Probes for detecting biomolecular structures, kits for detecting biomolecular structures, and methods for detecting biomolecular structures

The use of a disulfide bond linker in a probe and kit allows repeated use of labeling substances for biomolecular structure detection, overcoming the limitations of photocleavable labels and ensuring accurate analysis.

JP7849883B2Active Publication Date: 2026-04-22KYUSHU UNIV
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
KYUSHU UNIV
Filing Date
2021-11-30
Publication Date
2026-04-22

AI Technical Summary

Technical Problem

Existing methods using photocleavable labels for fluorescent multiplex staining risk unintentional detachment due to excitation light, hindering accurate analysis of biomolecular structures.

Method used

A probe and kit utilizing a linker with a disulfide bond to link a specific binding substance and a labeling substance, allowing the same labeling substance to be reused without photocleavable labels, with the disulfide bond cleaved using reducing agents.

Benefits of technology

Enables repeated use of the same labeling substance for detecting multiple biomolecular structures without interference from excitation light, ensuring accurate and reliable analysis.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a biomolecule structure detection probe in which a marker substance and a specific bonding substance that has specific bonding properties with respect to a biomolecule structure are connected via a linker that includes a disulfide bond. Also provided is a biomolecule structure detection kit including the aforementioned biomolecule structure detection probe and a reagent for severing the disulfide bond. Also provided is a biomolecule structure detection kit including: a linker for connecting a marker substance and a specific bonding substance that has specific bonding properties with respect to a biomolecule structure, the linker including a disulfide bond; a marker substance that can bond to the linker; and a reagent for severing the disulfide bond. Also provided is a method for detecting a biomolecule structure, the method involving using the aforementioned biomolecule structure detection probe.
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Description

[Technical Field]

[0001] The present invention relates to a probe for detecting biomolecular structures, a kit for detecting biomolecular structures, and a method for detecting biomolecular structures. This application claims priority based on Japanese Patent Application No. 2020-199800, filed in Japan on December 1, 2020, and the contents of that application are incorporated herein by reference. [Background technology]

[0002] Immunofluorescence staining is a technique for detecting the expression status of antigens in tissue samples. Traditionally, when detecting multiple types of antigens in the same sample, multiple types of fluorescent labels with different maximum fluorescence wavelengths have been used. However, there are limitations to the types of fluorescent labels that can be used. Even when using fluorescent labels with different maximum fluorescence wavelengths, the leakage of fluorescence from non-target antigens into the wavelength range of the target antigen can hinder the accurate analysis of its expression status.

[0003] Patent Document 1 reports antibodies labeled with photocleavable labels. Patent Document 1 describes a method in which immunostaining is performed with antibodies labeled with photocleavable labels, the photocleavable labels are detected, and then the labels are cleaved by irradiation with ultraviolet light. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] Special Publication No. 2018-523826 [Overview of the project] [Problems that the invention aims to solve]

[0005] Patent Document 1 uses a photocleavable label, and the label is detached by ultraviolet irradiation. However, when a photocleavable label is applied to fluorescent multiplex staining, there is a risk that the photocleavable portion may be detached unintentionally by the excitation light used to detect the fluorescent label.

[0006] Therefore, the present invention aims to provide a probe for detecting biomolecular structures, a kit for detecting biomolecular structures, and a method for detecting biomolecular structures that allow the same labeled substance to be used repeatedly without using photocleavable labels. [Means for solving the problem]

[0007] The present invention includes the following embodiments. [1] A probe for detecting biomolecular structures, comprising a specific binding substance having specific binding affinity to a biomolecular structure and a labeling substance linked via a linker containing a disulfide bond. [2] The biomolecular structure detection probe according to [1], wherein the specific binding substance is an antibody. [3] The biomolecular structure detection probe according to [1] or [2], wherein the labeling substance is a fluorescent dye. A biomolecular structure detection kit comprising a probe for detecting biomolecular structure described in any one of [4][1] to [3] and a disulfide bond cleavage reagent. [5] A kit for detecting biomolecular structures, comprising a linker for linking a specific binding substance having specific binding affinity to a biomolecular structure with a labeling substance, the linker containing a disulfide bond, a labeling substance bound to or capable of being bound to the linker, and a disulfide bond cleavage reagent. [6] The biomolecular structure detection kit according to [5], wherein the specific binding substance is an antibody. [7] The biomolecular structure detection kit according to [5] or [6], wherein the labeling substance is a fluorescent dye. [8] A method for detecting a biomolecular structure, comprising: (A) detecting a first biomolecular structure in a sample including cells using a first biomolecular structure detection probe, in which a specific binding substance having specific binding affinity to a first biomolecular structure and a first labeling substance are linked via a linker containing a disulfide bond; and (B) cleaving the disulfide bond in the first biomolecular structure detection probe to release the first labeling substance. [9] After the step (B), a second probe for detecting a second biomolecular structure, in which a specific binding substance having specific binding affinity for the second biomolecular structure and a second labeling substance are linked via a linker containing a disulfide bond, is used to detect the second biomolecular structure in the sample in step (C), The method for detecting a biomolecular structure according to [8], further comprising

[10] The method for detecting a biomolecular structure according to [9], wherein the first labeling substance and the second labeling substance are the same labeling substance.

[11] The method for detecting a biomolecular structure according to any one of [8] to

[10] , wherein the first biomolecular structure is a biomolecular structure including a first primary probe that specifically binds to a third biomolecular structure contained in the cell.

[12] The method for detecting a biomolecular structure according to [9] or

[10] , wherein the first biomolecular structure is a biomolecular structure including a first primary probe that specifically binds to a third biomolecular structure contained in the cell, and the second biomolecular structure is a biomolecular structure including a second primary probe that specifically binds to a fourth biomolecular structure contained in the cell. [Advantages of the Invention]

[0008] According to the present invention, there are provided a probe for detecting a biomolecular structure, a kit for detecting a biomolecular structure, and a method for detecting a biomolecular structure, which can repeatedly use the same labeling substance without using a photo-cleavable label. [Brief Description of the Drawings]

[0009] [Figure 1] It is a diagram schematically showing a method for detecting a biomolecular structure according to an embodiment. [Figure 2] It is a diagram schematically showing a method for detecting a biomolecular structure according to an embodiment. [Figure 3] It schematically shows an outline of the immunostaining method of Example 1. [Figure 4] It is a fluorescence image showing the result of immunostaining of Example 1. [Figure 5] It is a fluorescence image showing the result of immunostaining of Example 2. [Figure 6]A schematic outline of the immunohistochemical staining methods used in Example 3 and Comparative Example 1 is shown. [Figure 7] This is a fluorescence image showing the results of immunohistochemical staining in Example 3. [Figure 8] This is a fluorescence image showing the results of immunohistochemical staining in Comparative Example 1. [Figure 9] This is a fluorescence image showing the results of immunohistochemical staining in Reference Example 1. [Figure 10] This is a fluorescence image showing the results of serial immunohistochemical staining in Example 4. [Figure 11] This is proteomic data obtained by quantifying the signals of each fluorescence image at the single-cell level, obtained by performing sequential immunostaining using approximately 60 types of biomolecular structure detection probes. [Figure 12] Figure 11 shows the results of classifying the data into five groups after dimensionality reduction (UMAP). [Figure 13] This diagram shows the locations of cells in fluorescence images obtained from serial immunohistochemistry, with each cell's location indicated by a colored dot corresponding to a specific group. [Figure 14] Figure 13 shows the result of overlaying quantitative values ​​of specific protein expression onto the cell position information obtained in Figure 13. [Modes for carrying out the invention]

[0010] The embodiments of the present invention will be described in detail below, with reference to the drawings as appropriate. In the drawings, identical or corresponding parts are denoted by the same or corresponding reference numerals, and redundant explanations are omitted. The dimensional ratios in each figure are exaggerated for illustrative purposes and do not necessarily correspond to the actual dimensional ratios.

