Method for analyzing neurogranin-related peptides

The MALDI-MS method with specific sample preparation and protein inclusion improves the sensitivity of neurogranin-related peptide detection in blood, addressing the sensitivity issues of previous methods and enabling effective analysis for Alzheimer's disease biomarker detection.

JP7736090B2Active Publication Date: 2025-09-09SHIMADZU SEISAKUSHO LTD
View PDF 9 Cites 0 Cited by

Patent Information

Application Number
JP2023573928
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-13
Filing Date
2022-12-16
Publication Date
2025-09-09
Estimated Expiration
2042-12-16

AI Technical Summary

Technical Problem

Existing methods for analyzing neurogranin-related peptides in blood suffer from insufficient analytical sensitivity, making them impractical for detecting these biomarkers in Alzheimer's disease progression.

Method used

A method utilizing matrix-assisted laser desorption/ionization mass spectrometry (MALDI-MS) with specific conditions for sample preparation and detection, including affinity purification and the use of a protein of 9 kDa or more in the laser irradiation target, enhances the sensitivity of neurogranin-related peptide detection.

Benefits of technology

The method achieves high sensitivity in detecting neurogranin-related peptides, allowing for accurate quantification and analysis in blood samples, overcoming the limitations of previous techniques.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007736090000003
    Figure 0007736090000003
  • Figure 0007736090000004
    Figure 0007736090000004
  • Figure 0007736090000005
    Figure 0007736090000005
Patent Text Reader

Abstract

A method for analyzing a neurogranin-related peptide through matrix-assisted laser desorption / ionization mass spectrometry, wherein: an object being irradiated with a laser contains the neurogranin-related peptide, a matrix, and 9 kDa or more of proteins; and the protein content per 1 µg of the matrix is 10-600 fmol inclusive.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a method for analyzing neurogranin-related peptides. [Background technology]

[0002] Alzheimer's disease is a major cause of dementia, and the number of patients has been increasing in recent years, making research into the disease increasingly important. Aβ-related peptides, such as amyloid-β (Aβ), which are generated by cleavage of amyloid precursor protein (APP), are deeply involved in the development of Alzheimer's disease. It has been reported that immunoprecipitation and mass spectrometry can be combined to detect multiple Aβ-related peptides in blood, and that the ratio of the detected specific Aβ-related peptides is a promising blood biomarker for amyloid accumulation in the brain (Non-Patent Documents 1-2, Patent Documents 1-3).

[0003] On the other hand, various biomarkers are required to monitor the progression of Alzheimer's disease, and in addition to aluminoid accumulation, biomarkers that reflect each process of tau accumulation and neurodegeneration are required. Among these, neurogranin is one of the biomarkers of neurodegeneration, and it has been reported that it increases in the cerebrospinal fluid (CSF) of Alzheimer's disease patients (Non-Patent Documents 3 and 4). It has also been reported that in the brains of Alzheimer's disease patients, the fragmentation of neurogranin is promoted, resulting in the generation of fragment peptides (Non-Patent Document 5). Therefore, mass spectrometry of neurogranin or its fragment peptides (neurogranin-related peptides) is expected to be a means of confirming neurodegeneration.

[0004] However, analyzing neurogranin-related peptides in cerebrospinal fluid requires collection of cerebrospinal fluid, which is undesirable from an invasive perspective. Therefore, a less invasive blood analysis, which can be collected by general testing, is desired.

[0005] However, since neurogranin-related peptides present in blood include very small amounts of peptides, they cannot be adequately detected by conventional mass spectrometry. For example, it has been reported that neurogranin and other peptides could be detected by a method combining immunoprecipitation and mass spectrometry (Non-Patent Document 6). [Prior art documents] [Patent documents]

[0006] [Patent Document 1] WO2015 / 178398 [Patent Document 2] WO2017 / 47529 [Patent Document 3] Japanese Patent Application Laid-Open No. 2017-20980 [Non-patent literature]

[0007] [Non-Patent Document 1] Kaneko N, Nakamura A, Washimi Y, Kato T, Sakurai T, Arahata Y, Bundo M, Takeda A, Niida S, Ito K, Toba K, Tanaka K, Yanagisawa K. : Novel biomarker plasma surrogating cerebral amyloid deposition. Proc Jpn Acad Ser B Phys Biol Sci. 2014;90(9):353-364. [Non-patent document 2] Nakamura A, Kaneko N, Villemagne VL, Kato T, Doecke J, Dore V, Fowler C, Li QX, Martins R, Rowe C, Tomita T, Matsuzaki K, Ishii K, Ishii K, Arahata Y, Iwamoto S, Ito K, Tanaka K, Masters CL, Yanagisawa K. : High performance plasma amyloid-β biomarkers for Alzheimer's disease. Nature. 2018;554(7691):249–254.

