescent probes by solid-phase extraction using Phos-tag [Synthesis Example 3] Synthesis example of amidase probe Using a compound (Compound 2) in which the phosphonic acid of the NH2-type fluorescent mother nucleus was protected, an amidase probe was synthesized in the following procedure according to the following reaction scheme.

[0238] Scheme 1 TIFF0007802305000047.tif225101

[0239] 1. PMAC-TBDPS (5 μmol), COMU (30 μmol), and acetic acid (30 μmol) were mixed in a 1.5 mL test tube and dissolved in 30 μL of NMP. 2. The reaction mixture was stirred at 60°C. 3.300 μL of TFA, 5 μL of triethylsilane and 5 μL of H 2 O were added and the reaction mixture was stirred. 4.1 mL of Et2O was added, the mixture was centrifuged (15,000 rpm x 10 min, 4°C), and the supernatant was removed. 5. Dissolve the residue in 1 mL of loading buffer (80% Bis Tris buffer (1 M, pH 6.8) and 20% MeCN) and allowed to be supported on 500 μL of phos-tag beads. 6. The beads were washed five times with 1 mL of wash buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM Bis Tris-AcOH). 7. The beads were washed three times with 1 mL of washing solution (80% H2O and 20% MeCN). 8. The compound was eluted three times with 300 μL of eluent (80% H 2 O and 20% MeCN, containing 1% ethylenediamine), and the solution was neutralized by adding 500 μL of H 2 O (containing 2% AcOH), followed by lyophilization.

[0240] Figure 4 shows the results of HPLC analysis of the compound composition in the solution from step 6 onwards. Load indicates the composition of the solution added to the beads in step 6, Flowthrough indicates the composition of the supernatant removed after the target substance was retained on the beads in step 6, Wash indicates the composition of the supernatant after three washes in step 7, and Elute indicates the composition of the solution eluted in step 8.

[0241] [Synthesis Example 4] Synthesis examples of aminopeptidase and amidase probes An aminopeptidase probe was synthesized using a compound (compound 2) in which the phosphonic acid of the NH2-type fluorescent mother nucleus was protected, in accordance with the following reaction scheme and the following procedure.

[0242] Scheme 2 TIFF0007802305000048.tif26163R: Side chain of any amino acid

[0243] 1. PMAC-TBDPS (5 μmol), COMU (30 μmol) and Fmoc-protected amino acid (30 μmol) were mixed in a 1.5 mL test tube and dissolved in 30 μL of NMP. 2. The reaction mixture was stirred at 60°C. 3.20 μL of piperidine was added and the reaction mixture was stirred. 4.300 μL of TFA, 5 μL of triethylsilane and 5 μL of H 2 O were added and the reaction mixture was stirred. 5.1 mL of Et2O was added, the mixture was centrifuged (15,000 rpm x 10 min, 4°C), and the supernatant was removed. 6. Dissolve the residue in 1 mL of loading buffer (80% Bis Tris buffer (1 M, pH 6.8) and 20% MeCN) and allowed to be supported on 500 μL of phos-tag beads. 7. The beads were washed five times with 1 mL of wash buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM Bis Tris-AcOH). 8. The beads were washed three times with 1 mL of washing solution (80% H2O and 20% MeCN). 9. The compound was eluted three times with 300 μL of eluent (80% H 2 O and 20% MeCN, containing 1% ethylenediamine), and the solution was neutralized by adding 500 μL of H 2 O (containing 2% AcOH), followed by lyophilization.

[0244] The NMR data of representative compounds and the HPLC chart (absorption at 320 nm) of compounds synthesized in the same manner are shown below.

[0245] Arg-PMAC (compound 5) TIFF0007802305000049.tif39144

[0246] The synthesis was carried out using Fmoc-Arg(Pbf)-OH as the Fmoc-protected amino acid. 1 H-NMR (400 MHz, D2O) δ 7.58 (d, 1H, J = 8.0 Hz), 7.41 (s, 1H), 7.21 (d, 1H, J = 7.8 Hz), 6.18 (d, 1H, J = 2.0 Hz), 3.1-2.9 (m, 5H), 1.9 (m, 2H), 1.5 (m, 2H). HRMS (ESI + ): calcd. for [M+Na] + , 434.1243, Found, 434.1205 (-3.8 mmu).

[0247] TIFF0007802305000050.tif35135

[0248] Met-PMAC (compound 6) TIFF0007802305000051.tif47167

[0249] The synthesis was carried out using Fmoc-Met-OH as the Fmoc-protected amino acid. Met-PMAC was prepared using Fmoc-Met-OH as the building block. 1 H-NMR (400 MHz, D2O) δ 7.69 (d, 1H, J = 7.8 Hz), 7.48 (s, 1H), 7.18 (d, 1H, J = 8.0 Hz), 6.1 (d, 1H, J = 2.0 Hz), 3.1-2.9 (m, 3H), 2.51 (d, 2H, J = 7.8 Hz), 2.12 (m, 2H), 1.93 (s, 3H). HRMS (ESI + ): calcd. for [M+Na] + , 409.0599, Found, 409.0578 (-2.1 mmu).

[0250] TIFF0007802305000052.tif36140

[0251] The following compounds were synthesized and purified in the same manner as above.

[0252] Ala-PMAC (compound 7) TIFF0007802305000053.tif31132

[0253] The synthesis was carried out using Fmoc-Ala-OH as the Fmoc-protected amino acid.

[0254] TIFF0007802305000054.tif35146

[0255] Glu-PMAC (compound 8) TIFF0007802305000055.tif33133

[0256] The synthesis was carried out using Fmoc-Glu(tBu)-OH as the Fmoc-protected amino acid.

