Fluorescent dyes for nucleic acid detection

A fluorescent dye with a linker that binds to nucleic acids at two sites addresses the sensitivity issue of conventional dyes, enhancing detection of short DNA strands by forming a more stable and intense complex.

JP7779495B2Active Publication Date: 2025-12-03KEIO UNIV +1
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Patent Information

Application Number
JP2025503904
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-03-02
Filing Date
2024-02-27
Publication Date
2025-12-03
Estimated Expiration
2044-02-27

AI Technical Summary

Technical Problem

Conventional fluorescent dyes have insufficient sensitivity for detecting short nucleic acids, such as ctDNA, due to their inability to form stable complexes with short DNA strands.

Method used

Development of a fluorescent dye compound with a linker that allows two monomers to bind to nucleic acids at two sites, enhancing the binding strength and stability of the dye-nucleic acid complex.

Benefits of technology

The new dye compound significantly improves the detection sensitivity of nucleic acids, particularly short strands, by forming a more stable and intense fluorescent signal.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Provided is a compound of formula (I) (in the formula R1, R2, R3, R4, R5, X, m, s, t, A, L, and Y- are as disclosed in the specification).
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Description

[Technical Field]

[0001] The present invention relates to a fluorescent dye for nucleic acid detection and a nucleic acid detection method using the same. [Background technology]

[0002] Detection of nucleic acids using fluorescent dyes has been well known for some time, and cyanine dyes are commonly used as fluorescent dyes. For example, Patent Document 1 discloses a novel asymmetric cyanine dye derivative and a method for detecting nucleic acids by binding the derivative to nucleic acids. Non-Patent Document 1 discloses the performance of SYBR™ Green I, a representative commercially available asymmetric cyanine dye, as a DNA detection reagent. Non-Patent Document 2 discloses the performance of SYBR™ Gold, a representative commercially available asymmetric cyanine dye, as a DNA detection reagent. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] U.S. Patent No. 5,658,751 [Non-patent literature]

[0004] [Non-Patent Document 1] J. Fluoresc (2012) 22, 1189-1199 [Non-patent document 2] Nucleic Acid Research (2021) 49, 5143-5158 Summary of the Invention [Problem to be solved by the invention]

[0005] An object of the present invention is to provide a fluorescent dye capable of detecting nucleic acids with high sensitivity and a method for detecting nucleic acids using the same. [Means for solving the problem]

[0006] The present invention encompasses the embodiments described below. Section 1. A compound of formula (I) below:

[0007] [ka]

[0008] (In the formula, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently a group selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently a group selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5 are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; A is one of the following:

[0009] [ka]

[0010] (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r -(r is an integer ranging from 2 to 6). L is -CO-(CH2-O-CH2) n -CO- (n is an integer ranging from 2 to 6), -CO-(CH2CH2-O-CH2CH2) p-CO- (p is an integer ranging from 2 to 6), or -(CH) q -(q is an integer from 2 to 6), Y - is the counter anion.) Section 2. Item 1. The compound according to item 1, which is a compound of the following formula (Ia):

[0011] [ka]

[0012] (In the formula, Each R 1 are independently methyl or ethyl; A is one of the following:

[0013] [ka]

[0014] (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r -(r is an integer from 2 to 6). L is -CO-(CH2-O-CH2) n -CO- (n is an integer from 2 to 6), -CO-(CH2CH2-O-CH2CH2) p -CO- (p is an integer of 2 to 6), or -(CH2) q -(q is an integer from 2 to 6), Y - is the counter anion.) Section 3. Item 3. A fluorescent dye comprising the compound according to Item 1 or 2. Section 4. A compound of formula (II) below:

[0015] [ka]

[0016] (In the formula, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5 are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; B is one of the following:

[0017] [ka]

[0018] (In the formula, R 10 is hydrogen or -COO-R 11 and R 11 is alkyl having 1 to 6 carbon atoms, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r - (r is an integer from 2 to 6), R 9 is hydrogen or -COO-R 12 and R 12 is an alkyl group having 1-6 carbon atoms. Y - is the counter anion.) Section 5. Item 3. A kit for detecting a nucleic acid in a sample, comprising the compound according to Item 1 or 2. Section 6. Contacting nucleic acid in a sample with the compound according to item 1 or 2; and detecting the fluorescence intensity of the complex of the nucleic acid and the compound; A method for detecting nucleic acid comprising: Section 7. further comprising the step of immobilizing the nucleic acid on a support; Item 7. The detection method according to Item 6, wherein the fluorescence intensity is detected by detecting the fluorescence intensity of a complex of the nucleic acid and the compound on a support. Section 8. the contacting step includes mixing the sample with the compound to prepare a mixed solution; Item 8. The detection method according to Item 7, wherein the immobilization step comprises immobilizing the mixture on a gel by electrophoresis. Section 9. Item 7. The method according to Item 6, wherein the nucleic acid is DNA or RNA. [Effects of the Invention]

[0019] According to the present invention, a fluorescent dye capable of detecting nucleic acids with high sensitivity is provided. [Brief explanation of the drawings]