Outdoor Tools3

Outdoor Tools 4

Non-Patent Document 5

Non-Patent Document 6

Summary of the Invention

[0008] However, even when the analytical method of Non-Patent Document 6 is carried out, and even when the analytical method of Aβ-related peptides described in Non-Patent Document 2 is adapted for neurogranin-related peptides, the analytical sensitivity is insufficient and has not yet reached a level of practical application. Therefore, further improvement in sensitivity is required for analyzing neurogranin and the like in blood.

[0009] An object of the present invention is to detect neurogranin-related peptides with high sensitivity. [Means for solving the problem]

[0010] A first aspect of the present invention is a method for analyzing neurogranin-related peptides by matrix-assisted laser desorption / ionization mass spectrometry, in which the object to be laser irradiated contains the neurogranin-related peptide, a matrix, and a protein of 9 kDa or more, and the content of the protein per 1 μg of the matrix is ​​10 fmol or more and 600 fmol or less. [Effects of the Invention]

[0011] According to the first aspect of the present invention, neurogranin-related peptides can be analyzed with high sensitivity. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a graph of Example 1 showing the rate of change in MALDI-MS detection sensitivity when recombinant Ng was contained as a protein in the laser irradiation target. The vertical axis shows the signal-to-noise ratio (S / N) of the mass spectrum peak when the protein (recombinant Ng) was not contained, relative to the S / N of the peak when the protein was contained, and the horizontal axis shows the protein content per μg of matrix. [Figure 2]FIG. 2 is a graph of Example 2 showing the rate of change in detection sensitivity of MALDI-MS when cytochrome C is contained as a protein in the laser irradiation target. [Figure 3] FIG. 3 is a graph of Example 3 showing the rate of change in detection sensitivity of MALDI-MS when Bovine sewrum albumin was included as a protein in the laser irradiation target. [Figure 4] 4 is a graph of Example 4 showing the rate of change in detection sensitivity of Ng43-75 peptide when a protein-containing solution was dropped onto a MALDI plate. The vertical axis represents the signal-to-noise ratio (S / N) of the mass spectrum peak when no protein is contained relative to the S / N of the peak when protein is contained, and the horizontal axis represents the type of protein. [Figure 5] FIG. 5 is a graph of Example 4 showing the rate of change in detection sensitivity of Ng33-75 peptide when a protein-containing liquid was dropped onto a MALDI plate. DETAILED DESCRIPTION OF THE INVENTION

[0013] 1. First embodiment The analytical method according to the first embodiment is a method for analyzing neurogranin-related peptides in a sample, and comprises a purification step and a detection step in that order. Each step will be described in detail below.

[0014] The term "neurogranin-related peptides" (hereinafter abbreviated as "Ng-related peptides") includes neurogranin, translated and modified neurogranin, and fragment peptides thereof. Examples of fragment peptides include Ng43-75 (SEQ ID NO: 1), Ng33-75 (SEQ ID NO: 2), and Ng50-78 (SEQ ID NO: 3). The mass (molecular weight) of Ng-related peptides is generally less than 9 kDa, preferably 8 kDa or less, and for example, 1 kDa or more, preferably 2 kDa or more. In the first embodiment, Ng-related peptides of less than 9 kDa can be suitably measured. This mass can be measured, for example, by a MALDI-TOF (matrix-assisted laser desorption / ionization-time of flight) mass spectrometer.

[0015] 1-1. Purification process The purification process is, for example, affinity purification, and specifically includes, in this order, a first binding process (an example of a binding process), a first washing process (an example of a washing process), a first elution process, a neutralization process, a second binding process, a second washing process, and a second elution process (an example of an elution process).

[0016] (1st bonding process) In the first binding step, the sample is contacted with the first carrier in a binding solution. For example, the binding solution, the sample, and the first carrier are mixed in an appropriate order. This allows the Ng-related peptide in the sample to bind to the first carrier, thereby obtaining a first conjugate.