[0011] The term "comprise" means that it may include components other than the component being studied. The term "consist of" means that it does not include components other than the component being studied. The term "consist essentially of" means that it does not include components other than the component being studied in a manner that performs a special function (such as a manner that completely negates the effect of the invention). In this specification, when "comprise" is used, it includes "consist of" and "consist essentially of" manners.

[0012] Proteins, peptides, nucleic acids, and cells may be isolated. "Isolated" means in their natural state or separated from other components. "Isolated" may be substantially free of other components. "Substantially free of other components" means that the content of other components in the isolated component is negligible. The content of other components in the isolated component may be, for example, 10% by mass or less, 5% by mass or less, 4% by mass or less, 3% by mass or less, 2% by mass or less, 1% by mass or less, 0.5% by mass or less, or 0.1% by mass or less. The proteins, peptides, nucleic acids, and cells described herein may be isolated proteins, isolated peptides, isolated nucleic acids, and isolated cells.

[0013] [Probes for detecting biomolecular structures] A first aspect of the present invention is a probe for detecting biomolecular structures, in which a specific binding substance having specific binding properties to a biomolecular structure and a labeling substance are linked via a linker containing a disulfide bond.

[0014] The term "probe" refers to a molecule or molecular complex used to detect a specific biomolecular structure. The biomolecular structure detection probe of this embodiment has a structure in which a specific binding substance having specific binding properties to the biomolecular structure to be detected and a labeling substance are linked via a linker containing a disulfide bond.

[0015] "Biomolecules" refer to organic compounds found in living organisms. Biomolecules may be molecules that function in life processes. They may also be molecules artificially synthesized to mimic naturally occurring biomolecules. Examples of biomolecules include peptides, proteins, nucleic acids, lipids, sugars, glycolipids, vitamins, hormones, amino acids, and nucleotides.

[0016] "Biomolecular structure" refers to the structure contained within a biomolecule. A biomolecular structure may be a substructure of a biomolecule, a substructure of the primary structure, a substructure of the secondary structure, or a substructure of the tertiary structure. A biomolecular structure may also be a substructure of a three-dimensional structure composed of multiple biomolecules. If the biomolecule is a peptide or protein, the biomolecular structure may be, for example, a subregion containing a partial amino acid sequence of the protein, or a substructure of the three-dimensional structure of the protein. If some of the amino acid residues in the protein have undergone modifications such as phosphorylation, glycosylation, ubiquitination, methylation, or acetylation, the biomolecular structure may be the structure of the modified amino acid residues. Furthermore, if the biomolecule is a nucleic acid, the biomolecular structure may be, for example, a partial nucleotide sequence of the nucleic acid.

[0017] A "specific binding substance" refers to a substance that has specific binding affinity to a particular biomolecular structure. "Having specific binding affinity" means that it has a high binding affinity to a specific biomolecular structure, but has an extremely low binding affinity to other biomolecular structures. Preferably, a specific binding substance has high binding affinity to a specific biomolecular structure, but has almost no binding affinity to other biomolecular structures.

[0018] Examples of combinations between biomolecular structures and specific binding substances include, but are not limited to, combinations of a partial structure of a peptide or protein with an antibody, antibody fragment, or antibody mimetic; a partial sequence region of a nucleic acid with a nucleic acid containing a sequence complementary to that partial sequence; a ligand with its receptor; an enzyme with its substrate, inhibitor, or cofactor; a glycan with a lectin; a peptide, protein, or nucleic acid with an aptamer; a transcription regulatory sequence portion of a nucleic acid with its transcription regulatory factor; and others.

[0019] The antibody may be any class or subclass of immunoglobulin. The species from which the antibody originates is not particularly limited, and it may be an antibody from any organism. The antibody is preferably a monoclonal antibody. The antibody may also be a modified antibody, such as a chimeric antibody.

[0020] An antibody fragment refers to a fragment of an antibody that retains its antigen-binding ability. Examples of antibody fragments include, but are not limited to, scFv, Fab, F(ab')2, and Fv.

[0021] Antibody mimics are non-immunoglobulin molecules that, like antibodies, possess specific binding properties to antigens. Examples of antibody mimics include, but are not limited to, affibody molecules, affilin, affimer, afitin, alphabody, anticalin, avimer, DARPin, fynomer, Kunitz domain peptides, and monobody molecules.

[0022] Aptamers are substances that exhibit specific binding properties to target substances. Examples of aptamers include nucleic acid aptamers and peptide aptamers. Nucleic acid aptamers can be selected, for example, by the systematic evolution of ligand by exponential enrichment (SELEX) method. Peptide aptamers can be selected, for example, by the two-hybrid method using yeast.

[0023] As the specific binding agent, any substance that specifically binds to any biomolecular structure in a cell can be used. For example, if the goal is to detect a specific peptide or protein's partial amino acid sequence region, modified amino acid residues, or partial three-dimensional structure, antibodies, antibody fragments, antibody mimes, or aptamers that specifically bind to these structures can be used as the specific binding agent. If the goal is to detect a specific mRNA or genomic DNA's partial nucleotide sequence region, nucleic acids containing a nucleotide sequence complementary to the partial nucleotide sequence, or aptamers, can be used as the specific binding agent.

[0024] The specific binding substance may be one that has specific binding properties to the primary probe. The "primary probe" is the probe that is initially bound to the biomolecular structure to be detected. As the primary probe, for example, a biomolecule such as an antibody, antibody fragment, or nucleic acid can be used. If the primary probe is an antibody (primary antibody), as the specific binding substance, for example, an antibody (antibody, antibody fragment, antibody mimetic, aptamer, etc.) that has specific binding properties to the constant region of the primary antibody can be used.

[0025] A "labeled substance" refers to a substance that directly or indirectly generates a detectable signal by chemical or physical means. Examples of labeled substances include, but are not limited to, enzyme labels such as peroxidase (e.g., horseradish peroxidase) and alkaline phosphatase; fluorescent labels such as carboxyfluorescein (FAM), 6-carboxy-4',5'-dichloro-2',7'-dimethoxyfluorescein (JOE), fluorescein isothiocyanate (FITC), tetrachlorofluorescein (TET), 5'-hexachlorofluorescein-CE phosphoramidite (HEX), Cy3, Cy5, Alexa488, Alexa555, Alexa568, and Alexa647; radioisotope labels such as iodine-125; electrochemiluminescence labels such as ruthenium complexes; and metal nanoparticles. Preferred labeling substances include fluorescent labels (fluorescent dyes).

[0026] A "linker" refers to a linking portion that connects two substances, or a molecule used to connect two substances. In the biomolecular structure detection probe of this embodiment, the specific binding substance and the labeling substance are linked via a linker containing a disulfide bond.

[0027] The biomolecular structure detection probe of this embodiment can be represented, for example, by the following formula (P1).

[0028] [ka] [In the formula, Y 1 and Y 2 Each of these independently represents a divalent linking group; L represents the labeling substance; and A represents the specific binding substance.

[0029] In formula (P1), Y 1 and Y 2Each independently represents a divalent linking group. The divalent linking group preferably contains a bonding structure. The bonding structure means a structure formed by bonding two functional groups through a chemical reaction or intermolecular interaction. Examples of the chemical reaction forming the bonding structure include, but are not limited to, dehydration condensation reaction, addition cyclization reaction, etc. Y 1 and Y 2 The bonding structure contained in preferably does not include a disulfide bond. Examples of the bonding structure include, but are not limited to, amide bond (-CO-NH-), ester bond (-CO-O-), thioester bond (-CO-S-), phosphate ester bond (-PO2-O-), urethane bond (-NH-CO-O-), bond containing a 1,2,3-triazole ring, etc. The bonding structure may be a bond by intermolecular interaction such as avidin-biotin bond.