[0020] [Figure 1] Sensitivity of commercially available fluorescent dyes. (A) Structural formula of SYBR® Gold (left), gel of SYBR® Gold-stained DNA (right), (B) Structural formula of SYBR® Green I (left), gel of SYBR® Green I stained (right), (C) Structural formula of GelGreen™ (left), gel of GelGreen™-stained DNA (right). The arrow indicates the position of 140 pg, 50 bp DNA. [Figure 2] Molecular design of fluorescent probes. [Figure 3](A)-(E) Absorption spectra of various dyes. (F)-(J) Fluorescence spectra of various dyes (495 nm excitation). (A and (F) SYBR Gold, (B and (G) SYBR Green I, (C and (H) Compound 11, (D and (I) Compound 13, (E and (J) Compound 14). The solid line indicates the time after DNA addition, and the dashed line indicates the time before DNA addition. [Figure 4] DNA binding assay of various dyes: (A) SYBR Gold, (B) SYBR Green I, (C) Compound 11, (D) Compound 13, and (E) Compound 14. [Figure 5] DNA electrophoresis test (post-staining). From left to right, the gels are stained with SYBR Gold, SYBR Green I, Compound 11, Compound 13, and Compound 14. [Figure 6] DNA electrophoresis test (DNA pre-staining). From the top left, the gels show DNA stained with SYBR Gold, SYBR Green I, and compound 11. From the bottom left, the gels show DNA stained with 2x the amount of compound 11, compound 13, and compound 14. [Figure 7]Electrophoresis results. The box indicates the position of cfDNA (~160 bp). Lane 1: SYBR Gold (2 μM) + Ladder*, Lane 2: SYBR Gold (2 μM) + cfDNA, Lane 3: SYBR Gold (1 μM) + cfDNA, Lane 4: SYBR Gold (0.5 μM) + cfDNA, Lane 5: Compound 13 (2 μM) + Ladder*, Lane 6: Compound 13 (2 μM) + cfDNA, Lane 7: Compound 13 (1 μM) + cfDNA, Lane 8: Compound 13 (0.5 μM) + cfDNA, Lane 9: Compound 14 (2 μM) + Ladder*, Lane 10: Compound 14 (2 μM) + cfDNA, Lane 11: Compound 14 (1 μM) + cfDNA, Lane 12: Compound 14 (0.5 μM) + cfDNA. *Gene Ruler 50 bp DNA Ladder (Thermo Fisher Scientific) containing DNA lengths of 1000, 900, 800, 700, 600, 500, 400, 300, 250, 200, 150, 100, and 50 bp. [Figure 8] ImageJ intensity analysis of the electrophoresis results in Figure 7. (A) SYBR Gold, (B) compound 13, (C) compound 14. Lanes 1–12 are the same as those in Figure 7. DETAILED DESCRIPTION OF THE INVENTION

[0021] In this specification, the term "comprise" is a concept that encompasses "consist essentially of" and "consist only of."

[0022] Prior to completing the present invention, the inventors first investigated the sensitivity of conventional fluorescent reagents. (1) There are two methods for detecting DNA using gel electrophoresis: (1) a method in which DNA is electrophoresed on a gel and then the gel is stained with a fluorescent reagent (gel post-staining), and (2) a method in which DNA is stained with a fluorescent dye and then the stained DNA is electrophoresed on a gel (DNA pre-staining). Method (1) has high sensitivity, while method (2) is less sensitive than method (1) but is simple and rapid. Therefore, in method (2), a Gene Ruler 50 bp DNA Ladder (Thermo Fisher Scientific) was used on a DNA sample. The DNA sample was stained with SYBR® Gold (Invitrogen), SYBR® Green I (Invitrogen), and GelGreen™ (BIOTIUM), which are well-known nucleic acid fluorescent dyes (SYBR® Gold, SYBR® Green I, and GelGreen™ may be simply referred to as SYBR Gold, SYBR Green I, and GelGreen, respectively, for ease of reading) (the compounds on the left side of Figures 1(A)-(C)). The DNA was electrophoresed so that the amount of DNA was as shown in Table I, and fluorescence was detected (excitation wavelength: 455-485 nm, detection wavelength: 1 second exposure time).

[0023] As a result, as shown in the photographs on the right side of Figure 1(A)-(C), the shorter the DNA, the lower the fluorescence intensity. As indicated by the arrow, in the lane with the lowest amount of DNA, almost no fluorescence corresponding to 140 pg of DNA with a length of 50 bp was observed. This indicates that the sensitivity of existing fluorescent dyes in the DNA pre-staining method is insufficient to detect short DNA such as ctDNA.

[0024] [Table 1]

[0025] Therefore, as shown in Figure 2, the inventors of the present invention thought that with conventional fluorescent dyes, fluorescent dye 2 interacts with DNA 1 at only one site, and therefore it becomes difficult for fluorescent dye 2 to remain stably inserted into DNA 1 as the length of DNA 1 shortens (left diagram). They then thought that if a linker 3 of an appropriate length that connects two fluorescent dyes 2 is introduced so that one molecule of fluorescent dye 2 interacts with DNA 1 at two sites, a stable complex will be formed, the binding ability of fluorescent dye 2 to DNA 1 will be increased, and the detection sensitivity of DNA 1 will be improved, which led to the completion of the present invention.

[0026] According to one aspect of the present invention, there is provided a compound of formula (I):

[0027] [ka]

[0028] During the ceremony, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5 are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; A is one of the following:

[0029] [ka]

[0030] (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r -(r is an integer ranging from 2 to 6). L is -CO-(CH2-O-CH2) n -CO- (n is an integer from 2 to 6), -CO-(CH2CH2-O-CH2CH2) p -CO- (p is an integer of 2 to 6), or -(CH2) q -(q is an integer from 2 to 6), Y - is the counter anion.

[0031] The compound of formula (I) is a compound in which two monomers are linked via a linker L, and can bind to nucleic acids at two sites. Therefore, compared with compounds consisting of monomers that can only bind to nucleic acids at one site, the compound has improved binding strength with nucleic acids and can form a more stable complex with nucleic acids. The compound of formula (I) can be used as a fluorescent dye for detecting nucleic acids.

[0032] R 1 Examples of alkyl having 1 to 6 carbon atoms include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl.

[0033] In a preferred embodiment, each R 1 is methyl or ethyl.

[0034] Each R 2 Examples of alkyl having 1 to 6 carbon atoms include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl. 2The halogen includes fluorine, chlorine, bromine, or iodine.

[0035] In one embodiment, s is 0. In another embodiment, s is independently 1, 2, 3, or 4, and each R 2 are independently a group selected from the group consisting of methyl and halogen, where halogen includes chlorine, bromine, or iodine.

[0036] In one embodiment, X is O (oxygen). In another embodiment, X is S.

[0037] Each R 3 Examples of alkyl having 1 to 6 carbon atoms include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl. 3 The halogen includes fluorine, chlorine, bromine, or iodine.

[0038] In one embodiment, t is 0. In another embodiment, t is independently 1, 2, 3, or 4, and each R 3 are independently a group selected from the group consisting of methyl and halogen, where halogen includes chlorine, bromine, or iodine.

[0039] Each R 4 The phenyl group may be unsubstituted or substituted, and when substituted, may be substituted with, but is not limited to, alkyl having 1 to 6 carbon atoms, amino, or halogen. Alkyl having 1 to 6 carbon atoms includes, but is not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl.

[0040] Each R 5Examples of alkyl having 1 to 6 carbon atoms include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl.

[0041] In one embodiment, each R 5 is hydrogen.

[0042] In one embodiment, m is 0.