[0017] The sample is a sample containing a neurogranin-related peptide, and is generally a biological sample. Examples of biological samples include body fluids such as blood, cerebrospinal fluid, urine, bodily secretions, saliva, and sputum; and feces. Examples of blood include whole blood, plasma, and serum. The blood may be whole blood collected from an individual and then subjected to processing such as centrifugation and freezing. In the present analysis method, blood is preferably used. Blood is less invasive than cerebrospinal fluid, and is a target sample for screening in health checkups and the like, and is easily available.

[0018] The binding solution is preferably a neutral buffer solution containing a surfactant. Examples of the buffer solution include Tris buffer, phosphate buffer, HEPES buffer, and ammonium acetate buffer. The pH of the binding solution is, for example, 6.0 or higher, preferably 6.5 or higher, and, for example, 8.5 or lower, preferably 8.0 or lower.

[0019] The surfactant contained in the binding solution may be, for example, a neutral surfactant having a hydrophobic group with 7 to 15 carbon atoms (preferably 9 to 11 carbon atoms). This can suppress nonspecific adsorption to the first binder and reduce ionization interference in mass spectrometry. Examples of such surfactants include surfactants having maltose in the hydrophilic moiety, such as n-nonyl-β-D-maltoside, n-nonyl-β-D-thiomaltoside, n-decyl-β-D-maltoside, and n-undecyl-β-D-maltoside (UDM); surfactants having trehalose in the hydrophilic moiety, such as α-D-glucopyranosyl α-D-glucopyranoside monodecanoate (trehalose C10); and surfactants having glucose in the hydrophilic moiety, such as n-decyl-β-D-glucoside. These surfactants can be used alone or in combination of two or more.

[0020] The surfactant concentration in the binding solution is, for example, 0.01% (w / v) or more, preferably 0.05% (w / v) or more, and, for example, 10% (w / v) or less, preferably 3% (w / v) or less. If the surfactant concentration is within the above range, micelles are sufficiently formed, and the surfactant effect can be reliably exerted.

[0021] The first support may be any support to which an Ng-related peptide can bind, and examples thereof include antibody-immobilized supports.

[0022] The antibody immobilized on the first carrier is an antibody having an antigen-binding site capable of recognizing an Ng-related peptide (anti-Ng-related peptide antibody), and examples thereof include immunoglobulins or fragments thereof having an antigen-binding site capable of recognizing an Ng-related peptide.

[0023] Examples of immunoglobulins include IgG (IgG1, IgG2, IgG3, IgG4), IgM, IgA, IgY, IgD, and IgE. Examples of immunoglobulin fragments include F(ab')2, F(ab'), F(ab), Fd, Fv, L chains, and H chains. More specific examples include clones NG2, NG7, and EPR21152, and fragments thereof. Antibodies may be either monoclonal or polyclonal.

[0024] Examples of materials for the first support include agarose, sepharose, dextran, silica gel, polyacrylamide, polystyrene, polyethylene, polypropylene, polyester, polyacrylonitrile, (meth)acrylic acid polymers, fluororesin, metal complex resin, glass, metal, and magnetic materials.

[0025] The shape of the first support may be any shape such as a sphere (including a bead shape), a plate, a needle, or an irregular shape, and may also be the wall of a flow channel in a microdevice.

[0026] Before the first binding step, a pretreatment for removing antibodies such as IgG and IgM may be carried out, if necessary.

[0027] (First cleaning process) In the first washing step, after the first binding step, the first bound body is washed with a first washing solution.

[0028] The first washing solution is preferably a neutral buffer solution containing a surfactant, which can effectively remove highly hydrophobic unwanted components (blood proteins, lipids, glycolipids, etc.). The neutral buffer solution and surfactant used in the first washing solution can be the same as those exemplified for the binding solution.

[0029] The surfactant concentration in the first washing solution is, for example, 0.01% (w / v) or more, preferably 0.02% (w / v) or more, and, for example, 5% (w / v) or less, preferably 2% (w / v) or less. If the surfactant concentration is within the above range, micelles are sufficiently formed, and the surfactant effect can be reliably exerted.

[0030] Any known washing method may be used, and preferably, washing is performed multiple times, for example, by washing with a neutral buffer containing a surfactant, followed by washing with a neutral buffer containing no surfactant.