[0030] The probe for detecting a biomolecular structure of this embodiment may be, for example, represented by the following formula (P1-1).

[0031] [Chemical formula] [In the formula, Y 11 and Y 12 each independently represents a divalent linking group containing a bonding structure; R 11 and R 12 each independently represents a divalent linking group; L represents a labeling substance; A represents a specific binding substance.]

[0032] In formula (P1-1), Y 11 and Y 12 each independently represents a divalent linking group containing a bonding structure. Examples of the bonding structure include the same ones as those listed for the above Y 1 and Y 2 .

[0033] In formula (P1-1), R 11 and R 12Each of these independently represents a divalent linking group. Examples of divalent linking groups include hydrocarbon groups which may have substituents. The hydrocarbon group may be an aliphatic hydrocarbon group or an aromatic hydrocarbon group.

[0034] The aliphatic hydrocarbon group may be saturated or unsaturated, but it is preferably saturated. Examples of the aliphatic hydrocarbon group include linear or branched aliphatic hydrocarbon groups, and aliphatic hydrocarbon groups containing a ring in their structure.

[0035] The linear aliphatic hydrocarbon group preferably has 1 to 15 carbon atoms, more preferably 1 to 10 carbon atoms, even more preferably 1 to 6 carbon atoms, and particularly preferably 1 to 3 carbon atoms. A linear alkylene group is preferred as the linear aliphatic hydrocarbon group.

[0036] The branched aliphatic hydrocarbon group preferably has 2 to 15 carbon atoms, more preferably 2 to 10 carbon atoms, and even more preferably 3 to 6 carbon atoms. A branched alkylene group is preferred as the branched aliphatic hydrocarbon group.

[0037] Examples of aliphatic hydrocarbon groups containing a ring in their structure include cyclic aliphatic hydrocarbon groups (groups with two hydrogen atoms removed from an aliphatic hydrocarbon ring) which may contain substituents containing heteroatoms in their ring structure, groups in which the cyclic aliphatic hydrocarbon group is bonded to the end of a linear or branched aliphatic hydrocarbon group, and groups in which the cyclic aliphatic hydrocarbon group is interposed in the middle of a linear or branched aliphatic hydrocarbon group. Examples of the linear or branched aliphatic hydrocarbon group are the same as those described above. The cyclic aliphatic hydrocarbon group preferably has 3 to 20 carbon atoms, and more preferably 3 to 12 carbon atoms. The cyclic aliphatic hydrocarbon group may be a polycyclic group or a monocyclic group. The cyclic aliphatic hydrocarbon group may have some of the carbon atoms constituting its ring structure replaced by substituents containing heteroatoms (oxygen atoms, nitrogen atoms, sulfur atoms, etc.).

[0038] R 11 and R12 When the divalent linking group in is an aromatic hydrocarbon group, the number of carbon atoms is more preferably 6 to 15, and particularly preferably 6 to 12. The aromatic hydrocarbon group is a hydrocarbon group containing an aromatic ring. Examples of aromatic rings include aromatic hydrocarbon rings such as benzene, naphthalene, anthracene, and phenanthrene; and aromatic heterocycles such as triazole rings, pyridine rings, and thiophene rings.

[0039] Specific examples of aromatic hydrocarbon groups include groups obtained by removing two hydrogen atoms from the aromatic hydrocarbon ring or aromatic heterocycle (arylene group or heteroarylene group); groups obtained by removing two hydrogen atoms from aromatic compounds containing two or more aromatic rings (e.g., biphenyl, fluorene, etc.); and groups in which one hydrogen atom of an aryl group or heteroaryl group obtained by removing one hydrogen atom from the aromatic hydrocarbon ring or aromatic heterocycle is substituted with an alkylene group (a group obtained by removing one more hydrogen atom from an aryl group or heteroaryl group). The alkylene group that substitutes the hydrogen atom preferably has 1 to 10 carbon atoms, more preferably 1 to 6 carbon atoms, and even more preferably 1 to 4 carbon atoms.

[0040] In the hydrocarbon group which may have substituents, some of the hydrogen atoms in the hydrocarbon chain may be substituted with a monovalent group, and some of the methylene groups (-CH2-) constituting the hydrocarbon chain may be substituted with a divalent group containing a heteroatom. Examples of monovalent groups that substitute for hydrogen atoms include, but are not limited to, acyl groups, alkoxy groups, hydroxyl groups, carboxyl groups, amino groups, and thiol groups. Examples of divalent groups that substitute for methylene groups include -O-, -C(=O)-O-, -OC(=O)-, -C(=O)-, -OC(=O)-O-, -C(=O)-NH-, -NH-C(=O)-, and -NH-.

[0041] Specific examples of the biomolecular structure detection probe of this embodiment include, but are not limited to, those shown in (P1-1-1) below.

[0042] [ka] [In the formula, n1 and n2 each independently represent integers between 1 and 10; Avi represents avidin or its derivatives; L represents the labeling substance; and A represents the specific binding substance.]

[0043] In formula (P1-1-1), Avi represents avidin or a derivative thereof. Examples of avidin derivatives include streptavidin and neutraavidin. The avidin or derivative represented by Avi is bound to the biotin moiety by intermolecular interactions.

[0044] In formula (P1-1-1), n1 and n2 are each an integer between 1 and 10, independently of each other. Preferably, n1 and n2 are integers between 1 and 6, more preferably between 1 and 3, and even more preferably 2 or 3.

[0045] Specific examples of the biomolecular structure detection probe of this embodiment are given below, but are not limited thereto.

[0046] [ka] [In the formula, Avi represents avidin or its derivative; L represents the labeling substance; and A represents the specific binding substance.]

[0047] The biomolecular structure detection probe of this embodiment contains a disulfide bond in the linker portion between the specific binding substance and the labeling substance. Therefore, the labeling substance can be detached at any time by cleaving the disulfide bond. The disulfide bond can be easily cleaved with reducing agents such as tris(2-carboxyethyl)phosphine (TCEP), 2-mercaptoethanol, and dithiothreitol (DTT). Since the disulfide bond does not cleave with light, it does not cleave when irradiated with excitation light necessary for fluorescence observation. Since ultraviolet light is not used to cleave the disulfide bond, biomolecules such as nucleic acids are not altered by ultraviolet light. Therefore, after detecting a specific biological structure using the biomolecular structure detection probe of this embodiment, cells can be collected by microdissection or the like, and transcriptome analysis can be suitably performed.

[0048] [Kit for detecting biomolecular structures] <First Embodiment> A second aspect of the present invention is a biomolecular structure detection kit comprising the biomolecule detection probe of the above aspect and a disulfide bond cleavage reagent.

[0049] (Probe for biomolecular detection) The biomolecule detection probe is the same as the biomolecule detection probe in the above embodiment. In the biomolecule detection probe included in the kit of this practical form, the specific binding substance may be, for example, a specific binding substance (antibody, antibody fragment, antibody mimetic, or aptamer, etc.) that has specific binding affinity to the primary probe (e.g., primary antibody). For example, if the primary probe is an antibody derived from a specific species of animal (e.g., mouse antibody), the specific binding substance of the biomolecule detection probe may be an antibody derived from another species of animal (e.g., goat anti-mouse antibody) or an antibody fragment thereof that has specific binding affinity to the constant region of the antibody.

[0050] (Cutting reagent) The biomolecular structure detection kit of this embodiment includes a disulfide bond cleavage reagent in addition to the biomolecular detection probe described above. The disulfide bond cleavage reagent is not particularly limited as long as it is capable of cleaving disulfide bonds. Examples of cleavage reagents include reducing agents such as TCEP, 2-mercaptoethanol, and DTT. TCEP is preferred as the cleavage reagent due to its high stability and selectivity.