[0043] In one embodiment, A is

[0044] [ka]

[0045] is.

[0046] In another embodiment, A is

[0047] [ka]

[0048] where R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r -(r is an integer between 2 and 6). 6 and R 8 is preferably independently hydrogen, methyl or ethyl.

[0049] In one embodiment, L is -CO-(CH2-O-CH2) n In another embodiment, L is -CO- (n is an integer from 2 to 6). q -(q is an integer from 2 to 6).

[0050] In one embodiment, Y -Examples of counter anions are halogen ions (e.g., Cl - , Br - , I - etc.), alkyl sulfate ions (e.g., methyl sulfate ion, ethyl sulfate ion, etc.), organic sulfonate ions (e.g., methanesulfonate, p-toluenesulfonate, CF3SO3 - , (CF3SO2)2N - etc.), perchlorate ions (ClO4 - ), TsO - The halogen ions include, but are not limited to, SbF6 - , AsF6 - , PF6 - , BF4 - , (FSO2)2N - , CF3SO2 - , CF3CO2 - and more preferably BF4 - , CF3SO2 - , CF3CO2 - and more preferably CF3CO2 - is.

[0051] In one embodiment, the compound of formula (I) is a compound of formula (Ia):

[0052] [ka]

[0053] (In the formula, Each R 1 are independently methyl or ethyl; A is one of the following:

[0054] [ka]

[0055] (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R7 Ha-(CH2) r -(r is an integer from 2 to 6). L is -CO-(CH2-O-CH2) n -CO- (n is an integer from 2 to 6), -CO-(CH2CH2-O-CH2CH2) p -CO- (p is an integer of 2 to 6), or -(CH2) q -(q is an integer from 2 to 6), Y - is the counter anion.

[0056] In one embodiment, A is

[0057] [ka]

[0058] is.

[0059] In another embodiment, A is

[0060] [ka]

[0061] where R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r -(r is an integer between 2 and 6). 6 and R 8 is preferably independently hydrogen, methyl or ethyl.

[0062] In one embodiment, L is -CO-(CH2-O-CH2) n In another embodiment, L is -CO- (n is an integer from 2 to 6). q -(q is an integer from 2 to 6).

[0063] In one embodiment, Y -Examples of counter anions are halogen ions (e.g., Cl - , Br - , I - etc.), alkyl sulfate ions (e.g., methyl sulfate ion, ethyl sulfate ion, etc.), organic sulfonate ions (e.g., methanesulfonate, p-toluenesulfonate, CF3SO3 - , (CF3SO2)2N - etc.), perchlorate ions (ClO4 - ), TsO - The halogen ions include, but are not limited to, SbF6 - , AsF6 - , PF6 - , BF4 - , (FSO2)2N - , CF3SO2 - , CF3CO2 - and more preferably BF4 - , CF3SO2 - , CF3CO2 - and more preferably CF3CO2 - is.

[0064] According to one aspect of the present invention, there is provided a compound of formula (II):

[0065] [ka]

[0066] During the ceremony, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; B is one of the following:

[0067] [ka]

[0068] (In the formula, R 4 is hydrogen or -COO-R 11 and R 5 is alkyl having 1 to 6 carbon atoms, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r - (r is an integer from 2 to 6), R 9 is hydrogen or -COO-R 12 and R 12 is an alkyl group having 1-6 carbon atoms. Y - is the counter anion.) R 9 , R 11 , and R 12 Examples of the alkyl having 1 to 6 carbon atoms include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, neopentyl, tert-pentyl, hexyl, and isohexyl.

[0069] The compound of formula (II) is an intermediate used for the preparation of formula (I). 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R7 , and R 8 , X, Y - , m, s, and t are as described in relation to formula (I).

[0070] In one embodiment, B is

[0071] [ka]

[0072] and R 10 is hydrogen or -COO-R 11 and R 11 is alkyl having 1 to 6 carbon atoms.

[0073] In another embodiment, B is

[0074] [ka]

[0075] where R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r - (r is an integer from 2 to 6), and R 9 is alkyl having 1 to 6 carbon atoms. 6 and R 8 is preferably independently hydrogen, methyl or ethyl.

[0076] In one embodiment, Y - Examples of counter anions are halogen ions (e.g., Cl - , Br - , I - etc.), alkyl sulfate ions (e.g., methyl sulfate ion, ethyl sulfate ion, etc.), organic sulfonate ions (e.g., methanesulfonate, p-toluenesulfonate, CF3SO3 - , (CF3SO2)2N - etc.), perchlorate ions (ClO4- ), TsO - The halogen ions include, but are not limited to, SbF6 - , AsF6 - , PF6 - , BF4 - , (FSO2)2N - , CF3SO2 - , CF3CO2 - and more preferably BF4 - , CF3SO2 - , CF3CO2 - and more preferably CF3CO2 - is.

[0077] In one embodiment, the compound of formula (II) is a compound of formula (IIa):

[0078] [ka]

[0079] During the ceremony, Each R 1 are independently methyl or ethyl; B is one of the following:

[0080] [ka]

[0081] (In the formula, R 10 is hydrogen or -COO-R 11 and R 11 is alkyl having 1 to 6 carbon atoms, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH2) r - (r is an integer from 2 to 6), R 9 is hydrogen or -COO-R 12 and R 12is an alkyl group having 1-6 carbon atoms. Y - is the counter anion.)

[0082] In one embodiment, the counter anion Y - is a halogen ion (e.g., Cl - , Br - , I - etc.), alkyl sulfate ions (e.g., methyl sulfate ion, ethyl sulfate ion, etc.), organic sulfonate ions (e.g., methanesulfonate, p-toluenesulfonate, CF3SO3 - , (CF3SO2)2N - etc.), perchlorate ions (ClO4 - ), TsO - The halogen ions include, but are not limited to, SbF6 - , AsF6 - , PF6 - , BF4 - , (FSO2)2N - , CF3SO2 - , CF3CO2 - and more preferably BF4 - , CF3SO2 - , CF3CO2 - and more preferably CF3CO2 - is.

[0083] When each of the compounds of formula (I) and formula (II) has isomers such as optical isomers, stereoisomers, rotamers, tautomers, etc., unless otherwise specified, all isomers and mixtures of isomers are encompassed by each of the compounds of formula (I) and formula (II). For example, when each of the compounds of formula (I) and formula (II) has optical isomers, optical isomers resolved from the racemate are also encompassed by each of the compounds of formula (I) and formula (II), unless otherwise specified. These isomers can be obtained as single compounds by known synthetic and separation techniques (concentration, solvent extraction, column chromatography, recrystallization, etc.).