[0031] The neutral buffer solution containing no surfactant may be the same as the neutral buffer solution exemplified as the binding solution, which can suppress foaming caused by the surfactant remaining in the first conjugate.

[0032] As the washing method, a general method may be adopted, for example, a method of stirring the carrier in a washing solution, a method of spraying the washing solution from a washing nozzle, etc. After washing with these neutral buffer solutions, washing with water may be further carried out as necessary.

[0033] (1st elution step) In the first elution step, after the first washing step, the first binder is contacted with a first acidic solution, whereby the Ng-related peptide is dissociated from the first binder and eluted into the first acidic solution, resulting in a first eluate containing the Ng-related peptide.

[0034] The first acidic solution may be, for example, an acidic aqueous solution such as a glycine buffer solution or hydrochloric acid, preferably a glycine buffer solution. The pH of the first acidic solution is, for example, 3.5 or less, preferably 3.0 or less, and, for example, 0.5 or more, preferably 1.0 or more.

[0035] The first acidic solution preferably contains a surfactant. This allows for more reliable dissociation of Ng-related peptides from the first binder. It also prevents the eluted Ng-related peptides from adhering to containers such as test tubes and microplates. This ensures an improved recovery rate of Ng-related peptides, improving detection sensitivity. Examples of surfactants used in the first acidic solution include those exemplified for the binding solution. The surfactant concentration in the first acidic solution is the same as that in the first washing solution.

[0036] (Neutralization process) In the neutralization step, after the first elution step, the first eluate is mixed with a neutral buffer, thereby neutralizing the first eluate and obtaining a purified solution containing Ng-related peptides.

[0037] The neutral buffer solution used in the neutralization step preferably contains a surfactant. This can suppress nonspecific adsorption to the second binder in the second binding step. Examples of the neutral buffer solution and surfactant used in the neutralization step include the same neutral buffer solution and surfactant as those exemplified for the binding solution. The surfactant concentration in the neutral buffer solution is the same as that in the first binding solution.

[0038] The pH of the resulting purified solution is neutral, for example, pH 6.0 or higher, preferably 6.5 or higher, and for example, pH 8.5 or lower, preferably 8.0 or lower, which can improve the binding efficiency in the second binding step.

[0039] (Second bonding process) In the second binding step, after the neutralization step, the purified solution is contacted with a second carrier, whereby the Ng-related peptide in the purified solution binds to the second carrier to obtain a second conjugate.

[0040] The second support is preferably an antibody-immobilized support, and specific examples thereof include the same antibody-immobilized supports as those exemplified as the first support.

[0041] (Second cleaning process) In the second washing step, after the second binding step, the second bound body is washed with a second washing solution.

[0042] The second washing solution is preferably a neutral buffer solution containing a surfactant. This allows for effective removal of, for example, highly hydrophobic unwanted components (blood proteins, lipids, glycolipids, etc.). Examples of the neutral buffer solution and surfactant used in the second washing solution include the same neutral buffer solution and surfactant as those exemplified for the binding solution. The surfactant concentration in the second washing solution is the same as that in the first washing solution.

[0043] Any known method may be used for the washing, and specifically, the same method as the washing method exemplified in the first washing step may be carried out.

[0044] (Second elution step) In the second elution step, after the second washing step, the second bound body is contacted with a second acidic solution (elution solution). This dissociates the Ng-related peptide from the second bound body and elutes the Ng-related peptide into the second acidic solution. As a result, a second eluate containing the Ng-related peptide is obtained.

[0045] Examples of the acidic aqueous solution constituting the second acidic solution include the same as the first acidic solution exemplified in the first elution step, and preferably hydrochloric acid.

[0046] The second acidic solution contains a protein. The mass of the protein is 9 kDa or more, for example, 100 kDa or less, preferably 15 kDa or less, and more preferably 11 kDa or less. By incorporating a protein of the above mass into the second acidic solution, the protein is included in the target of laser irradiation, thereby improving the detection sensitivity of Ng-related peptides. Furthermore, by setting the lower limit of the protein mass to 9 kDa, overlap with the mass range of the Ng-related peptides to be analyzed can be avoided, allowing accurate detection of only the Ng-related peptides. By setting the upper limit of the protein mass to 100 kDa, preferably 15 kDa, and particularly 11 kDa, the detection sensitivity can be significantly improved.