[0257] TIFF0007802305000056.tif35133

[0258] Ile-PMAC (compound 9) TIFF0007802305000057.tif34138

[0259] The synthesis was carried out using Fmoc-Ile-OH as the Fmoc-protected amino acid.

[0260] TIFF0007802305000058.tif38134

[0261] Leu-PMAC (compound 10) TIFF0007802305000059.tif46169

[0262] The synthesis was carried out using Fmoc-Leu-OH as the Fmoc-protected amino acid.

[0263] TIFF0007802305000060.tif34132

[0264] Lys-PMAC (compound 11) TIFF0007802305000061.tif40136

[0265] The synthesis was carried out using Fmoc-Lys(Boc)-OH as the Fmoc-protected amino acid.

[0266] TIFF0007802305000062.tif35138

[0267] Phe-PMAC (compound 12) TIFF0007802305000063.tif37138

[0268] The synthesis was carried out using Fmoc-Phe-OH as the Fmoc-protected amino acid.

[0269] TIFF0007802305000064.tif34135

[0270] Pro-PMAC (compound 13) TIFF0007802305000065.tif30129

[0271] The synthesis was carried out using Fmoc-Pro-OH as the Fmoc-protected amino acid.

[0272] TIFF0007802305000066.tif32141

[0273] Thr-PMAC (compound 14) TIFF0007802305000067.tif32137

[0274] The synthesis was carried out using Fmoc-Thr(tBu)-OH as the Fmoc-protected amino acid.

[0275] TIFF0007802305000068.tif37139

[0276] Trp-PMAC (compound 15) TIFF0007802305000069.tif42141

[0277] The synthesis was carried out using Fmoc-Trp(Boc)-OH as the Fmoc-protected amino acid.

[0278] TIFF0007802305000070.tif35145

[0279] Tyr-PMAC (compound 16) TIFF0007802305000071.tif33137

[0280] The synthesis was carried out using Fmoc-Tyr(tBu)-OH as the Fmoc-protected amino acid.

[0281] TIFF0007802305000072.tif33145

[0282] Val-PMAC (compound 17) TIFF0007802305000073.tif30138

[0283] The synthesis was carried out using Fmoc-Val-OH as the Fmoc-protected amino acid.

[0284] TIFF0007802305000074.tif37149

[0285] D-Leu-PMAC (compound 18) TIFF0007802305000075.tif34145

[0286] The synthesis was carried out using Fmoc-D-Leu-OH as the Fmoc-protected amino acid.

[0287] TIFF0007802305000076.tif37144

[0288] D-Tyr-PMAC (compound 19) TIFF0007802305000077.tif35138

[0289] The synthesis was carried out using Fmoc-D-Tyr-OH as the Fmoc-protected amino acid.

[0290] TIFF0007802305000078.tif35145

[0291] gGlu-PMAC (compound 20) TIFF0007802305000079.tif27135

[0292] The synthesis was carried out using Boc-Glu(OH)-OtBu as the Fmoc-protected amino acid.

[0293] TIFF0007802305000080.tif39139

[0294] Pyr-PMAC (compound 21) TIFF0007802305000081.tif27147

[0295] The synthesis was carried out using Fmoc-Pyr-OH as the Fmoc-protected amino acid.

[0296] TIFF0007802305000082.tif38148

[0297] Lys(Cbz)-PMAC (compound 22) TIFF0007802305000083.tif56170

[0298] The synthesis was carried out using Fmoc-Lys(Cbz)-OH as the Fmoc-protected amino acid.

[0299] TIFF0007802305000084.tif37146

[0300] Cit-PMAC (compound 23) TIFF0007802305000085.tif42143

[0301] The synthesis was carried out using Fmoc-Cit-OH as the Fmoc-protected amino acid.

[0302] TIFF0007802305000086.tif42141

[0303] Met(O2)-PMAC (compound 24) TIFF0007802305000087.tif36138

[0304] The synthesis was carried out using Fmoc-Met(O2)-OH as the Fmoc-protected amino acid.

[0305] TIFF0007802305000088.tif34146

[0306] Sar-PMAC (compound 25) TIFF0007802305000089.tif28142

[0307] The synthesis was carried out using Fmoc-Sar-OH as the Fmoc-protected amino acid.

[0308] TIFF0007802305000090.tif33147

[0309] Abu-PMAC (compound 26) TIFF0007802305000091.tif30142

[0310] The synthesis was carried out using Fmoc-Abu-OH as the Fmoc-protected amino acid.

[0311] TIFF0007802305000092.tif38136

[0312] Thz-PMAC (compound 27) TIFF0007802305000093.tif31149

[0313] The synthesis was carried out using Fmoc-Thz-OH as the Fmoc-protected amino acid.

[0314] TIFF0007802305000094.tif36153

[0315] Aze-PMAC (compound 28) TIFF0007802305000095.tif32153

[0316] The synthesis was carried out using Fmoc-Aze(2)-OH as the Fmoc-protected amino acid.

[0317] TIFF0007802305000096.tif34150

[0318] Tyr(4-NO2)-PMAC (compound 29) TIFF0007802305000097.tif36139

[0319] The synthesis was carried out using Fmoc-Tyr(4-NO2)-OH as the Fmoc-protected amino acid.

[0320] TIFF0007802305000098.tif32152

[0321] Suc-PMAC (compound 30) TIFF0007802305000099.tif28140

[0322] The synthesis was carried out using tBuO-Suc-OH as the tBuO-protected amino acid.

[0323] TIFF0007802305000100.tif38140

[0324] Hep-PMAC (compound 31) TIFF0007802305000101.tif28136

[0325] It was synthesized using enanthic acid (heptanoic acid).