[0084] Each of the compounds of formula (I) and formula (II) may be crystalline, and whether the crystalline form is a single one or a polymorphic mixture, it is included in the compound of the present invention or a salt thereof. Crystals can be produced by crystallization using a crystallization method known per se. The compounds of formula (I) and formula (II) may be solvates (e.g., hydrates, etc.) or non-solvates, and both are included in the compounds of formula (I) and formula (II).

[0085] Next, a method for producing the compound of formula (I) will be described.

[0086] First, a compound of formula (II), which is a monomer capable of binding to nucleic acids, is prepared based on the structure of an asymmetric cyanine dye known to emit strong fluorescence upon interacting with DNA.

[0087] The compound of formula (II) can be synthesized, for example, according to the following scheme 1. 1 , R 2 , R 4 , X, -(CH-CH) m - is the same as defined in formula (II).

[0088] First, the compound (1) in which benzothiazole and quinoline are linked via a monoene or polyene can be synthesized by known methods, including but not limited to the method described in Patent Document 1, U.S. Pat. No. 5,658,751.

[0089] First, compound (1) is reacted with compound (2), an alkyl ester of a secondary amine, in a solvent (e.g., 1,2-dichloroethane). The reaction temperature and time are not particularly limited, but the reaction temperature is, for example, 30 to 70°C, and the reaction time is, for example, 30 minutes to 6 hours. In compound (1), R 1 , R 2 , R 4 , X, -(CH-CH) m - is the same as defined in formula (II). In compound (2), R 13 teeth

[0090] [ka]

[0091] and R 6 , R 7 and R 8 is the same as defined in formula (II). Next, the solvent is removed from the reaction solution, and the solution is purified to obtain compound (3). In compound (3), R 15 teeth

[0092] [ka]

[0093] and R 6 , R 7 and R 8 is the same as defined in formula (II).

[0094] Next, compound (3) is hydrolyzed in an acid (e.g., trifluoroacetic acid) solution. The reaction temperature and time for the hydrolysis are not particularly limited, but the reaction temperature is, for example, -4°C to 4°C, and the reaction time is, for example, 5 minutes to 12 hours. Next, the solvent is removed from the reaction solution, and the resulting mixture is purified to obtain compound (4).

[0095] In Scheme 1, known methods such as distillation can be used to remove the solvent, and chromatography can be used to purify the reaction product.

[0096] Compound (3) and compound (4) are included in the compound of formula (II).

[0097] [ka]

[0098] Next, the compound of formula (I) having two DNA binding sites in the molecule is synthesized by connecting the monomers prepared from the asymmetric cyanine dye with a linker.

[0099] The compound of formula (I) can be synthesized, for example, according to the following scheme 2. In scheme 2, R 1 , R 2 , R 4 , X, -(CH-CH) m - is the same as defined in formula (I).

[0100] First, as a reference example, compound (5), a fluorescent dye monomer, can be obtained from compound (4). Compound (4) is dissolved in a solvent (e.g., dichloromethane), and triethylamine and acetyl chloride are added, followed by stirring to cause a reaction. The reaction temperature and time are not particularly limited, but the reaction temperature is, for example, -4°C to 4°C, and the reaction time is, for example, 5 to 60 minutes. Optionally, a solvent (e.g., methanol) is further added and stirred. Next, the solvent is removed from the reaction solution, and the solution is purified to obtain compound (5), a fluorescent dye monomer.

[0101] On the other hand, compound (4) is dissolved in a solvent (e.g., N,N-dimethylformamide), and the linker components, alkanedioic acid (10) optionally having a polyether structure, 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC), N-hydroxysuccinimide (HOSu), and N,N-diisopropylethylamine, are added and stirred. The solvent is then removed from the reaction solution, and the mixture is purified to obtain a compound in which two molecules of compound (4) are condensed via the linker. In compound (10), f and g are each independently an integer of 1 to 3, j is an integer of 2 to 6, and s and t are both 1 or 2.

[0102] For example, when the alkanedioic acid (10) which may have a polyether structure is 3,6-dioxaoctane diacid, compound (6) is obtained, when it is 3,6,9-trioxaundecanedioic acid, compound (7) is obtained, and when it is 3,6,9,12-tetraoxatetradecanedioic acid, compound (8) is obtained. In compounds (6)-(8), R 16 teeth

[0103] [ka]

[0104] and R 6 , R 7 and R 8 is the same as defined in formula (I).

[0105] In Scheme 2, known methods such as distillation can be used to remove the solvent, and chromatography can be used to purify the reaction product.

[0106] Compounds (6), (7) and (8) are included in the compounds of formula (I).

[0107] [ka]

[0108] Instead of the alkanedioic acid of compound (10), a compound having a substituent (leaving group) with high leaving ability such as halogen at both ends of the alkane is used, and this is reacted with compound (4), and L in formula (I) is converted to -(CH2). q A linker of -(q is an integer of 2 to 6) can also be formed.

[0109] According to one aspect of the present invention, there is provided a method for detecting nucleic acid, comprising contacting nucleic acid in a sample with the compound of formula (I) and detecting the fluorescence intensity of a complex between the nucleic acid and the compound of formula (I).

[0110] The sample is preferably a sample obtained from a living organism, and more preferably a sample obtained from a mammal. Examples of mammals include, but are not limited to, humans, mice, rats, cows, horses, pigs, monkeys, dogs, cats, rabbits, goats, and sheep. Humans, mice, or rats are preferred, and humans are more preferred. The sample obtained from a living organism may be a body fluid, tissue, or cell. Examples of body fluids include blood (e.g., whole blood), blood cells, serum, plasma, pleural effusion, ascites, cerebrospinal fluid, saliva, urine, and feces. Examples of tissues include blood vessels of the heart, arteries, kidneys, lungs, inner ear, sinuses, skin, nerves, and other organs. Examples of cells include cells obtained from such tissues. From the perspective of non-invasiveness, the sample obtained from a living organism is preferably a body fluid, and more preferably blood, serum, or plasma. The nucleic acid may be DNA or RNA. The DNA may be single-stranded, double-stranded, triple-stranded, or quadruple-stranded. The RNA may be single-stranded or double-stranded. The nucleic acid may be a natural polymer or a synthetic polymer. According to the present detection method, nucleic acids can be detected with high sensitivity by using the compound of formula (I).