[0051] <Second Embodiment> A third aspect of the present invention is a kit for detecting a biomolecular structure, comprising a linker for linking a specific binding substance having specific binding affinity to a biomolecular structure with a labeling substance, the linker containing a disulfide bond, a labeling substance bound to or capable of binding to the linker, and a reagent for cleaving the disulfide bond.

[0052] (Linker) The kit of this embodiment includes a linker for linking a specific binding substance having specific binding properties to a biomolecular structure with a labeling substance. The linker may have a functional group that reacts with a functional group contained in the specific binding substance or labeling substance. For example, if the specific binding substance has an amino group, the linker may have an amine-reactive group. An amine-reactive group is a functional group that reacts with an amine. The amine-reactive group is not particularly limited, and known groups can be used. Examples of amine-reactive groups include, but are not limited to, N-hydroxyester (NHS-ester) groups, carboxyl groups, isocyanate groups, isothiocyanate groups, sulfonyl chloride groups, aldehyde groups, carbodiimide groups, acyl azide groups, epoxy groups, imide ester groups, etc.

[0053] The linker may be bonded to a specific binding substance or labeling substance by an avidin-biotin bond. In this case, the linker may contain a group derived from biotin.

[0054] Examples of linkers include those represented by the following formula (L1).

[0055] [ka] [In the formula, V 1 and V 2 Each of these independently represents a functional group or a group derived from biotin; R 11 and R 12 Each of these independently represents a divalent linking group.

[0056] In formula (L1), V 1 and V 2 Each of these independently represents a functional group or a group derived from biotin. 1 and V 2 The functional group in is a functional group that can react with the functional group of the specific binding substance or labeling substance to form a bonding structure. For example, if the specific binding substance or labeling substance has an amino group, V 1 and V 2 Examples of functional groups in this context include the amine-reactive groups mentioned above.

[0057] In formula (L1), R 11 and R 12 Each of these independently represents a divalent linking group. 11 and R 12 This is R in the above formula (P1-1). 11 and R 12 It is the same as this.

[0058] (labeled substance) The labeled substance may be bonded to the linker. Alternatively, the labeled substance may be provided unbonded to the linker. In this case, the labeled substance has a structure capable of being bonded to the linker. For example, the labeled substance may have a functional group that can react with a functional group of the linker to form a bonded structure. Alternatively, if the linker contains a group derived from biotin, avidin or an avidin derivative may be added. Examples of avidin derivatives are the same as those described above. If the labeled substance is provided unbonded to the linker, the user may perform a linking reaction between the linker and the labeled substance before use.

[0059] (Cutting reagent) The cutting reagent can be the same as that listed in the kit of the first embodiment.

[0060] The kit of this embodiment does not contain a specific binding substance, allowing the user to select any specific substance. Before use, the user can prepare a biomolecule detection probe by performing a binding reaction between the desired specific binding substance and the linker.

[0061] (Any element) The kit according to the second or third embodiment may include other elements in addition to the elements described above. Examples of other elements include a detection reagent for the labeled substance, a sample preparation reagent, a diluent, buffers (blocking buffer, washing buffer, etc.), and instructions for use.

[0062] The kit of this embodiment can be used in the biomolecular structure detection method described later.

[0063] [Methods for detecting biomolecular structures] A fourth aspect of the present invention is a method for detecting a biomolecular structure, comprising the steps of: (A) detecting a first biomolecular structure in a sample including cells using a first biomolecular structure detection probe, in which a specific binding substance having specific binding affinity to a first biomolecular structure and a first labeling substance are linked via a linker containing a disulfide bond; and (B) cleaving the disulfide bond in the first biomolecular structure detection probe to release the first labeling substance.

[0064] The method of this embodiment is a method for detecting a target biomolecular structure in a sample containing cells. The "sample containing cells" is not particularly limited as long as it contains cells. The sample containing cells may be a tissue section, a cell suspension, or a body fluid sample containing cells. The cells may be cells from any organism.

[0065] Figure 1 is a schematic diagram showing an example of the method of this embodiment. The method of this embodiment can be carried out using the biomolecular structure detection probe of the first embodiment described above. In Figure 1, 1 is a sample containing cells. Sample 1 contains biomolecules 10a and 10b. Biomolecules 10a and 10b are biomolecules that contain the biomolecular structure to be detected. 20a is a specific binding substance that specifically binds to the biomolecular structure contained in biomolecule 10a. 30a is a labeling substance. The specific binding substance 20a and the labeling substance 30a are linked via a linker 40a containing a disulfide bond, forming the biomolecular structure detection probe P1. 20b is a specific binding substance that specifically binds to the biomolecular structure contained in biomolecule 10b. 30b is a labeling substance. The specific binding substance 20b and the labeling substance 30b are linked via a linker 40b containing a disulfide bond, forming the biomolecular structure detection probe P2.

[0066] Examples of biomolecules 10a and 10b are those exemplified in the above [Probes for detecting biomolecular structure]. Biomolecules 10a and 10b are, for example, peptides or proteins. Examples of specific binding substances 20a and 20b are those exemplified in the above [Probes for detecting biomolecular structure]. Specific binding substances 20a and 20b are, for example, antibodies or antibody fragments. Examples of labeling substances 30a and 30b are those exemplified in the above [Probes for detecting biomolecular structure]. Labeling substances 30a and 30b are, for example, fluorescent dyes. Linkers 40a and 40b are those exemplified in the above [Probes for detecting biomolecular structure]. Labeling substances 30a and 30b may be the same or different. If labeling substance 30a is a fluorescent dye, it is preferable that labeling substance 30b is also a fluorescent dye. In this case, the fluorescent dyes of labeling substances 30a and 30b may be the same or different.

[0067] <Process (A)> In step (A), a first biomolecular structure detection probe (biomolecular structure detection probe P1) is used to detect the first biomolecular structure (biomolecular structure contained in biomolecule 10a) in a sample containing cells (sample 1) using a probe in which a specific binding substance (specific binding substance 20a) that has specific binding affinity to the first biomolecular structure and a first labeling substance (labeling substance 30a) are linked via a linker (linker 40a) containing a disulfide bond (see Figure 1(A)).

[0068] In Figure 1, the biomolecular structure detection probe P1 is the first biomolecular structure detection probe. In step (A), sample 1 is treated with the biomolecular structure detection probe P1. As a result, the biomolecular structure detection probe P1 binds to the biomolecule 10a via a specific binding substance 20a.

[0069] The method for processing sample 1 with the biomolecular structure detection probe P1 can be appropriately selected depending on the type of specific binding substance 20a. For example, a solution of the biomolecular structure detection probe P1, obtained by dissolving the biomolecular structure detection probe P1 in a suitable buffer (e.g., phosphate buffer, Tris-HCl buffer, PBS, etc.), is added to sample 1 and incubated. This allows the biomolecular structure detection probe P1 to bind to the biomolecule 10a. The incubation temperature and incubation time can be appropriately selected depending on the type of specific binding substance 20a. For example, if the specific binding substance 20a is an antibody or antibody fragment, the incubation temperature may be 20 to 40°C (preferably 30 to 40°C). The incubation time may be approximately 30 to 120 minutes.

[0070] After processing with the biomolecular structure detection probe P1, the sample 1 may be washed with a washing buffer or the like. This removes any unbound biomolecular structure detection probe P1.

[0071] Before processing with the biomolecular structure detection probe P1, the sample 1 may be blocked with a blocking agent. Blocking can reduce the nonspecific binding of the biomolecular structure detection probe P1. Examples of blocking agents include, but are not limited to, bovine serum albumin, skim milk, casein, and gelatin.

[0072] Next, the signal of the labeling substance 30a of the biomolecular structure detection probe P1 is detected. By detecting the signal of the labeling substance 30a, the biomolecular structure to which the specific binding substance 20a binds can be indirectly detected. The method for detecting the signal of the labeling substance 30a can be appropriately selected depending on the type of labeling substance 30a. If the labeling substance 30a is a fluorescent dye, the signal of the labeling substance 30a can be detected by irradiating it with light of the excitation wavelength of the fluorescent dye and detecting the fluorescence using a fluorescence microscope.