[0326] TIFF0007802305000102.tif30144

[0327] [Synthesis Example 5] Synthesis examples of peptidase and protease probes Using a compound (Compound 2) in which the phosphonic acid of the NH2-type fluorescent mother nucleus was protected, peptidase and protease probes were synthesized in the following procedure according to the following reaction scheme.

[0328] Scheme 3 TIFF0007802305000103.tif23151R1, R2: Side chain of any amino acid

[0329] 1. PMAC-TBDPS (5 μmol), COMU (30 μmol) and peptide (30 μmol) were mixed in a 1.5 mL test tube and dissolved in 30 μL of NMP. 2. The reaction mixture was stirred at 60°C. 3.a) 300 μL of TFA, 5 μL of triethylsilane and 5 μL of H 2 O were added and the reaction mixture was stirred. b) (If you do not want to deprotect acid-labile protecting groups) 300 μL of MeCN and 5 μL of 1 M TBAF in THF were added and the reaction mixture was stirred. 4.1 mL of Et2O was added, the mixture was centrifuged (15,000 rpm x 10 min, 4°C), and the supernatant was removed. 5. Dissolve the residue in 1 mL of loading buffer (80% Bis Tris buffer (1 M, pH 6.8) and 20% MeCN) and allowed to be supported on 500 μL of phos-tag beads. 6. The beads were washed five times with 1 mL of wash buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM Bis Tris-AcOH). 7. The beads were washed three times with 1 mL of washing solution (80% H2O and 20% MeCN). 8. The compound was eluted three times with 300 μL of eluent (80% H 2 O and 20% MeCN, containing 1% ethylenediamine), and the solution was neutralized by adding 500 μL of H 2 O (containing 2% AcOH), followed by lyophilization.

[0330] EP-PMAC (compound 32) TIFF0007802305000104.tif29159

[0331] The peptide was synthesized using Fmoc-Glu(tBu)-Pro-OH. 1H-NMR (400 MHz, D2O) δ 7.60 (d, 1H, J = 7.2 Hz), 7.44 (s, 1H), 7.18 (d, 1H, J = 7.2 Hz), 6.15 (d, 1H, J = 2.1 Hz), 4.29 (m, 1H), 3.6-3.5 (m, 2H), 3.06 (d, 2H, J = 20.4 Hz), 2.96 (m, 1H), 2.43 (t, 2H, J = 8.0 Hz), 2.24 (m, 1H), 2.1-1.7 (m, 5H). HRMS (ESI + ): calcd. for [M+H] + , 482.1328, Found, 482.1336 (+0.8 mmu).

[0332] TIFF0007802305000105.tif36149

[0333] Suc-AAPAbu-PMAC (compound 33) TIFF0007802305000106.tif33141

[0334] ペプチドとしてtBuOSuc-AAPAbu-OHを Use いて to synthesize した. 1 H-NMR (400 MHz, D2O) δ 7.68 (d, 1H, J = 8.4 Hz), 7.49 (s, 1H), 7.24 (d, 1H, J = 8.4 Hz), 6.20 (d, 1H, J = 2.0 Hz), 4.39 (m, 1H), 4.27 (m, 1H), 4.11 (m, 2H), 3.6-3.4 (m, 2H), 3.02 (d, 2H, J = 20.8 Hz), 2.4-2.3 (m, 5H), 2.1 (m, 1H), 1.8 (m, 2H), 1.7 (m, 2H), 1.2 (m, 6H), 0.8 (t, 3H, J = 8.4 Hz).

[0335] TIFF0007802305000107.tif35142

[0336] The following compounds were synthesized and purified in the same manner as above.

[0337] Cbz-Ala-PMAC (compound 34) TIFF0007802305000108.tif28137

[0338] It was synthesized using Cbz-Ala-OH.

[0339] TIFF0007802305000109.tif36129

[0340] Ac-Met-PMAC (compound 35) TIFF0007802305000110.tif34136

[0341] It was synthesized using Ac-Met-OH.

[0342] TIFF0007802305000111.tif33138

[0343] Gly-Pro-PMAC (compound 36) TIFF0007802305000112.tif28130

[0344] The peptide was synthesized using Fmoc-Gly-Pro-OH.

[0345] TIFF0007802305000113.tif34132

[0346] Lys-Ala-PMAC (compound 37) TIFF0007802305000114.tif35169

[0347] The peptide was synthesized using Fmoc-Lys(Boc)-Ala-OH.

[0348] TIFF0007802305000115.tif35139

[0349] Phe-Met-PMAC (compound 38) TIFF0007802305000116.tif24142

[0350] The peptide was synthesized using Fmoc-Phe-Met-OH.

[0351] TIFF0007802305000117.tif36149

[0352] Cbz-RR-PMAC (compound 39) TIFF0007802305000118.tif37140

[0353] The peptide was synthesized using Cbz-Arg(Pbf)-Arg(Pbf)-OH.

[0354] TIFF0007802305000119.tif33138

[0355] aLK-PMAC (compound 40) TIFF0007802305000120.tif38145

[0356] The peptide was synthesized using Cbz-D-Ala-Leu-Lys(Boc)-OH.

[0357] TIFF0007802305000121.tif36147

[0358] Ac-LLR-PMAC (compound 41) TIFF0007802305000122.tif39142

[0359] The peptide was synthesized using Ac-Leu-Leu-Arg-OH.

[0360] TIFF0007802305000123.tif36135

[0361] KHLY-PMAC (Compound 42) TIFF0007802305000124.tif34135

[0362] The peptide was synthesized using Fmoc-Lys(Boc)-His(Trt)-Leu-Tyr(tBu)-OH.