[0111] Fluorescent dyes comprising compounds of formula (I) are prepared for use by dissolving them in a solvent, such as water or a water-miscible organic solvent, such as dimethyl sulfoxide (DMSO), dimethylformamide (DMF), or a lower alcohol, such as methanol or ethanol.

[0112] An effective amount of a compound of formula (I) is an amount sufficient to provide a detectable fluorescent signal from nucleic acids. The concentration of the compound of formula (I) in the staining solution before mixing with nucleic acids must be sufficient to contact the nucleic acids in the sample in an amount sufficient to provide a fluorescent signal while minimizing background fluorescence. The concentration of the fluorescent dye in the staining solution for application to a gel can generally be 0.1 μM to 10 μM, more generally 0.5 μM to 2 μM. The concentration of the fluorescent dye in the staining solution for detection and quantification of free nucleic acids can generally be 0.1 μM to 2 μM.

[0113] By mixing a sample containing nucleic acid with the compound of formula (I), the nucleic acid and the compound of formula (I) are brought into contact in the mixture. The cyanine dye compound of formula (I) has low intrinsic fluorescence when not associated with nucleic acid, but becomes fluorescent upon binding to nucleic acid, and the binding of the compound of formula (I) to nucleic acid is detected in the form of a detectable fluorescent signal.

[0114] A sample containing nucleic acid may be mixed directly with a compound of formula (I), mixed in a separation solution such as an electrophoresis solution, a sieve matrix, or a running buffer, mixed in a precipitate (e.g., sucrose) or density gradient (e.g., a CsCl-containing density gradient), or nucleic acid immobilized on a matrix such as a membrane, gel, or substrate, or any other support, may be contacted with a compound of formula (I). Examples of membranes include nitrocellulose membranes and methylcellulose membranes. Examples of gels include agarose gels, alginate hydrogels, and polyacrylamide gels. Examples of substrates include glass substrates and quartz substrates.

[0115] Optionally, a fluorescent dye may be contacted with a sample containing nucleic acids before, during, or after gel or capillary electrophoresis, gradient centrifugation, or other separation step. For example, nucleic acids in a sample may be separated by electrophoresis or gradient centrifugation, followed by binding a fluorescent dye to the separated nucleic acids and detecting or measuring the fluorescence intensity of the nucleic acid-fluorescent dye complex (hereinafter also referred to as "nucleic acid-dye complex"). Alternatively, nucleic acids in a sample may be mixed with a fluorescent dye to bind the nucleic acids and the fluorescent dye, followed by separating the mixture by electrophoresis or gradient centrifugation, followed by detecting or measuring the fluorescence intensity of the nucleic acid-fluorescent dye complex.

[0116] When a support is used, nucleic acids in a sample may be immobilized by electrophoresis, then a fluorescent dye may be bound to the immobilized nucleic acid, and the nucleic acid may be detected by detecting or measuring the fluorescence intensity of the nucleic acid-fluorescent dye complex (post-staining method). Alternatively, nucleic acids in a sample may be mixed with a fluorescent dye to bind the nucleic acid and the fluorescent dye, the mixture may be subjected to electrophoresis, the nucleic acids in the mixture may be separated onto the support by electrophoresis, and the nucleic acids may be detected by detecting or measuring the fluorescence intensity of the nucleic acid-fluorescent dye complex (first-staining method).

[0117] Preferably, the fluorescent dye is mixed with or contacted with a sample containing nucleic acid at a temperature that is optimal for the biological activity of the nucleic acid (usually between 5°C and 50°C) within the operating parameters of the fluorescent dye. For in vitro assays, the fluorescent dye is mixed with or contacted with a sample containing nucleic acid at room temperature (between 15-25°C). The time required for the staining of the nucleic acid by the fluorescent dye to reach equilibrium may vary depending on the conditions, but in a preferred embodiment, fluorescence of the nucleic acid-dye complex is observed within a few minutes, e.g., within one minute, of contacting the nucleic acid with the fluorescent dye.

[0118] The nucleic acid-dye complex formed by staining nucleic acids in a sample with the fluorescent dyes of the present invention contains one or more fluorescent dye molecules and a nucleic acid polymer non-covalently bound thereto, and produces a fluorescent signal that is significantly enhanced over the fluorescence of the fluorescent dye alone.

[0119] The fluorescence of the nucleic acid-dye complex is detected qualitatively or quantitatively by exciting the sample with a wavelength absorbed by the dye portion of the complex and measuring the emitted wavelength. The excitation wavelength is preferably in the range of 455-500 nm, and the detection wavelength is preferably in the range of 505-560 nm. Emission is detected by visual inspection or by the use of current instrumentation such as CCD cameras, video cameras, photographic film, laser scanners, fluorometers, photodiodes, quantum counters, plate readers, epifluorescence microscopes, scanning microscopes, confocal microscopes, flow cytometers, and capillary electrophoresis detectors.

[0120] Once the dye-nucleic acid complex is formed, its presence can be detected as a fluorescent signal and used as an indicator of the presence, location, or type of nucleic acid in a sample. In addition to its use in such qualitative analyses, nucleic acids in a sample can also be quantified by comparing the known relationship between the fluorescence of the nucleic acid-dye complex and the concentration of nucleic acid in a sample.

[0121] The detection method of the present invention has high detection sensitivity and produces a strong fluorescent signal even when using a small amount of nucleic acid. For example, it is possible to detect double-stranded DNA in an amount of 1 ng or less, particularly about 100 pg to 800 pg, per band on an electrophoresis gel. By increasing the dye concentration, it is possible to detect even smaller amounts of nucleic acid, for example, it is possible to detect double-stranded DNA in an amount of about several pg to several tens of pg per band on an electrophoresis gel.