[0073] <Process (B)> In step (B), the disulfide bond in the first biomolecular structure detection probe (biomolecular structure detection probe P1) is cleaved, and the first labeled substance (labeled substance 30a) is released (see Figure 1(B)).

[0074] The disulfide bonds in the biomolecular structure detection probe P1 can be cleaved using a disulfide bond cleavage reagent. Examples of cleavage reagents are those listed in the [Biomolecular Structure Detection Kit] above. The concentration of the cleavage reagent is not particularly limited and can be appropriately selected depending on the type of reagent. The concentration of the cleavage reagent should be sufficient to cleave the disulfide bonds in the biomolecular structure detection probe P1. When using a reducing agent (TCEP, 2-mercaptomethanol, or DTT, etc.) as the cleavage reagent, the concentration of the reducing agent can be, for example, 5 mM or higher, 10 mM or higher, 20 mM or higher, or 30 mM or higher. The upper limit of the reducing agent concentration is not particularly limited, but can be, for example, 100 mM or lower, 80 mM or lower, 70 mM or lower, 60 mM or lower, or 50 mM or lower. The treatment time with the reducing agent can be, for example, 10 minutes or higher, 15 minutes or higher, 20 minutes or higher, 25 minutes or higher, or 30 minutes or higher. There is no particular upper limit to the treatment time with the reducing agent, but from the viewpoint of not denaturing biomolecules, it can be, for example, 200 minutes or less, 150 minutes or less, or 120 minutes or less. If the reducing agent is TCEP, for example, the concentration can be 5 to 50 mM and the treatment time can be about 20 to 40 minutes. The treatment temperature can be 20 to 40°C.

[0075] By cleaving the disulfide bond in the biomolecular structure detection probe P1, the labeled substance 30a is detached from the biomolecular structure detection probe P1 and released. As a result, the signal of the labeled substance 30a in sample 1 disappears.

[0076] After treatment with the cutting reagent, the sample may be washed with a washing buffer or the like. This removes the free labeled substance 30a.

[0077] <Optional process> The method of this embodiment may include other steps in addition to steps (A) and (B) described above. Other steps include, for example, a step (C) (see Figure 1(C)) of detecting the second biomolecular structure in the sample using a second biomolecular structure detection probe in which a specific binding substance having specific binding affinity to the second biomolecular structure and a second labeling substance are linked via a linker containing a disulfide bond; and a step (D) (see Figure 1(D)) of cleaving the disulfide bond in the biomolecular structure detection probe P2 to release the second labeling substance.

[0078] (Process (C)) The method of this embodiment may further include step (C) after step (B). In Figure 1, the biomolecular structure detection probe P2 is the second biomolecular structure detection probe. In step (C), the sample 1 after step (B) is treated with the biomolecular structure detection probe P2. As a result, the biomolecular structure detection probe P2 binds to the biomolecule 10b via the specific binding substance 20b.

[0079] Step (C) can be carried out in the same manner as step (A), except that probe P2 for detecting biomolecular structure is used instead of probe P1 for detecting biomolecular structure.

[0080] After treating sample 1 with biomolecular structure detection probe P2, the signal of the labeled substance 30b of biomolecular structure detection probe P2 is detected. By detecting the signal of the labeled substance 30b, the biomolecular structure to which the specific binding substance 20b binds can be indirectly detected. The method for detecting the signal of the labeled substance 30b can be appropriately selected depending on the type of labeled substance 30b. If the labeled substance 30b is a fluorescent dye, the signal of the labeled substance 30b can be detected by irradiating it with light of the excitation wavelength of the fluorescent dye and detecting the fluorescence using a fluorescence microscope.

[0081] The labeling substance 30b may be the same as or different from the labeling substance 30a. In the method of this embodiment, the labeling substance 30a is eliminated in sample 1 by step (B). Therefore, even if the labeling substance 30b is the same as the labeling substance 30a, in step (C), only the labeling substance 30b bound to the biomolecule 10b can be detected.

[0082] (Process (D)) The method of this embodiment may further include step (D) after step (C). By performing step (D), the signal of the labeled substance 30b in sample 1 can be eliminated. Step (D) can be performed in the same manner as step (B).

[0083] (Repeated process) The method of this embodiment may further include step (E), in which steps (C) and (D) are repeated by changing the type of specific binding substance in the biomolecular structure detection probe. Preferably, a different specific binding substance is used for each cycle of steps (C) and (D). The labeling substance in the biomolecular structure detection probe may or may not be changed for each cycle. The number of repetitions of steps (C) and (D) is not particularly limited and can be any number. For example, the number of repetitions of steps (C) and (D) may be 1 or more, 2 or more, 3 or more, 5 or more, 10 or more, 20 or more, 30 or more, 40 or more, or 50 or more. The upper limit of the number of repetitions of steps (C) and (D) is not particularly limited, but may be 500 or less, 400 or less, 300 or less, 200 or less, or 100 or less. The number of repetitions of process (C) and process (D) can be, for example, 1 to 100 times, 1 to 90 times, 1 to 80 times, 1 to 70 times, 1 to 60 times, 1 to 50 times, 1 to 40 times, 1 to 30 times, 1 to 20 times, 1 to 10 times, or 1 to 5 times.

[0084] In the method of this embodiment, after detecting the first biomolecular structure using the first biomolecular structure detection probe, the disulfide bond in the first biomolecular structure detection probe is cleaved to release the labeling substance. Therefore, when detecting the second biomolecular structure using the second biomolecular structure detection probe, the labeling substance of the first biomolecular structure detection probe does not interfere. As a result, the biomolecular structure detection operation can be repeated using the same sample. In the method of this embodiment, since the same labeling substance can be used repeatedly, the number of times the detection operation can be repeated is not limited to the type of labeling substance.

[0085] In the method of this embodiment, since a disulfide bond is used for the cleavage structure of the labeling substance, the labeling substance is not cleaved by excitation light, even when a fluorescent dye is used as the labeling substance. In the method of this embodiment, the cleavage of the labeling substance can be performed under reducing conditions that do not denature biomolecules. Therefore, after identifying cells having a desired biomolecular structure using the method of this embodiment, RNA and the like can be extracted from these cells and suitably used for transcriptome analysis and the like.

[0086] <Variation> The method of this embodiment can also be performed using a primary probe. In this case, the biomolecular structure to which the biomolecular structure detection probe binds may be a biomolecular structure contained in the primary probe. For example, the first biomolecular structure to which the first biomolecular structure detection probe binds may be a biomolecular structure contained in the first primary probe. In this case, the first primary probe may specifically bind to a third biomolecular structure contained in the cells in the sample. The second biomolecular structure to which the second biomolecular structure detection probe binds may be a biomolecular structure contained in the second primary probe. In this case, the second primary probe may specifically bind to a fourth biomolecular structure contained in the cells in the sample.

[0087] Figure 2 schematically shows an example of a method using a primary probe. In Figure 2, the specific binding substance 20a is used as a first primary probe that binds to the biomolecular structure contained in the biomolecule 10a. 21a is a specific binding substance that has specific binding activity to the biomolecular structure of the specific binding substance 20a (first primary probe). The specific binding substance 21a and the labeling substance 30a are linked via a linker 40a containing a disulfide bond, forming the biomolecular structure detection probe P3. In this modified example, the biomolecular structure detection probe P3 is used as the first biomolecular structure detection probe. The specific binding substances 20a and 21a are, for example, antibodies or antibody fragments.