[0363] TIFF0007802305000125.tif37140

[0364] FTTY-PMAC (Compound 43) TIFF0007802305000126.tif31142

[0365] The peptide was synthesized using Fmoc-Phe-Thr(tBu)-Thr(tBu)-Tyr(tBu)-OH.

[0366] TIFF0007802305000127.tif39144

[0367] Suc-LLVY-PMAC (compound 44) TIFF0007802305000128.tif32145

[0368] The peptide was synthesized using tBuO-Suc-Leu-Leu-Val-Tyr(tBu)-OH.

[0369] TIFF0007802305000129.tif41137

[0370] Ac-DEVD-PMAC (compound 45) TIFF0007802305000130.tif45169

[0371] The peptide was synthesized using Ac-Asp(tBu)-Glu(tBu)-Val-Asp(tBu)-OH.

[0372] TIFF0007802305000131.tif37146

[0373] Ac-IETD-PMAC (compound 46) TIFF0007802305000132.tif29138

[0374] The peptide was synthesized using Ac-Ile-Glu(tBu)-Thr(tBu)-Asp(tBu)-OH.

[0375] TIFF0007802305000133.tif34142

[0376] Ac-AAPV-PMAC (compound 47) TIFF0007802305000134.tif38158

[0377] The peptide was synthesized using Ac-Ala-Ala-Pro-Val-OH.

[0378] TIFF0007802305000135.tif39137

[0379] MeOSuc-AAPV-PMAC (compound 48) TIFF0007802305000136.tif30135

[0380] The peptide was synthesized using MeOSuc-Ala-Ala-Pro-Val-OH.

[0381] TIFF0007802305000137.tif38135

[0382] Cbz-GVV-PMAC (compound 49) TIFF0007802305000138.tif28143

[0383] The peptide was synthesized using Cbz-Gly-Val-Val-OH.

[0384] TIFF0007802305000139.tif43137

[0385] Cbz-GP-PMAC (compound 50) TIFF0007802305000140.tif27135

[0386] The peptide was synthesized using Cbz-Gly-Pro-OH.

[0387] TIFF0007802305000141.tif53166

[0388] Cbz-SKLQ-PMAC (compound 51) TIFF0007802305000142.tif37134

[0389] The peptide was synthesized using Cbz-Ser(tBu)-Lys(Boc)-Leu-Gln(Trt)-OH.

[0390] TIFF0007802305000143.tif40143

[0391] Ac-LRGG-PMAC (compound 52) TIFF0007802305000144.tif36136

[0392] The peptide was synthesized using Ac-Leu-Arg(Pbf)-Gly-Gly-OH.

[0393] TIFF0007802305000145.tif39137

[0394] [Synthesis Example 6] Synthesis of glycosidase probes A glycosidase probe was synthesized using a compound (compound 4) in which the phosphonic acid of the OH-type fluorescent mother nucleus was protected, according to the following reaction scheme and the following procedure.

[0395] Scheme 4 TIFF0007802305000146.tif221531. In a test tube, PMAC-TBDPS (5 μmol) and acetylglycopyranosyl chloride (25 μmol) were dissolved in 250 μL of MeCN and 500 μL of 2N aqueous Na2CO3 solution. 2. The reaction mixture was stirred at room temperature. 3. The MeCN phase was collected. 4. 150 μL of 1M TBAF in THF was added and stirred. 5. 100 μL of 2N LiOH aqueous solution was added and stirred for 10 minutes. 6.400 μL of loading buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM Bis Tris-AcOH) and 11.5 μL of AcOH were added for neutralization, and the mixture was washed with 100 μL of AcOEt. 7. The residue was dissolved in 1 mL of loading buffer (80% Bis Tris buffer (1 M, pH 6.8) and 20% MeCN) and loaded onto 500 μL of phos-tag beads. 8. The beads were washed five times with 1 mL of wash buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM Bis Tris-AcOH). 9. The beads were washed three times with 1 mL of washing solution (80% H2O and 20% MeCN). 10. The compound was eluted three times with 300 μL of eluent (80% H2O and 20% MeCN, containing 1% ethylenediamine), and the solution was neutralized by adding 500 μL of H2O (containing 2% AcOH), and then lyophilized.

[0396] 3. Fluorescent Probe Evaluation The fluorescent probes of the compounds synthesized using the procedures shown in Synthesis Examples 3 to 6 were used to assay the enzyme activity in blood using a microdevice. The results are shown below.

[0397] [Example 1] Results of enzyme activity detection in blood using compounds 5-51

[0398] Assay Protocol 1. Compounds 5 to 51, which are fluorescent probes for detecting aminopeptidase, amidase, and protease activity, were diluted with assay buffer to a concentration of 100 μM. The assay buffer consisted of 100 mM HEPES-NaOH (pH 7.4), 1 mM MgCl, 1 mM DTT, and 3 mM Triton X-100. 2. Next, human plasma samples (derived from healthy individuals or pancreatic cancer patients) were diluted 500-fold with the assay buffer and mixed with an equal volume of the probe dilution solution, with the final concentrations of the fluorescent probe at 50 μM and the human plasma sample diluted 1000-fold. 3. Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. 4. After incubating the microdevice containing the solution at 37°C for 4 hours, the fluorescence intensity of each well was measured using a fluorescence microscope. An increase in fluorescence intensity was observed in the wells containing the enzyme that reacts with the fluorescent probe.

[0399] Fluorescence microscope images obtained by carrying out the above assay for the fluorescent probes of compounds 5 to 51 are shown in FIGS. 7A and 7B. The left image (annotated "Healthy") of each fluorescence microscope image in Figures 7A and 7B shows the results when a human plasma sample from a healthy subject was used, while the right image (annotated "Tumor") shows the results when a human plasma sample from a pancreatic cancer patient was used. The amino acid residue or peptide type of each fluorescent probe is also listed on the left side of each fluorescence microscope image.