[0122] Furthermore, the detection method of the present invention uses a fluorescent dye with two DNA interaction sites per molecule, enabling highly sensitive detection of even short DNA. For example, it is possible to detect cfDNA and tumor cDNA, which is a double-stranded DNA of 200 bp or less, particularly 90-150 bp. Tumor-derived DNA fragments (ctDNA) circulating in the blood of cancer patients reflect the DNA of the entire tumor, enabling a comprehensive understanding of the tumor. Furthermore, their short half-life provides real-time tumor information, making them useful for early cancer diagnosis and prognostic follow-up. However, because ctDNA is short in size and the amount of ctDNA contained in blood samples is extremely small (Sci Transl Med. 2018 November 07; 10(466)), the sensitivity of nucleic acid detection dyes widely used in conventional technology is insufficient to thoroughly detect ctDNA derived from various patients. The detection method using the fluorescent dye of the present invention can also be used for ctDNA analysis. The nucleic acid detection method of the above aspect of the present invention can be used as a method for qualitatively or quantitatively analyzing target DNA or RNA containing a specific base sequence, and is useful in the field of clinical diagnosis, such as disease diagnosis, disease diagnostic assistance, and genetic diagnosis.

[0123] According to one aspect of the present invention, there is provided a kit for detecting nucleic acid in a sample, comprising a compound of formula (I) above.

[0124] The sample is preferably a sample obtained from a living organism, and more preferably a sample obtained from a mammal. Examples of mammals include, but are not limited to, humans, mice, rats, cows, horses, pigs, monkeys, dogs, cats, rabbits, goats, and sheep. Humans, mice, or rats are preferred, and humans are more preferred. The sample obtained from a living organism may be a body fluid, tissue, or cell. Examples of body fluids include blood (e.g., whole blood), blood cells, serum, plasma, pleural effusion, ascites, cerebrospinal fluid, saliva, urine, and feces. Examples of tissues include blood vessels of the heart, arteries, kidneys, lungs, inner ear, sinuses, skin, nerves, and other organs. Examples of cells include cells obtained from such tissues. From the perspective of non-invasiveness, the sample obtained from a living organism is preferably a body fluid, and more preferably blood, serum, or plasma. The nucleic acid may be DNA or RNA. The DNA may be single-stranded or double-stranded DNA. By including a compound of formula (I), the kit enables high-sensitivity detection of nucleic acids.

[0125] The nucleic acid can be detected by performing the nucleic acid detection method of the present invention using the kit. Therefore, the kit may further include instructions describing the nucleic acid detection method. The kit may further include, optionally, nucleic acid fragments used as size markers and additional detection reagents (e.g., staining compounds specific only to DNA).

[0126] The disclosures of all patent applications and publications cited herein are hereby incorporated by reference in their entirety.

[0127] The following examples are intended for illustrative purposes only and are not intended to limit the scope of the present invention in any way. Unless otherwise specified, reagents are commercially available or are obtained or prepared according to conventional techniques or literature procedures in the art. [Example]

[0128] Example 1 Synthesis of dye skeleton A compound that serves as the skeleton of the dye was synthesized according to the following scheme 3. Compound 8 was synthesized using compound 1 as a starting material according to the following procedure, with reference to the method described in Patent Document 1, U.S. Patent No. 5,658,751.

[0129] (1) Synthesis of Compound 3 Compound 1 (2.42 g, 15.2 mmol), compound 2 (3.70 g, 30.4 mmol), copper(II) acetate (2.75 g, 15.2 mmol), pyridine (1.23 mL, 15.2 mmol), triethylamine (2.12 mL, 7.6 mmol), and molecular sieves 3A (1 g) were added to 50 mL of dichloromethane and stirred overnight at room temperature. The reaction solution was filtered, and the filtrate was evaporated using a rotary evaporator. The residue was added with saturated aqueous ammonium chloride and extracted with dichloromethane. The organic layer was dried over sodium sulfate, filtered, and the filtrate was evaporated on a rotary evaporator. The residue was purified by chromatography on amino silica gel (ethyl acetate:hexane = linear gradient from 10:90 to 30:70) to give compound 3 (1.7 g, 7.2 mmol, 48% yield) as a white solid.

[0130] (2) Synthesis of Compound 4 Compound 3 (820 mg, 3.5 mmol) was dissolved in 35 mL of dichloromethane (ultra-dehydrated), and phosphoryl chloride (1.1 mg, 7.0 mmol) and a catalytic amount of N,N-dimethylformamide were added, followed by refluxing at 50°C for 6 hours. After returning to room temperature, the reaction solution was distilled off using a rotary evaporator, and the residue was washed with a solvent mixture of ethyl acetate and diethyl ether (1:1) to obtain crude compound 4.

[0131] (3) Synthesis of Compound 7 Compound 5 (3.6 g, 20 mmol) and compound 6 (3.1 mL, 20 mmol) were mixed and heated at 130°C for 3 hours, then cooled to room temperature to give pale yellow compound 7 (7.2 g, 20 mmol).

[0132] (4) Synthesis of Compound 8 Compound 7 (900 mg, 2.45 mmol) was added to compound 4 (crude, ~3.5 mmol) and stirred vigorously at room temperature. Triethylamine (6 mL) was then added and stirred for an additional 5 minutes. 15 mL of concentrated hydrochloric acid was added to the reaction mixture, which was then stirred at 0 °C for 30 minutes. Water was added to the dark purple reaction mixture, which was then extracted with dichloromethane. The organic layer was dried over sodium sulfate, filtered, and the solvent was removed from the filtrate using a rotary evaporator. The residue was purified by reverse-phase chromatography using a C18 column (a linear gradient of acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 10:90 to 30:70) to obtain crude compound 8.

[0133] (5) Synthesis of Compound 9 To the crude compound 8 (0.52 g), 1-(tert-butoxycarbonyl)piperazine (1.2 g, 54 mmol) and 1,2-dichloroethane (20 mL) were added and stirred at 50 °C for 2 hours. After cooling to room temperature, the reaction solution was evaporated using a rotary evaporator. The residue was further purified by chromatography using amino silica gel (linear gradient of methanol:ethyl acetate = 0:100 to 50:50) to obtain crude compound 9.

[0134] (6) Synthesis of Compound 10 Trifluoroacetic acid (3 mL) was added to the crude compound 9, and the mixture was stirred at 0 °C for 20 min. The solvent was then removed using a rotary evaporator. The residue was purified by reverse-phase chromatography using a C18 column (a linear gradient of acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 1:99 to 100:0) to give compound 10 (193 mg, 0.34 mmol, 9.8% yield (4 steps starting from compound 3)) as a red solid.