[0088] In Figure 2, the specific binding substance 20b is used as a second primary probe to bind to the biomolecular structure contained in the biomolecule 10b. 21b is a specific binding substance that has specific binding activity to the biomolecular structure of the specific binding substance 20b (second primary probe). The specific binding substance 21b and the labeling substance 30b are linked via a linker 40b containing a disulfide bond, forming the biomolecular structure detection probe P4. In this modified example, the biomolecular structure detection probe P4 is used as a second biomolecular structure detection probe. The specific binding substances 20b and 21b are, for example, antibodies or antibody fragments.

[0089] (Process (A'): See Figure 2(A')) The modified method includes step (A'). Step (A') includes treating a sample (sample 1) containing cells with a first primary probe (specific binding substance 20a) that has specific binding affinity to a third biomolecular structure (biomolecular structure contained in biomolecular 10a) to bind the first primary probe to the third biomolecular structure in the sample; binding a first biomolecular structure detection probe (biomolecular structure detection probe P3), in which a specific binding substance (specific binding substance 21a) that has specific binding affinity to the first biomolecular structure contained in the first primary probe and a first labeling substance (labeling substance 30a) are linked via a linker (linker 40a) containing a disulfide bond, to the first primary probe; and detecting the first biomolecular structure by detecting the signal of the first labeling substance.

[0090] In step (A') of this modified method, sample 1 is first treated with a specific binding substance 20a, which serves as the first primary probe. This causes the specific binding substance 20a to bind to the biomolecule 10a in sample 1.

[0091] Next, sample 1 is treated with the biomolecular structure detection probe P3. As a result, the biomolecular structure detection probe P3 binds to the specific binding substance 20a via the specific binding substance 21a. Consequently, a complex is formed consisting of the biomolecule 10a, the first primary probe (specific binding substance 20a), and the biomolecular structure detection probe P3.

[0092] The method for processing sample 1 with the specific binding substance 20a and the biomolecular structure detection probe P3 can be carried out in the same manner as the processing of sample 1 with the biomolecular structure detection probe P1 in step (A) above.

[0093] After treatment with the first primary probe (specific binding substance 20a), sample 1 may be washed with a washing buffer or the like. This removes any unbound specific binding substance 20a. Similarly, after treatment with the biomolecular structure detection probe P3, sample 1 may be washed with a washing buffer or the like. This removes any unbound biomolecular structure detection probe P3.

[0094] Before processing with the first primary probe (specific binding substance 20a), sample 1 may be blocked with a blocking agent. Blocking can reduce nonspecific binding of the specific binding substance 20a. Before processing with the biomolecular structure detection probe P3, sample 1 may be blocked with a blocking agent. Blocking can reduce nonspecific binding of the biomolecular structure detection probe P3. Examples of blocking agents include those described above.

[0095] Next, the signal of the labeling substance 30a of the biomolecular structure detection probe P3 is detected. By detecting the signal of the labeling substance 30a, the biomolecular structure of the biomolecule 10a bound via the specific binding substance 20a and the specific binding substance 21a can be indirectly detected. The method for detecting the signal of the labeling substance 30a can be carried out in the same manner as in step (A) above.

[0096] (Process (B'): See Figure 2(B')) In step (B'), the disulfide bond in the first biomolecular structure detection probe (biomolecular structure detection probe P3) is cleaved to release the first labeling substance (labeling substance 30a). Step (B') can be carried out in the same manner as step (B).

[0097] (Optional process) ≪Process (C'): See Figure 2(C')≫ The modified method may include step (C') in addition to steps (A') and (B') described above. Step (C') includes treating a sample containing cells (sample 1) with a second primary probe (specific binding substance 20b) that has specific binding affinity to a fourth biomolecular structure (biomolecular structure contained in biomolecular 10b) to bind the second primary probe to the second biomolecular structure in the sample; binding a second biomolecular structure detection probe (biomolecular structure detection probe P4), in which a specific binding substance (specific binding substance 21b) that has specific binding affinity to the second biomolecular structure contained in the second primary probe and a second labeling substance (labeling substance 30b) are linked via a linker (linker 40b) containing a disulfide bond, to the second primary probe; and detecting the second biomolecular structure by detecting the signal of the second labeling substance.

[0098] In step (C') of this modified version, sample 1 after step (B') is treated with a specific binding substance 20b as a second primary probe. This causes the specific binding substance 20b to bind to the biomolecule 10b in sample 1.

[0099] Next, sample 1 is treated with the biomolecular structure detection probe P4. As a result, the biomolecular structure detection probe P4 binds to the specific binding substance 20b via the specific binding substance 21b. Consequently, a complex is formed consisting of the biomolecule 10b, the second primary probe (specific binding substance 20b), and the biomolecular structure detection probe P4.

[0100] The method for treating sample 1 with specific binding substance 20b can be carried out in the same manner as in step (A') above, except that specific binding substance 20b is used instead of specific binding substance 20a. The method for treating sample 1 with biomolecular structure detection probe P4 can be carried out in the same manner as in step (A') above, except that biomolecular structure detection probe P4 is used instead of biomolecular structure detection probe P3.

[0101] Next, the signal of the labeling substance 30b of the biomolecular structure detection probe P4 is detected. By detecting the signal of the labeling substance 30b, the biomolecular structure of the biomolecule 10b bound via the specific binding substance 20b and the specific binding substance 21b can be indirectly detected. The method for detecting the signal of the labeling substance 30b can be carried out in the same manner as in step (A) above.

[0102] ≪Process (D'): See Figure 2 (D')≫ The modified method may include step (D') after step (C') described above. In step (D'), the disulfide bond in the second biomolecular structure detection probe (biomolecular structure detection probe P4) is cleaved to release the first labeled substance (labeled substance 30b). Step (D') can be carried out in the same manner as step (D) described above.

[0103] ≪Repeated Process≫ The method of this embodiment may further include step (E'), in which steps (C') and (D') are repeated by changing the type of primary probe and the type of specific binding substance in the biomolecular structure detection probe. Preferably, different primary probes and specific binding substances in the biomolecular structure detection probe are used for each cycle of steps (C') and (D'). The labeling substance in the biomolecular structure detection probe may or may not be changed for each cycle. The number of repetitions of steps (C') and (D') is not particularly limited and can be any number. For example, the number of repetitions of steps (C') and (D') may be 1 or more, 2 or more, 3 or more, 5 or more, 10 or more, 20 or more, 30 or more, 40 or more, or 50 or more. There is no particular upper limit to the number of repetitions of process (C') and process (D'), but for example, it may be 500 or less, 400 or less, 300 or less, 200 or less, or 100 or less. The number of repetitions of process (C') and process (D') can be, for example, 1 to 100 times, 1 to 90 times, 1 to 80 times, 1 to 70 times, 1 to 60 times, 1 to 50 times, 1 to 40 times, 1 to 30 times, 1 to 20 times, 1 to 10 times, or 1 to 5 times.

[0104] In this modified example, a biomolecular structure detection probe is bound to the biomolecular structure in the sample to be detected via a primary probe. Therefore, by using a primary probe that has specific binding affinity to any biomolecular structure, any biomolecular structure can be detected. For example, if the specific binding substance used in the primary probe contains a specific biomolecular structure, then the biomolecular structure detection probe should contain a specific binding substance for that specific biomolecular structure. For example, if a mouse antibody is used as the primary probe, the specific binding substance included in the biomolecular structure detection probe can be an antibody that binds to the constant region of the mouse antibody. Therefore, a biomolecular structure detection probe can be one that has been prepared in advance to match the type of primary probe. [Examples]

[0105] The present invention will be described below with reference to examples, but the present invention is not limited to the following examples.

[0106] [Example 1] <Preparation of the first biomolecular structure detection probe> (Linker fabrication) As the linker, linker (1) with the following structure was used.

[0107] [ka]

[0108] The linker used was the commercially available EZ-link Sulfo-NHS-SS-Biotin (Thermo Fisher).

[0109] (Binding between linker and specific binding substance) As the first specific binding agent, rat anti-mouse IgG (Jackson Immuno Research) was used. Binding of the linker to the first specific binding agent was performed according to the instructions provided with the linker.