[0047] The protein is not limited as long as it has a mass of 9 kDa or more, and specific examples include recombinant neurogranin, cytochrome, bovine serum albumin (BSA), ovalbumin, lysozyme, and the like.

[0048] The protein concentration in the second acidic solution, and therefore the protein concentration in the second eluate (an example of an eluate), is, for example, 10 nM or more, preferably 20 nM or more, more preferably 30 nM or more, and for example, 600 nM or less, preferably 300 nM or less, more preferably 150 nM or less. In other words, the concentration is, for example, 0.1 μg / mL or more, preferably 0.25 μg / mL or more, and for example, 30 μg / mL or less, preferably 4.00 μg / mL or less. By setting the protein concentration within the above range, detection sensitivity can be appropriately improved.

[0049] The second acidic solution preferably contains a volatile organic solvent, which allows the Ng-related peptide to be efficiently dissociated from the second binder and eluted into the second acidic solution, thereby improving the recovery rate of the Ng-related peptide.

[0050] Examples of volatile organic solvents include organic solvents that are miscible with water in any ratio, such as acetonitrile, methanol, ethanol, acetone, toluene, isopropanol, hexane, butanol, cyclohexane, ethylene glycol, benzene, chloroform, acetaldehyde, triethylamine, phenol, naphthalene, formaldehyde, tetrahydrofuran, ethyl acetate, etc., and preferably acetonitrile, methanol, ethanol, acetone, isopropanol, etc. These organic solvents can be used alone or in combination of two or more.

[0051] The concentration of the volatile organic solvent in the second acidic solution is, for example, 10% (v / v) or more, preferably 25% (v / v) or more, and, for example, 90% (v / v) or less, preferably 80% (v / v) or less. When the concentration is within the above range, Ng-related peptides can be efficiently dissociated from the second carrier, and the sensitivity (S / N ratio) during mass spectrometry can be improved.

[0052] The second acidic solution preferably further contains an amino acid such as methionine. This reduces oxidation of Ng-related peptides during the time between placement in a mass spectrometer and the start of analysis, thereby improving analytical sensitivity. The amino acid concentration in the second acidic solution is, for example, 0.01 mM or more, preferably 0.05 mM or more, and, for example, 5 mM or less, preferably 1 mM or less.

[0053] 1-2.Detection process In the detection step, after the purification step, the second eluate is subjected to MALDI-MS (Matrix Assisted Laser Desorption / Ionization-Mass spectrometry) to detect Ng-related peptides. That is, the Ng-related peptides contained in the second eluate or its dried product are ionized by MALDI, and the ionized peptides are detected by mass spectrometry.

[0054] In MALDI-MS, for example, a MALDI-TOF (matrix-assisted laser desorption ionization-time of flight) mass spectrometer, a MALDI-IT (matrix-assisted laser desorption ionization-ion trap) mass spectrometer, a MALDI-IT-TOF (matrix-assisted laser desorption ionization-ion trap-time of flight) mass spectrometer, or a MALDI-FTICR (matrix-assisted laser desorption ionization-Fourier transform ion cyclotron resonance) mass spectrometer may be used and operated according to a conventional method.

[0055] In the detection operation of MALDI-MS, first, a laser irradiation target is placed on a MALDI plate. Specifically, for example, a matrix-containing solution is dropped onto the MALDI plate and dried (crystallized) to place the matrix, and then the second eluate is dropped onto the matrix and dried. This results in a laser irradiation target in which the matrix, Ng-related peptides, and proteins of 9 kD or more exist in a dry (solid) state. Note that, if necessary, the laser irradiation target may be obtained in a liquid state in which the solid components are concentrated without being completely dried.

[0056] Next, the target is irradiated with a laser, thereby ionizing the Ng-related peptides, and the ionized peptides are detected by the mass spectrometer. The detection results are analyzed by the mass spectrometer, allowing the Ng-related peptides to be quantified.

[0057] Examples of matrices include α-cyano-4-hydroxycinnamic acid (CHCA), 2,5-dihydroxybenzoic acid, sinapic acid, 3-aminoquinoline, etc. These matrices can be used alone or in combination of two or more.

[0058] Examples of the solvent to contain the matrix include acetonitrile, trifluoroacetic acid, methanol, ethanol, water, etc. These solvents can be used alone or in combination of two or more.