[0135] [ka]

[0136] Example 2 Condensation of the Linker According to Scheme 4, the compounds synthesized in Example 1 were linked with a linker, and a group of novel fluorescent dyes having two DNA-binding sites, which are included in the compounds of formula (I) of the present invention, were successfully synthesized.

[0137] (1) Synthesis of Compound 11 Compound 10 (20 mg, 0.035 mmol) was dissolved in 3 mL of dichloromethane (ultra-dehydrated), and one drop of triethylamine and one drop of acetyl chloride were added. The mixture was stirred at 0 °C for 30 min. 2 mL of methanol was added to the reaction mixture, and the mixture was stirred at room temperature for an additional 5 min. The solvent was removed using a rotary evaporator, and the residue was purified by high-performance liquid chromatography using a C18 column (a linear gradient of acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 30:70 to 100:0) to obtain compound 11 (16 mg, 0.026 mmol, 75% yield) as a red solid.

[0138] (2) Synthesis of Compound 12 3,6-Dioxaoctandioic acid (6.4 mg, 0.036 mmol), 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (46 mg, 0.24 mmol), N-hydroxysuccinimide (27.5 mg, 0.24 mmol), and N,N-diisopropylethylamine (80 μL, 0.46 mmol) were dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous). Compound 10 (54 mg, 0.096 mmol) dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous) was added and the mixture was stirred at room temperature overnight. The reaction solution was evaporated using a rotary evaporator, and the residue was purified by high-performance liquid chromatography using a C18 column (linear gradient of acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 30:70 to 100:0) to give compound 12 (7.1 mg, 0.056 mmol, yield 16%) as a red solid.

[0139] (3) Synthesis of Compound 13 3,6,9-Trioxaundecanedioic acid (2.8 mg, 0.016 mmol), 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (4.0 mg, 0.021 mmol), N-hydroxysuccinimide (2.0 mg, 0.017 mmol), and N,N-diisopropylethylamine (8.0 μL, 0.046 mmol) were dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous). Compound 10 (17 mg, 0.030 mmol) dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous) was added and the mixture was stirred at room temperature overnight. The reaction solution was evaporated using a rotary evaporator, and the residue was purified by high-performance liquid chromatography using a C18 column (linear gradient of acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 30:70 to 100:0) to give compound 13 (3.3 mg, 0.0025 mmol, yield 17%) as a red solid.

[0140] (4) Synthesis of Compound 14 3,6,9,12-Tetraoxatetradecanedioic acid (3.2 mg, 0.012 mmol), 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (7.4 mg, 0.039 mmol), and N-hydroxysuccinic acid were dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous). Compound 10 (17 mg, 0.030 mmol) dissolved in 3 mL of N,N-dimethylformamide (ultra-anhydrous) was added and stirred overnight at room temperature. The reaction solution was evaporated on a rotary evaporator, and the residue was purified by high-performance liquid chromatography (HPLC) using a C18 column (linear gradient: acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) = 30:70 to 100:0) to give compound 14 (2.2 mg, 0.0016 mmol, 14% yield) as a red solid.

[0141] [ka]

[0142] Example 3 Measurement of absorption / fluorescence spectra of various fluorescent dyes SYBR Gold, SYBR Green I, Compound 11, Compound 13, and Compound 14 prepared in Example 2 were each dissolved in 800 μL of TE buffer (pH 8.0) to a concentration of approximately 1 μM, and the absorption and fluorescence spectra were measured using a quartz cell with an optical path length of 0.5 cm. Next, 10 μL of a TE buffer solution (970 ng / μL) of deoxyribonucleic acid (derived from salmon sperm) 500-1000 bp was added to each solution, and the absorption and fluorescence spectra were measured in the same manner. (result) As shown in Figures 3(H), (I), and (J), compounds 11, 13, and 14 showed a strong increase in fluorescence upon addition of DNA. The fluorescence intensity at a wavelength of 520 nm for compounds 11, 13, and 14 increased by more than 500 times upon binding to DNA. No significant difference in fluorescence intensity was observed depending on the length of the linker chain.

[0143] Example 4 DNA binding assay of various fluorescent dyes SYBR Gold, SYBR Green I, Compound 11, Compound 13, and Compound 14 dyes (final concentrations: 200, 400, and 800 nM) and deoxyribonucleic acid (derived from salmon sperm) 500-1000 bp (final concentrations: 0.5, 1, 2, 3, 4, 6, 8.5, and 12 μM) were prepared in TE buffer (pH 8.0) on a 96-well plate, and the fluorescence intensity was measured using a plate reader (excitation wavelength: 475 nm, emission wavelength: 520 nm). The dissociation constant (K) was calculated by fitting the obtained results with the McGhee-von Hippel equation (Equation 1). d ) and the number of base pairs (N) occupied in the dye-binding site were calculated.

[0144]

number

[0145] (result) Figure 4(A)-(E) shows the DNA concentration and the fluorescence intensity of each compound. Table 1 shows the dissociation constant K d and the number N of base pairs that the dye binds to.

[0146] Compounds 13 and 14 interact with DNA at two DNA-binding sites within the molecule, resulting in stronger binding strength to DNA than compound 11, which interacts at only one site. d The values ​​were decreased for the dimers Compound 13 and Compound 14, indicating improved binding ability. Compound 13 (n = 3) showed the highest DNA binding ability. Compound 13 showed a lower dissociation constant compared to commercially available fluorescent reagents. Furthermore, the number of base pairs N in the dye-binding site increased between compounds 13 and 14, indicating simultaneous intercalation into two base pairs.

[0147] [Table 2]

[0148] Example 5 DNA Electrophoresis Test - Post-dyeing Test Gene Ruler 50 bp DNA Ladder (Thermo Fisher Scientific) solutions containing 50, 100, 150, and 200 bp DNA (3500, 700, 140, 70, and 23 pg, respectively) were loaded onto an 8% polyacrylamide gel and electrophoresed in TBE buffer at 100 V for 30 minutes. After electrophoresis, the gel was stained with SYBR Gold, SYBR Green I, compound 11, compound 13, or compound 14 (1 μM each) in TE buffer for 30 minutes. Fluorescence detection was performed using a gel imager iBright FL1500 Imaging System (Thermo Fisher Scientific) (excitation wavelength: 455-485 nm, emission wavelength: 508-557 nm, exposure time: 2 seconds). (result) As shown in Figure 5, no significant difference in detection sensitivity was observed regardless of which dye was used. This is thought to be due to the excess amount of dye relative to DNA under these conditions. SYBR Gold produced high background noise, but Compounds 11, 13, and 14 produced lower background noise than SYBR Gold, and the difference in fluorescence intensity upon DNA binding was more pronounced.