[0400] Thus, the presence of phosphonic acid did not have a negative effect on the fluorescence intensity of the fluorescent probe, and the synthesis scheme of the present invention may be useful for various fluorescent probes.

[0401] [Example 2] Measurement of human plasma samples using a CD13 probe on a microdevice In this example, an experiment to verify the applicability of CD13 activity detection probes Arg-PMAC and Met-PMAC for biomarker detection was carried out by the following procedure.

[0402] 1. The CD13 probe, Arg-PMAC, was diluted to 100 μM in assay buffer, which consisted of 100 mM HEPES-NaOH (pH 7.4), 1 mM MgCl, 1 mM DTT, and 3 mM Triton X-100. 2. Next, human plasma samples collected from 30 pancreatic cancer patients and 30 healthy individuals were diluted 500-fold with the above assay buffer and mixed with an equal volume of the CD13 probe dilution solution, with the final concentrations of the CD13 probe at 50 μM and the human plasma samples diluted 1000-fold. 3. Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. 4. After incubating the microdevice containing the solution at 37°C for 4 hours, the fluorescence intensity of each well was measured using a fluorescence microscope. Figure 8 shows the fluorescence microscope image obtained using Arg-PMAC. 5. When an ROC curve was created for the number of wells where the detected fluorescence intensity was greater than or equal to the average + 3SD of the separately measured background fluorescence, i.e., the number of wells where CD13 was thought to be encapsulated, the result was AUC = 0.554, as shown in Figure 9. When the ROC curve was created by performing steps 6.1 to 6.5 using Met-PMAC, the AUC value of 0.619 was obtained, as shown in Figure 10.

[0403] As described above, measurement of the fluorescence intensity of human plasma samples using the CD13 probes Arg-PMAC and Met-PMAC on a microdevice revealed a significant difference between pancreatic cancer patients and healthy subjects. Based on these results, it is possible to identify CD13 specifically found in pancreatic cancer by comparing the enzymatic activity of CD13 in biological samples from healthy and diseased subjects using these fluorescent probes.

[0404] [Example 3] Measurement of human plasma samples using a DPP4 probe on a microdevice In this example, an experiment to verify the applicability of Glu-Pro-PMAC, a DPP4 activity detection probe, to biomarker detection was carried out by the following procedure.

[0405] 1. The DPP4 probe Glu-Pro-PMAC was diluted to 100 μM in assay buffer, which consisted of 100 mM HEPES-NaOH (pH 7.4), 1 mM MgCl, 1 mM DTT, and 3 mM Triton X-100. 2. Next, human plasma samples collected from 30 pancreatic cancer patients and 30 healthy individuals were diluted 500-fold with the above assay buffer and mixed with an equal volume of the diluted DPP4 probe solution, with the final concentrations of the DPP4 probe at 50 μM and the human plasma samples diluted 1000-fold. 3. Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. 4. The microdevice containing the solution was incubated at 25°C for 2 hours, and then the fluorescence intensity of each well was measured using a fluorescence microscope. Figure 11 shows a representative fluorescence microscope image. 5. Two peaks were observed for the number of wells in which the detected fluorescence intensity was greater than the average + 3SD of the separately measured background fluorescence, i.e., the number of wells in which DPP4 was thought to be encapsulated. The ratio of the number of wells belonging to these peaks was obtained, and an ROC curve was created. The AUC value of 0.724 was obtained, as shown in Figure 12.

[0406] As described above, measurements of the fluorescence intensity of human plasma samples using the DPP4 probe Glu-Pro-PMAC on a microdevice revealed significant differences in pancreatic cancer patients compared to healthy subjects. Based on these results, it is possible to identify abnormalities in DPP4 activity specific to pancreatic cancer by comparing the enzyme activity of DPP4 in biological samples from healthy and diseased subjects using these fluorescent probes.

[0407] [Synthesis Example 6] Synthesis of PMUM-dCMP PMUM-dCMP (Compound 53) was synthesized using a compound (Compound 4) in which the OH-type fluorescent mother nucleus was protected with phosphonic acid, according to the following procedure. TIFF0007802305000147.tif42156

[0408] 1. PMUM-TBDPS (5.1 μmol), 2'-deoxycytidine 5'-monophosphate (10 μmol), WSCDHCl (20 μmol), DMAP (0.6 μmol), and triethylamine (2.5 μmol) were mixed in a 1.5 mL test tube and dissolved in 30 μL of t-BuOH. 2. The reaction solution was stirred at 105°C. 3.3 mL of TBAF (1 M, THF solution) was added and stirred at room temperature. 4. The solution was roughly purified by MPLC (eluent: A / B = 100 / 0 > 0 / 100, A: 100% H2O containing 0.1% TFA, B: 100% MeCN containing 0.1% TFA). 5. The eluent was evaporated to remove the solvent, and the residue was dissolved in 1 mL of loading buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM bis tris-AcOH) and loaded onto 500 μL of phos-tag beads. 6. The beads were washed five times with 1 mL of wash buffer (80% H2O and 20% MeCN, pH 6.8, containing 100 mM bis tris-AcOH) and twice with 1 mL of rinse solution (80% H2O and 20% MeCN). 7. The compound was eluted three times with 300 μL of elution solution (80% H 2 O and 20% MeCN, containing 1% ethylenediamine), and the solution was lyophilized.