[0059] The matrix concentration in the matrix-containing solution is, for example, 0.1 mg / mL or more, preferably 0.5 mg / mL or more, and for example, 50 mg / mL or less, preferably 10 mg / mL or less.

[0060] The amount of matrix placed on the MALDI plate per well is, for example, 0.1 μg or more, preferably 0.5 μg or more, and for example, 50 μg or less, preferably 10 μg or less.

[0061] Preferably, a matrix additive is used in combination with the matrix. Examples of the matrix additive include a phosphonic acid group-containing compound and an ammonium salt. Preferably, a phosphonic acid group-containing compound is used from the viewpoint of suppressing adverse effects on background due to residual cleaning solution. Examples of the phosphonic acid group-containing compound include phosphonic acid, methylphosphonic acid, phenylphosphonic acid, 1-naphthylmethylphosphonic acid, methylenediphosphonic acid (MDPNA), ethylenediphosphonic acid, ethane-1-hydroxy-1,1-diphosphonic acid, nitrilotriphosphonic acid, and ethylenediaminotetraphosphonic acid.

[0062] The concentration of the matrix additive in the matrix-containing solution is, for example, 0.01% (w / v) or more, preferably 0.1% (w / v) or more, and for example, 10% (w / v) or less, preferably 1% (w / v) or less.

[0063] In the laser irradiation target, the content of 9 kDa or more protein per 1 μg of matrix is ​​10 fmol or more and 600 fmol or less. Preferably, it is 20 fmol or more, more preferably 30 fmol or more, and also preferably 300 fmol or less, more preferably 150 fmol or less. If the protein content is below the above lower limit, the effect of the protein blending may not be achieved, and the detection sensitivity may not be improved. On the other hand, if the protein content is above the above upper limit, the detection sensitivity may be reduced compared to when no protein is contained.

[0064] This allows the measurement of Ng-related peptides contained in the second eluate (and thus the sample). In this analytical method, Ng-related peptides can be detected with extremely high sensitivity (S / N ratio), particularly because the laser irradiation target contains proteins of 9 kDa or more and the protein content per μg of matrix is ​​10 fmol to 600 fmol. This is because, in MADLI-MS, the sample typically receives protons from the laser-excited matrix, resulting in singly ionized ions, and the peaks of these singly ionized ions are detected. However, due to their structure, Ng-related peptides also undergo doubly ionized ions, resulting in a relative decrease in the intensity of the singly ionized ions. In contrast, in the first embodiment, it is presumed that the coexistence of proteins of 9 kDa or more in the matrix increases the number of proton acceptors, dispersing protons and resulting in a decrease in the doubly ionized ions. The first embodiment is not limited to the above mechanism.

[0065] 2. Second embodiment In the first embodiment, a protein of 9 kDa or more is added to the second acidic solution in the purification process, whereas in the second embodiment, in the detection process, the second eluate is mixed with a liquid (protein-containing liquid) containing a protein of 9 kDa or more on a plate onto which the laser is irradiated, thereby causing the target to contain a protein of 9 kDa or more.

[0066] The analytical method of the second embodiment includes, in order, a purification step and a detection step. The purification step is, for example, affinity purification, and includes, in this order, a first binding step, a first washing step, a first elution step, a neutralization step, a second binding step, a second washing step, and a second elution step. The first binding step, the first washing step, the first elution step, the neutralization step, the second binding step, and the second washing step are the same as those steps in the first embodiment. The second elution step of the second embodiment is the same as the second elution step of the first embodiment, except that the second acidic solution, and therefore the second eluate, does not contain proteins of 9 kDa or more.

[0067] In the detection step, a laser irradiation target is placed on a MALDI plate. At this time, a protein-containing solution is dropped in addition to the matrix-containing solution and the second eluate. Specifically, the matrix-containing solution is dropped onto the MALDI plate and dried, and then the second eluate and the protein-containing solution are dropped onto it and dried. This results in a laser irradiation target containing the matrix, Ng-related peptides, and proteins of 9 kD or more in a dry state. Thereafter, as in the first embodiment, the laser irradiation target is irradiated with a laser, and the ionized peptides are detected by a mass spectrometer. Note that the order in which the matrix, Ng-related peptides, and proteins of 9 kD or more are dropped does not matter, as long as the matrix, Ng-related peptides, and proteins of 9 kD or more are contained in a dry state.