[0149] Example 6 DNA Electrophoresis Test - DNA Pre-dyeing Test Six μL of each solution containing 50, 100, 150, and 200 bp DNA from Gene Ruler 50 bp DNA Ladder (Thermo Fisher Scientific) at 3500, 700, and 140 pg, respectively, and SYBR Gold, SYBR Green I, compound 11, compound 13, or compound 14 at a final concentration of 0.67 μM, was loaded onto an 8% polyacrylamide gel and electrophoresed in TBE buffer at 100 V for 30 minutes. After electrophoresis, the gel was subjected to fluorescence detection using an iBright FL1500 Imaging System (Thermo Fisher Scientific) (excitation wavelength: 455-485 nm, emission wavelength: 508-557 nm, exposure time: 0.4 seconds), and the fluorescence intensity of each band was quantified. (result) As shown in Figure 6 and Table 2, compounds 13 and 14, being dimers, showed improved DNA detection ability and improved DNA binding ability compared to the monomeric form of compound 11. Furthermore, compound 13 (n = 3) exhibited higher detection sensitivity than compound 14 (n = 4), suggesting that this chain length may be optimal. Compound 13 exhibited a lower dissociation constant than commercially available fluorescent reagents and successfully demonstrated high fluorescence in electrophoresis tests under DNA pre-staining conditions.

[0150] [Table 3]

[0151] Example 7 DNA Electrophoresis Test - DNA Pre-dyeing Test A 4 μL solution containing 10 ng of total DNA from Gene Ruler 50 bp DNA Ladder (Thermo Fisher Scientific) with SYBR Gold, compound 13, or compound 14 at a final concentration of 2 μM was loaded onto a 12% polyacrylamide gel. Four μL solutions containing 3.9 ng of total DNA from cfDNA samples extracted from cancer patients with SYBR Gold, compound 13, or compound 14 at final concentrations of 0.5 μM, 1 μM, or 2 μM were loaded onto the gel. Electrophoresis was performed in TBE buffer at 350 V for 30 minutes. After electrophoresis, the gel was illuminated with a 470 nm LED light source built into a gel imager (Bio-Pyramid; Mecan Imaging) and photographed with a digital camera (XZ-2; Olympus) using an 8-second exposure time. (result) As shown in the box in Figure 7, the bands around 160 bp characteristic of cfDNA / ctDNA were stained. Quantitative analysis of the band fluorescence intensity using ImageJ revealed that the fluorescence intensity of the cfDNA peak around 160 bp was nearly identical for compounds 13 and 14, and the fluorescence intensity of both compounds was stronger than that of SYBR Gold (Figure 8). These results demonstrate that the newly developed compounds 13 (n = 3) and 14 (n = 4) can detect cfDNA / ctDNA bands with higher sensitivity than when using commercially available SYBR Gold as a detection reagent.

[0152] Thus, even in tests using actual specimen samples (cfDNA extracted from cancer patients), compounds 13 and 14 were shown to be able to detect cfDNA (or ctDNA) with higher sensitivity than SYBR Gold.

Claims

1. A compound of formula (I) below: 【Chemistry 1】 (In the formula, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently a group selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently a group selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5 are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; A is one of the following: 【Chemistry 2】 (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH 2 ) r - (r is an integer ranging from 2 to 6). L is -CO-(CH 2 -O-CH 2 ) n -CO- (n is an integer ranging from 2 to 6), -CO-(CH 2 CH 2 -O-CH 2 CH 2 ) p -CO- (p is an integer ranging from 2 to 6), or -(CH 2 ) q - (q is an integer from 2 to 6), Y - is the counter anion.)

2. The compound according to claim 1, which is a compound of formula (Ia): 【Transformation 3】 (In the formula, Each R 1 are independently methyl or ethyl; A is one of the following: 【Chemistry 4】 (In the formula, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH 2 ) r - (r is an integer from 2 to 6). L is -CO-(CH 2 -O-CH 2 ) n -CO- (n is an integer of 2 to 6), -CO-(CH 2 CH 2 -O-CH 2 CH 2 ) p -CO- (p is an integer from 2 to 6), or -(CH 2 ) q - (q is an integer from 2 to 6), Y - is the counter anion.)

3. A fluorescent dye comprising the compound according to claim 1 or 2.

4. A compound of formula (II) below: 【Transformation 5】 (In the formula, Each R 1 are independently alkyl having 1 to 6 carbon atoms, Each R 2 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; X is S or O; Each R 3 are independently selected from the group consisting of alkyl having 1 to 6 carbon atoms and halogen; Each R 4 is a phenyl group, Each R 5 are independently selected from the group consisting of hydrogen, alkyl having 1 to 6 carbon atoms, and halogen; m is 0, 1 or 2; s is independently 0, 1, 2, 3, or 4; t is independently 0, 1, 2, 3, or 4; B is one of the following: 【Transformation 6】 (In the formula, R 10 is hydrogen or -COO-R 11 and R 11 is alkyl having 1 to 6 carbon atoms, R 6 and R 8 are independently hydrogen or alkyl having 1 to 6 carbon atoms; R 7 Ha-(CH 2 ) r - (r is an integer from 2 to 6), R 9 is hydrogen or -COO-R 12 and R 12 is an alkyl group having 1-6 carbon atoms. Y - is the counter anion.)

5. A kit for detecting nucleic acids in a sample, comprising the compound of claim 1 or 2.

6. contacting nucleic acid in a sample with a compound according to claim 1 or 2; and detecting the fluorescence intensity of the complex of the nucleic acid and the compound; A method for detecting nucleic acid comprising:

7. further comprising the step of immobilizing the nucleic acid on a support; The detection method according to claim 6 , wherein the fluorescence intensity is detected by detecting the fluorescence intensity of a complex of the nucleic acid and the compound on a support.

8. the contacting step includes mixing the sample with the compound to prepare a mixed solution; The detection method according to claim 7 , wherein the immobilization step comprises immobilizing the mixture on a gel by electrophoresis.

9. The method of claim 6, wherein the nucleic acid is DNA or RNA.

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