[0409] [Example 4] Evaluation of PMUM-dCMP activity against ENPP The activity of PMUM-dCMP obtained in Synthesis Example 7 was measured using a plate reader with purified ENPP3 enzyme. Assays were performed in Tris-HCl buffer (pH 9.3) containing 1 mM MgCl, 0.5% w / w CHAPS, 10 μM PMUM-dCMP, and ENPP3 (recombinant, 9.9 μg / mL). The results are shown in Figure 13. As shown in FIG. 13, when ENPP3 was added, a significant increase in fluorescence intensity (FI) was observed compared to when ENPP3 was not added.

[0410] [Example 5] Investigation of fluorescent probes for detecting biomarker activity in pancreatic cancer Next, in order to search for fluorescent probes for detecting biomarker activity of pancreatic cancer, enzyme assays were performed on a microdevice using plasma samples from three healthy subjects and three pancreatic cancer patients, and several compounds similar to formula (III), including PMUM-dCMP. The protocol for the enzyme assay is as follows. 1. A compound similar to formula (III) was diluted in assay buffer, which consisted of 100 mM HEPES-NaOH (pH 5-10), 1 mM MgCl, and 3 mM Triton X-100. 2. Next, the human plasma sample was diluted with the above assay buffer and mixed with an equal volume of the probe dilution solution, with the final concentrations of the probe being 10-100 μM and the human plasma sample being 500-1000 times diluted. 3. Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. 4. The microdevices containing the solution were incubated at 37°C for 1-12 hours, and then the fluorescence intensity of each well was measured using a fluorescence microscope. 5. Image analysis revealed that there were compounds whose enzymatic activity differed depending on whether the patient had the disease or not.

[0411] [Example 6] Measurement of human plasma samples using ENPP probes in a microdevice In this example, an experiment to verify the applicability of PMUM-dCMP for biomarker detection was carried out by the following procedure.

[0412] 1. The ENPP probe, PMUM-dCMP, was diluted to 200 μM in assay buffer containing 100 mM Tris-HCl (pH 9.3), 1 mM MgCl, and 0.5% (w / v) CHAPS. 2. Next, human plasma samples collected from six pancreatic cancer patients and six healthy individuals were diluted 250-fold with the above assay buffer and mixed with an equal volume of the ENPP probe dilution solution, with the final concentrations of the ENPP probe at 100 μM and the human plasma samples diluted 500-fold. 3. Next, the mixed solution of both was added to the microdevice, and then sealing oil was added to seal the solution in each well. 4. The microdevice containing the solution was incubated at 25°C for 40 minutes, and then the fluorescence intensity of each well was measured using a fluorescence microscope. Figure 14 shows the fluorescence microscope image. 5. The number of wells with a detected fluorescence intensity of 2500 AU or higher, i.e., wells considered to contain ENPP3, was significantly increased in pancreatic cancer patients compared to healthy controls. The results are shown in Figure 15.

[0413] As described above, measurements of the fluorescence intensity of human plasma samples using the ENPP probe PMUM-dCMP on a microdevice revealed a significant difference between pancreatic cancer patients and healthy subjects. Based on these results, it is possible to discover ENPP3, which is specifically found in pancreatic cancer, by comparing the enzymatic activity of ENPP in biological samples from healthy and diseased subjects using PMUM-dCMP. Specifically, in this example, an ROC curve was created based on the enzymatic activity of ENPP, which was determined based on the number of wells with an AU of 2500 or greater. When the threshold was set at 23 wells with an AU of 2500 or greater, the sensitivity was 83% and the specificity was 100% (Figure 16). Pancreatic cancer can be diagnosed using such an ROC curve.

Claims

1. A compound represented by the following general formula (III) or a salt thereof: 【Chemistry 1】 (In formula (III), B is an amide group (—NR 2 C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms), —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoric acid amide group (-NR 2 -PO(OR a ) (OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), a sulfonamide group (—NR 2 -SO 2 -R c , R c is selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphoric acid monoester group (-O-P(=O)(OH) 2 a phosphate diester group (-O-P(=O)(OH)(OR') (wherein R' represents W-U-, W represents an organic base, and U represents a single bond or a partial structure of ribose, deoxyribose, or a derivative thereof), or a sulfate ester group; Here, R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring: The group T-(S)- is a monovalent substituent present at any position on the coumarin skeleton; S, if present, is a linker; T is a phosphonic acid group (-P(=O)(OH) 2 ) or a phosphoric acid amide group (—NH—P(═O)(OH) 2 provided that when T represents a phosphonic acid group, said phosphonic acid group together with the linker S does not represent a phosphate ester group; m is an integer from 0 to 3.

2. A fluorescent probe for detecting enzyme activity using a microdevice, comprising a compound represented by the following general formula (III) or a salt thereof: 【Chemistry 2】 (In formula (III), B is an amide group (-NR 2 C(=O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms), -NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoramido group (-NR 2 -PO(OR a )(OR b , where R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO)), a sulfonamido group (-NR 2 -SO 2 -R c , R c is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO)), an ester group, a phosphate monoester group (-O-P(=O)(OH) 2 ), a phosphate diester group (-O-P(=O)(OH)(OR') (wherein R' represents W-U-, W represents an organic base, and U represents a single bond or a partial structure of ribose, deoxyribose or a derivative thereof), a sulfate ester group, an ether group, or -O-L' (wherein L' represents a sugar or a partial structure of a sugar); wherein R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 , when present, is the same or different monovalent substituent present on the benzene ring: The group T-(S)- is a monovalent substituent present at any position on the coumarin skeleton; S, if present, is a linker; T is selected from a phosphonic acid group (-P(=O)(OH) 2 ) or a phosphoric acid amide group (-NH-P(=O)(OH) 2 ), with the proviso that when T represents a phosphonic acid group, said phosphonic acid group together with the linker S does not represent a phosphate ester group; m is an integer from 0 to 3.