[0068] The protein-containing solution contains a protein of 9 kDa or more and a solvent. Examples of the solvent include, but are not limited to, the same solvent as the solvent used to contain the matrix, preferably the solvent used in the second acidic solution. The protein concentration in the protein-containing solution and the amount of the solution added can be adjusted so that the protein concentration per 1 μg of matrix is ​​10 fmol or more and 600 fmol or less (preferably 20 fmol or more, more preferably 30 fmol or more, and preferably 300 fmol or less and 150 fmol or less). Specifically, the protein concentration can be, for example, 10 nM or more, preferably 50 nM or more, or, for example, 1000 nM or less, preferably 600 nM or less. The amount of solution added can be, for example, 0.1 μL or more, preferably 0.2 μL or more, or, for example, 10 μL or less, preferably 5 μL or less.

[0069] The second embodiment also has the same effects as the first embodiment. The first embodiment is preferable from the viewpoint that the number of steps for accurate dropping onto the MALDI plate does not increase and the target for irradiating the liquid with the liquid is easily mixed uniformly.

[0070] 3. Third and Fourth Embodiments In the analytical methods of the first and second embodiments, immunoprecipitation is carried out multiple times (twice) as a purification step, but for example, immunoprecipitation may be carried out only once.

[0071] Specifically, the analytical method of the third embodiment includes a first binding step (binding step), a first washing step (washing step), a second elution step (elution step), and a detection step, and in the second elution step, the second acidic solution (elution solution) contains a protein of 9 kDa or more.

[0072] The analytical method of the fourth embodiment comprises a first binding step (binding step), a first washing step (washing step), a second elution step (elution step), and a detection step, in which the second elution liquid and the protein-containing liquid are mixed on the plate.

[0073] The third and fourth embodiments also have the same effects as the first embodiment. The first and second embodiments are preferred from the viewpoint of being able to reliably analyze Ng-related peptides even when the amount of Ng-related peptides present in a sample is much smaller.

[0074] 4. Aspects It will be appreciated by those skilled in the art that the exemplary embodiments described above are examples of the following aspects.

[0075] (Item 1) An analytical method according to one embodiment is a method for analyzing a neurogranin-related peptide by matrix-assisted laser desorption / ionization mass spectrometry, in which the object to be irradiated with laser contains the neurogranin-related peptide, a matrix, and a protein of 9 kDa or more, and the content of the protein per 1 μg of the matrix may be 10 fmol or more and 600 fmol or less.

[0076] (Item 2) In the analytical method according to item 1, the content of the protein per 1 μg of the matrix may be 30 fmol or more and 150 fmol or less.

[0077] (Item 3) In the analytical method according to item 1 or 2, the mass of the protein may be 9 kDa or more and 15 kDa or less.

[0078] (Item 4) The analytical method described in any one of Items 1 to 3 includes, in order, a binding step in which a sample containing a neurogranin-related peptide is contacted with a carrier in a binding solution to obtain a conjugate in which the neurogranin-related peptide is bound to the carrier; a washing step in which the conjugate is washed with a washing solution; an elution step in which the conjugate is contacted with an acidic solution to obtain an eluate in which the neurogranin-related peptide is eluted into the acidic solution; and a detection step in which matrix-assisted laser desorption / ionization mass spectrometry is performed on the eluate to detect the neurogranin-related peptide, and the acidic solution may contain the protein.

[0079] (Item 5) In the analytical method according to item 4, the concentration of the protein in the eluate may be 10 nM or more and 600 nM or less.

[0080] (Item 6) The analytical method described in any one of Items 1 to 3 includes, in order, a binding step in which a sample containing a neurogranin-related peptide is contacted with a carrier in a binding solution to obtain a conjugate in which the neurogranin-related peptide is bound to the carrier; a washing step in which the conjugate is washed with a washing solution; an elution step in which the conjugate is contacted with an acidic solution to obtain an eluate in which the neurogranin-related peptide is eluted into the acidic solution; and a detection step in which matrix-assisted laser desorption / ionization mass spectrometry is performed on the eluate to detect the neurogranin-related peptide, and in the detection step, the eluate and a liquid containing the protein may be mixed on a plate that is irradiated with a laser.