[0110] (Bonding between linker and labeling substance) As labeling substances, FITC-labeled avidin (Avidin-FITC, Funakoshi) or Alexa 555-labeled avidin (Streptavidin, Alexa Fluor 555 conjugate, Thermo Fisher) were used. The linker and labeling substance were bonded by reacting in a 0.1 M aqueous sodium bicarbonate solution (pH 8.3) at room temperature for 30 minutes.

[0111] <Fabrication of a second probe for detecting biomolecular structures> The second biomolecular structure detection probe was prepared using the same method as the first biomolecular structure detection probe, except that goat anti-rabbit IgG (Jackson Immuno Research) was used as the specific binding substance.

[0112] <Immunostaining> Figure 3 schematically shows the immunostaining method of Example 1. Mouse anti-β-actin antibody (Anti-βActin, Abcam) was reacted with the sample as the primary antibody (first primary probe), followed by the reaction with the first biomolecular structure detection probe as the secondary antibody. The sample was then treated with 50 mM TCEP-HCl for 30 minutes. Next, rabbit anti-H2AZ antibody (Anti-H2AZ, Abcam) was reacted with the sample as the primary antibody (second primary probe), followed by the reaction with the second biomolecular structure detection probe as the secondary antibody. Specifically, the procedure was carried out as follows.

[0113] Cells cultured in a cell culture dish were fixed by adding 4% paraformaldehyde (Nacalai Tesque) and reacting for 15 minutes. The fixed cells were then permeabilized by adding 0.5% TritonX-100 and reacting for 5 minutes. Blocking was then performed by adding a blocking solution (Blocking One-P, Nacalai Tesque) and reacting for 10 minutes. Next, primary antibodies (Anti-βActin, Anti-H2AZ, etc.) were diluted to an appropriate concentration in 10% blocking solution and reacted with the cells at room temperature for 45 minutes. Afterward, the cells were washed with PBS three times for 5 minutes each, and then reacted with linker-labeled rat anti-mouse IgG antibody or goat anti-rabbit IgG antibody (diluted 500-fold in 10% blocking solution) at room temperature for 45 minutes. Following the reaction, the cells were washed with PBS three times for 5 minutes each, and then reacted with fluorescently labeled avidin diluted 1000-fold in 10% blocking solution at room temperature for 45 minutes. After the reaction, the cells were washed with PBS for 5 minutes three times and observed for fluorescence. After fluorescence observation, 50 mM TCEP was added to the cells and treated at room temperature for 30 minutes. After the reaction, the cells were washed with PBS for 5 minutes three times and observed for fluorescence again.

[0114] <Result> The results are shown in Figure 4. As shown in Figure 4, after reacting with a mouse anti-β-actin antibody as the primary antibody, β-actin could be detected based on the fluorescence of FITC by reacting with the first biomolecular structure detection probe (first row image). Subsequently, by treating with 50 mM TCEP for 30 minutes, FITC was released and the fluorescence of FITC disappeared (second row, far right image).

[0115] Furthermore, after reacting with rabbit anti-H2AZ antibody as the primary antibody, the second biomolecular structure detection probe was reacted, allowing H2AZ to be detected based on the fluorescence of FITC (third row image). Subsequently, treatment with 50 mM TCEP for 30 minutes released FICT and the fluorescence of FITC disappeared (fourth row, far right image).

[0116] The results above confirm that by using a biomolecular structure detection probe that links a specific binding substance and a labeling substance via a linker containing a disulfide bond, the labeling substance can be released at any desired timing. Furthermore, it was confirmed that immunohistochemical staining can be performed repeatedly.

[0117] [Example 2] As a probe for detecting biomolecular structure, the second biomolecular structure detection probe prepared in Example 1 was used. Rabbit anti-H2AZ antibody was used as the primary antibody and reacted with the sample in the same manner as above, and then the biomolecular structure detection probe was reacted as the secondary antibody (staining). Subsequently, the sample was treated with 0 mM, 1 mM, 5 mM, 20 mM, or 50 mM TCEP-HCl (TCEP). Furthermore, the sample after TCEP treatment was reacted with Alexa555-labeled goat anti-rabbit antibody (Goat anti-Rabbit IgG, Thermo Fisher) or avidin-labeled FITC (re-staining).

[0118] The results are shown in Figure 5. As shown in Figure 5, after reacting with rabbit anti-H2AZ antibody as the primary antibody, the biomolecular structure detection probe was reacted, and H2AZ could be detected based on the fluorescence of FITC (Figure 5, first panel). Next, by treating with 0-50 mM TCEP for 30 minutes, FICT was released in a TCEP concentration-dependent manner, and the fluorescence of FITC disappeared (Figure 5, second panel). Furthermore, when biotin-labeled FITC was reacted with the TCEP-treated sample, almost no fluorescence of FITC was detected. From this result, it was confirmed that the disulfide bond was cleaved by TCEP and avidin was released (Figure 5, third panel). Next, when Alexa555-labeled goat anti-rabbit antibody was reacted with the TCEP-treated sample, the fluorescence of Alexa555 could be detected (Figure 5, fourth panel). From this result, it was confirmed that the primary antibody remained bound to H2AZ in the sample.

[0119] [Example 3, Comparative Example 1] Figure 6 schematically shows the immunohistochemical staining methods for Example 3 and Comparative Example 1. In Example 3 and Comparative Example 1, Alexa555-labeled mouse anti-histone H3.1 antibody was used as the primary antibody, and Al2xa488-labeled goat anti-mouse antibody was used as the secondary antibody. The Alexa555-labeled antibody used as the primary antibody contains a disulfide bond or a 2-nitrobenzyl group at the linker site between the antibody and Alexa555.

[0120] <Example 3> The biomolecular structure detection probe was prepared using the same method as the first biomolecular structure detection probe described above, except that a mouse anti-histone H3.1 antibody (prepared at the Okawa Laboratory, Institute of Medical Science, Kyushu University) was used as the specific binding agent, and avidin-labeled Alexa 555 (Streptavidin, Alexa Fluor 555 conjugate, Thermo Fisher) was used as the labeling agent.

[0121] Immunostaining was performed using the same method as described above, except that the above-mentioned biomolecular structure detection probe was used as the primary antibody and Alexa488-labeled goat anti-mouse antibody (Goat anti-Mouse IgG Alexa Fluor 488, Thermo Fisher) was used as the secondary antibody. Hoechst staining was also performed, and imaging was carried out at a wavelength of 405 nm.

[0122] The results are shown in Figure 7. As shown in Figure 7, fluorescence of Alexa555 could be detected even 60 seconds after the start of irradiation with the excitation wavelength.

[0123] <Comparative Example 1> A mouse anti-histone H3.1 antibody (prepared at the Okawa Laboratory, Institute of Medical Science, Kyushu University) conjugated with Alexa555 via a photocleavage linker was used as the primary antibody. A photocleavage linker containing a 2-nitrobenzyl group as the photocleavage group was used (PC-Biotin-PEG4-NHS carbonate, Funakoshi).

[0124] Immunostaining was performed in the same manner as in Example 1, except that an Alexa555-labeled mouse anti-histone H3.1 antibody containing the above-mentioned photocleavage linker was used as the primary antibody. Hoechst staining was also performed, and imaging was carried out at a wavelength of 405 nm.

[0125] The results are shown in Figure 8. As shown in Figure 8, the fluorescence of Alexa555 faded from the start of irradiation with the excitation wavelength, and at 30 seconds and 60 seconds, it was difficult to detect the fluorescence of Alexa555. On the other hand, the fluorescence of Alexa488 was detected, confirming that the primary antibody remained. Therefore, it was considered that the fading of Alexa555 was due to the cleavage of the photocleavage group by excitation light irradiation, which released Alexa555.