3. A method for detecting the activity of multiple enzymes in a biological sample, the method comprising contacting the biological sample with a compound of general formula (III) as defined in claim 2 or a salt thereof, and using a microdevice.

4. 4. The method according to claim 3, characterized in that a library of compounds of general formula (III) is used.

5. 10. A method for testing an enzyme assay of a composition comprising a compound of general formula (III) or a salt thereof as defined in claim 2, the method comprising contacting the composition with a biological sample containing or suspected of containing an enzyme that cleaves the compound, and using a microdevice.

6. A method for screening a fluorescent probe capable of detecting a biomarker for a specific disease using a microdevice, the method comprising: (1) adding a library of compounds of general formula (III) as defined in claim 2 to a microdevice, so that at least one well of the microdevice contains one type of compound of formula (III); (2) adding a solution containing a biological sample to the microdevice so that at least one well in the microdevice contains one enzyme molecule, wherein the biological sample is a biological sample obtained from a patient with a specific disease or a biological sample obtained from a healthy subject; (3) contacting the compound of formula (III) with an enzyme and detecting fluorescence in the wells of the microdevice, the step comprising: contacting a compound of formula (III) with a biological sample obtained from a patient with a specific disease, and measuring a fluorescence intensity (first fluorescence intensity) from the compound of formula (III); and contacting the compound of formula (III) with a biological sample obtained from a healthy subject, and measuring the fluorescence intensity (second fluorescence intensity) from the compound of formula (III); Including; (4) comparing the first fluorescence intensity with the second fluorescence intensity, if there is a difference between them, it is indicated that the compound is a candidate for the fluorescent probe, thereby determining the compound as a fluorescent probe for detecting biomarker activity; The screening method comprising:

7. A method for detecting ENPP activity in a biological sample, comprising contacting a compound of the following formula (IV) or a salt thereof with the biological sample in an aqueous solution, wherein an increase in fluorescence intensity in the aqueous solution indicates the presence of ENPP activity, and the method uses a microdevice. 【Transformation 3】 (In the above formula (IV), R 1 , S, T, and m are as defined in the general formula (III) of claim 2.

8. The method of claim 7 , wherein the biological sample is a biological sample from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject.

9. A method for assisting in the diagnosis of pancreatic cancer, or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) applying a fluorescent probe containing a compound of the following general formula (IV) or a salt thereof to a clinical sample of a subject; and (b) measuring a fluorescent image of the clinical sample to which the fluorescent probe has been applied, said method using a microdevice. 【Chemistry 4】 (In the above formula (IV), R 1 , S, T, and m are as defined in the general formula (III) of claim 2.

10. A method for assisting in the diagnosis of pancreatic cancer, or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, comprising: (a) contacting a biological sample obtained from a subject with a fluorescent probe containing a compound of the following general formula (IV) or a salt thereof; and (b) measuring the fluorescence intensity of the biological sample contacted with the fluorescent probe, said method using a microdevice: 【Transformation 5】 (In the above formula (IV), R 1 , S, T, and m are as defined in the general formula (III) of claim 2.

11. 11. The method according to claim 9 or 10, wherein the compound of general formula (VI) is the following compound: 【Transformation 6】

12. A fluorescent probe for detecting pancreatic cancer, for use in the method of claim 9 or 10, comprising a compound represented by the following general formula (IV) or a salt thereof: 【Transformation 7】 (In the above formula (IV), R 1 , S, T, and m are as defined in the general formula (III) of claim 2.

13. A kit for detecting pancreatic cancer cells or tissues using a microdevice, comprising a compound represented by the following general formula (IV) or a salt thereof: 【Transformation 8】 (In the above formula (IV), R 1 , S, T, and m are as defined in the general formula (III) of claim 2.

14. The fluorescent probe according to claim 12, wherein the compound of general formula (IV) is the following compound: 【Chemistry 9】

15. Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 A method for assisting in the diagnosis of pancreatic cancer, or a method for predicting the possibility that a subject from whom a biological sample is derived has pancreatic cancer, by detecting the enzymatic activity of a single molecule of CD13 in a biological sample obtained from a subject using a fluorescent probe comprising a compound of general formula (III) defined in claim 2 or a salt thereof, wherein -CO-L is an alanine, lysine, arginine, or methionine residue.

16. Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 A method for assisting in the diagnosis of pancreatic cancer by detecting the enzyme activity of a single molecule of DPP4 in a biological sample obtained from a subject using a fluorescent probe comprising a compound of general formula (III) defined in claim 2 or a salt thereof, wherein -CO-L is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid), or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer.

17. Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 Detecting the single molecule enzymatic activity of CD13 in a biological sample obtained from a subject using a fluorescent probe comprising a compound of general formula (III) defined in claim 2 or a salt thereof, wherein -CO-L is an alanine, lysine, arginine, or methionine residue; and Using a microdevice, a compound represented by general formula (III) in which B is -NR 2 A method for assisting in the diagnosis of pancreatic cancer by detecting the enzyme activity of a single molecule of DPP4 in a biological sample obtained from a subject using a fluorescent probe comprising a compound of general formula (III) defined in claim 2 or a salt thereof, wherein -CO-L is a peptide of -Pro-Xaa (Pro represents a proline residue, and Xaa represents an amino acid residue such as glycine, serine, or glutamic acid), or a method for predicting the possibility that the subject from whom the biological sample is derived has pancreatic cancer.

18. The method of claim 15 or 16, wherein the biological sample is a biological sample from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject.

19. 18. The method of claim 17, wherein the biological sample is from a pancreatic cancer patient, a patient suspected of having pancreatic cancer, or a healthy subject.

20. A compound represented by the following general formula (I): 【Chemistry 10】 (In formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), Here, R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; The group T-(S)- is a monovalent substituent that may be present at any position on the coumarin skeleton, provided that when the group A is -OH, the group T-(S)- is not present at the 8-position on the coumarin skeleton; S, when present, is a linker consisting of a hydrocarbon group; T is a phosphonic acid group (-P(=O)(OH) 2 ) or a phosphoric acid amide group (—NH—P(═O)(OH) 2 provided that when T represents a phosphonic acid group, said phosphonic acid group together with the linker S does not represent a phosphate ester group; m is an integer from 0 to 3.

21. A is -NR 2 21. The compound of claim 20, wherein:

22. 21. The compound of claim 20, wherein A is -OH.

23. (1) a step of protecting the group T of a compound represented by the following formula (I); 【Chemistry 11】 (In formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), Here, R 2 is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; The group T-(S)- is a monovalent substituent present at any position on the coumarin skeleton; S, if present, is a linker; T is a phosphonic acid group (-P(=O)(OH) 2 ) or a phosphoric acid amide group (—NH—P(═O)(OH) 2 provided that when T represents a phosphonic acid group, said phosphonic acid group together with the linker S does not represent a phosphate ester group; m is an integer from 0 to 3. (2) Regarding the product obtained in step (1), (i) A is an amino group (—NR 2 In the case of H, the amino group is converted into an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoric acid amide group (-NR 2 -PO(OR a ) (OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO 2 - Rc, Rc are selected from the group consisting of a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO); (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -OL' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) adding a compound represented by the following formula (II) to the product obtained in the step (3); 【Chemistry 12】 (In formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III); A method for preparing a compound represented by the following general formula (III): 【Chemistry 13】 (In formula (III), B is an amide group (—NR 2 C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms), —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoric acid amide group (-NR 2 -PO(OR a ) (OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), a sulfonamide group (—NR 2 -SO 2 -R c , R c is selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphoric acid monoester group (-O-P(=O)(OH) 2 a phosphate diester group (-O-P(=O)(OH)(OR') (wherein R' represents W-U-, W represents an organic base, and U represents a single bond or a partial structure of ribose, deoxyribose, or a derivative thereof), a sulfate ester group, an ether group, or -O-L' (wherein L' represents a sugar or a partial structure of a sugar); S, T, R 1 , R 2 , m is as defined in formula (III) of claim 2.

24. A method for preparing one type of compound represented by the following general formula (III) in each of a plurality of reaction vessels by carrying out the following steps (1) to (5) in parallel in the plurality of reaction vessels: 【Chemistry 14】 (In formula (III), B is an amide group (—NR 2 C(═O)R, where R is a hydrogen atom or a substituted or unsubstituted alkyl group having 1 to 8 carbon atoms), —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoric acid amide group (-NR 2 -PO(OR a ) (OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO 2 -R c , R c is selected from the group consisting of a hydrogen atom, a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), an ester group, a phosphoric acid monoester group (-O-P(=O)(OH) 2 a phosphate diester group (-O-P(=O)(OH)(OR') (wherein R' represents W-U-, W represents an organic base, and U represents a single bond or a partial structure of ribose, deoxyribose, or a derivative thereof), a sulfate ester group, an ether group, or -O-L' (wherein L' represents a sugar or a partial structure of a sugar); S, T, R 1 , R 2 , m is as defined in formula (III) of claim 2. (1) a step of protecting the group T of a compound represented by the following formula (I); 【Chemistry 15】 (In formula (I), A is an amino group (-NR 2 H) or a hydroxyl group (—OH), Here, R 2 is selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, in which one or more non-adjacent, non-terminal C atoms may be replaced by O, S, CO or COO; R 1 are, if present, the same or different monovalent substituents present on the benzene ring; The group T-(S)- is a monovalent substituent present at any position on the coumarin skeleton; S, if present, is a linker; T is a phosphonic acid group (-P(=O)(OH) 2 ) or a phosphoric acid amide group (—NH—P(═O)(OH) 2 provided that when T represents a phosphonic acid group, said phosphonic acid group together with the linker S does not represent a phosphate ester group; m is an integer from 0 to 3. (2) Regarding the product obtained in step (1), (i) A is an amino group (—NR 2 In the case of H, the amino group is converted into an amide group (-NR 2 C(═O)R, where R is a hydrogen atom or an alkyl group having 1 to 8 carbon atoms), —NR 2 -CO-L (where L represents a partial structure of an amino acid), a phosphoric acid amide group (-NR 2 -PO(OR a ) (OR b ), R a and R b are each independently selected from the group consisting of a hydrogen atom and a branched, linear or cyclic, substituted or unsubstituted alkyl group having 1 to 8 carbon atoms (one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO), or a sulfonamide group (—NR 2 -SO 2 -R c , R c is converted to a hydrogen atom and a branched, linear or cyclic substituted or unsubstituted alkyl group having 1 to 8 carbon atoms, wherein one or more non-adjacent, non-terminal C atoms of the alkyl group may be replaced by O, S, CO or COO; (ii) when A is a hydroxyl group, converting the hydroxyl group into an ester group, a phosphate ester group, a sulfate ester group, an ether group, or -OL' (L' represents a saccharide or a partial structure of a saccharide); (3) a step of removing the protecting group of T in the product obtained in step (2), which may optionally include a step of crude purification after the removal of the protecting group; (4) adding a compound represented by the following formula (II) to the product obtained in the step (3); 【Chemistry 16】 (In formula (II), M is Zn or Cu; X is a linker group; P is a carrier. (5) Purifying the product obtained in step (4) and then eluting or eluting the compound of formula (III).

Citation Information

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