[0126] Based on these results, it was confirmed that the method of releasing the labeled substance via disulfide bonds is superior to the method using photocleavage groups.

[0127] [Reference example 1] Immunostaining was performed using rabbit anti-H2AZ antibody (Anti-H2AZ, Abcam) as the primary antibody and Alexa 488-labeled goat anti-rabbit antibody as the secondary antibody, in the same manner as described above (Staining). Subsequently, the samples were treated with 0 mM, 5 mM, 20 mM, or 50 mM TCEP-HCl for 30 minutes (TCEP). Then, staining was performed again with Alexa 488-labeled goat anti-rabbit antibody (Restaining).

[0128] The results are shown in Figure 9. As shown in Figure 9, fluorescence of Alexa 488 derived from the reacted antibody was detected during TCEP treatment (Figure 9, second row image). Furthermore, when the sample after TCEP treatment was reacted with Alexa 488-labeled goat anti-rabbit antibody, fluorescence of Alexa 488 was detected, confirming that the primary antibody remained in the sample. Combining these results with those of Examples 1 and 2, it was concluded that the disulfide bond in the linker connecting the labeling substance and the specific binding substance was cleaved more efficiently by TCEP than the disulfide bond in the antibody.

[0129] [Example 4] <Preparation of probes for detecting biomolecular structures> The probes for detecting each biomolecular structure were prepared in the same manner as in Example 1, except that antibodies specific to each protein shown in Figure 10 were used as the specific binding substances.

[0130] <Continuous immunostaining> Cells cultured in a cell culture dish were fixed by adding 4% paraformaldehyde (Nacalai Tesque) and allowing it to react for 15 minutes. The fixed cells were then permeabilized by adding 0.5% TritonX-100 and allowing it to react for 5 minutes. Blocking was then performed by adding a blocking solution (Blocking One-P, Nacalai Tesque) and allowing it to react for 10 minutes. Next, the cells were reacted with linker-labeled anti-aTublin mouse IgG antibody (diluted 500-fold with 10% blocking solution) at room temperature for 30 minutes. After the reaction, the cells were washed with PBS three times for 5 minutes each, and fluorescence observation was performed. After fluorescence observation, the cells were treated with 50 mM TCEP at room temperature for 30 minutes.

[0131] Immunostaining and fluorescence observation were performed on the TCEP-treated samples in the same manner as above, except that a linker-labeled anti-CD68 mouse IgG antibody was used. Subsequently, TCEP treatment was performed in the same manner as above. The same treatment was repeated using mouse IgG antibodies that specifically bind to each protein shown in Figure 10.

[0132] <Result> The results are shown in Figure 10. By using biomolecular structure detection probes containing antibodies against each protein as specific binding agents, each protein could be detected by immunostaining. It was confirmed that TCEP treatment removes the labeling substances from the preceding immunostaining and does not affect subsequent immunostaining.

[0133] [Example 5] <Preparation of probes for detecting biomolecular structures> The probes for detecting each biomolecular structure were prepared in the same manner as in Example 1, except that antibodies specific to each protein shown in Figure 11 were used as the specific binding substances.

[0134] <Continuous immunostaining> Serial immunostaining was performed in the same manner as in Example 10, except that antibodies specific to each protein shown in Figure 11 were used.

[0135] <Quantification of serial immunohistochemical signals> Immunostained images for each protein obtained by serial immunohistochemistry were used to quantify the signal of each protein at the single-cell level using MATLAB® (MathWorks, Inc.). The results are shown as proteomic data in Figure 11. This demonstrates that proteomic analysis is possible at the single-cell level using serial immunohistochemistry.

[0136] <Cell grouping by proteome> The data shown in Figure 11 was subjected to dimensionality reduction (UMAP) and grouped into five groups based on similar cell types. The results are shown in Figure 12. This demonstrates that cell grouping based on proteomic analysis is possible through serial immunostaining.

[0137] <Distribution analysis of cell populations> The locations of cells present in the immunohistochemical images are shown as dots, and the locations of cells in the five groups described above are shown as dots of the corresponding color for each group. The results are shown in Figure 13.

[0138] Figure 14 shows the results of overlaying quantitative values ​​of specific protein expression onto the cell position information obtained in Figure 13. The results in Figure 14 indicate that cells with high expression of specific proteins are spatially biased.

[0139] These results demonstrate that proteomic analysis is possible by performing continuous staining using a biomolecular structure detection probe that contains a disulfide bond in the linker region. [Industrial applicability]

[0140] According to the present invention, a probe for detecting biomolecular structures, a kit for detecting biomolecular structures, and a method for detecting biomolecular structures are provided, which allow for repeated use of the same labeled substance without the need for photocleavable labels.

[0141] While preferred embodiments of the present invention have been described and illustrated above, it should be understood that these are illustrative and not limiting. Additions, omissions, substitutions, and other modifications can be made without departing from the spirit or scope of the invention. Therefore, the present invention is not limited by the foregoing description but is limited only by the scope of the appended claims. [Explanation of Symbols]

[0142] 1. Sample containing cells 10a, 10b Biomolecules 20a,20b,21a,21b Specific binding substance 30a,30b Labeled substance 40a, 40b Linker P1, P2, P3, P4 Probes for Biomolecular Structure Detection

Claims

1. A probe for detecting biomolecular structure, represented by the following formula (P1-1-1). 【Chemistry 1】 [In the formula, n1 and n2 each independently represent integers from 1 to 10; Avi represents avidin or its derivative; L represents a labeling substance; and A represents an antibody.]

2. The biomolecular structure detection probe according to claim 1, wherein the labeling substance is a fluorescent dye.

3. A probe for detecting biomolecular structure according to claim 1 or 2, Disulfide bond cleavage reagents, A kit for detecting biomolecular structures, including [specific components / materials].

4. A linker for linking an antibody having specific binding affinity to a biomolecular structure with a labeling substance, the linker for preparing a biomolecular structure detection probe represented by the following formula (P1-1-1), A labeling substance bonded to or capable of being bonded to the linker, Disulfide bond cleavage reagents, A kit for detecting biomolecular structures, including [specific components / materials]. 【Chemistry 2】 [In the formula, n1 and n2 each independently represent integers from 1 to 10; Avi represents avidin or its derivative; L represents a labeling substance; and A represents an antibody.]

5. The biomolecular structure detection kit according to claim 4, wherein the labeling substance is a fluorescent dye.

6. Step (A) of detecting a first biomolecular structure in a sample containing cells using a first biomolecular structure detection probe, in which an antibody having specific binding affinity to a first biomolecular structure and a first labeling substance are linked via a linker containing a disulfide bond, Step (B) involves cleaving the disulfide bond in the first biomolecular structure detection probe to release the first labeled substance, After the step (B), Step (C) of detecting the second biomolecular structure in the sample using a probe for detecting a second biomolecular structure, wherein an antibody having specific binding affinity to the second biomolecular structure and a second labeling substance are linked via a linker containing a disulfide bond, Includes, The first labeling substance and the second labeling substance are the same labeling substance, A method for detecting a biomolecular structure, wherein the first biomolecular structure detection probe and the second biomolecular structure detection probe are represented by the following formula (P1-1-1). 【Transformation 3】 [In the formula, n1 and n2 each independently represent integers from 1 to 10; Avi represents avidin or its derivative; L represents a labeling substance; and A represents an antibody.]

7. The first biomolecular structure is a biomolecular structure included in the first primary probe that specifically binds to the third biomolecular structure included in the cell. The method for detecting biomolecular structures according to claim 6.

8. The first biomolecular structure is a biomolecular structure included in the first primary probe that specifically binds to the third biomolecular structure included in the cell, The second biomolecular structure is a biomolecular structure included in the second primary probe that specifically binds to the fourth biomolecular structure included in the cell. A method for detecting biomolecular structures according to claim 6 or 7.

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