[0081] (Item 7) In the analytical method according to item 6, the concentration of the protein in the protein-containing liquid may be 10 nM or more and 600 nM or less. [Example]

[0082] The present invention will now be described in detail with reference to examples, but the scope of the present invention is not limited to these examples.

[0083] Example 1 (First binding step, first washing step, first elution step) We prepared the NG2 clone (BioLegend), an anti-Ng antibody (IgG1) whose epitope is residues 52-63 of human neurogranin (Ng). 100 μg of anti-Ng antibody was reacted with 5.5 mg of magnetic beads (Dynabeads M-270 Epoxy) in immobilization buffer (0.1 M phosphate buffer containing 1.5 M ammonium sulfate; pH 7.4) at 37°C for 16 to 24 hours to produce antibody beads.

[0084] A 250 μL sample containing two Ng peptides (40 pM each) listed in Table 1 below was prepared. This sample was mixed with 250 μL of binding buffer (0.1% n-undecyl-β-D-maltoside (UDM), 800 mM GlcNAc, 100 mM Tris-HCl, 300 mM NaCl; pH 7.4) containing 20 pM stable isotope-labeled Ng50-78 (SIL-Ng50-78) and allowed to stand on ice for 5–60 minutes. The mixed sample was then mixed with the antibody beads and shaken on ice for 1 hour. The antibody beads were then washed three times with 100 μL of first wash buffer (0.05% UDM, 50 mM Tris-HCl, 150 mM NaCl; pH 7.4) and twice with 50 μL of 50 mM ammonium acetate buffer. The antibody beads were then contacted with a first acidic solution (0.05% UDM, 50 mM glycine buffer; pH 2.8) to elute the Ng-related peptides into the first acidic solution, thereby obtaining a first eluate containing the Ng-related peptides.

[0085] [Table 1]

[0086] (Neutralization process) The first eluate was mixed with a neutral buffer (0.1% UDM, 800 mM GlcNAc, 300 mM Tris-HCl, 300 mM NaCl; pH 7.4) to obtain a purified solution.

[0087] (Second binding step, second washing step, second elution step) The purified solution was mixed with the antibody beads and shaken on ice for 1 hour. The antibody beads were then washed five times with 50 μL of second wash buffer (0.05% UDM, 50 mM Tris-HCl, 150 mM NaCl; pH 7.4), twice with 50 μL of 50 mM ammonium acetate buffer, and once with 30 μL of water. The antibody beads were then contacted with 5 μL of a second acidic solution (70% (v / v) aqueous acetonitrile containing the amount of recombinant Ng shown in Table 2, 5 mM hydrochloric acid, and 0.1 mM methionine) to elute the Ng-related peptides into the second acidic solution. This yielded a second eluate containing Ng-related peptides.

[0088] (Detection process) The mass spectrometer used was an AXIMA Performance (Shimadzu / KRATOS, Manchester, UK) MALDI-TOF MS system. A 2 mg / mL CHCA / 0.2% (w / v) MDPNA matrix solution was prepared using α-cyano-4-hydroxycinnamic acid (CHCA) as the matrix for linear TOF and methylenediphosphonic acid (MDPNA) as the matrix additive in acetonitrile. 0.5 μL of the matrix solution (i.e., 1 μg of matrix per well) was added to four wells of a MALDI plate (μFocus MALDI plate 900 μm (Hudson Surface Technology, Inc., Fort Lee, NJ)) and allowed to dry. After drying, 1 μL of the second eluate was added to each well and allowed to dry.

[0089] Next, MALDI-TOF MS was run to detect Ng-related peptides (Ng43-75 and Ng33-75). Mass spectral data were acquired using Linear TOF in positive ion mode. 400 spots per well were accumulated for 16,000 shots. The m / z values ​​of Linear TOF were expressed as the average mass of the peaks. The m / z values ​​were calibrated using external standards: human angiotensin II, human ACTH fragment 18-39, bovine insulin oxidized beta-chain, bovine insulin, and cytochrome c.

[0090] The measurement was performed by setting the concentration of the protein (recombinant Ng) contained in the second acidic solution, and therefore the second eluate, to the various concentrations (0 to 1600 nM) shown in Table 2. The signal-to-noise ratio (S / N) of the peak when no protein was contained (concentration 0 nM) was calculated relative to the S / N of the peak when the amount of protein shown in Table 1 was contained (concentration 25 to 1600 nM), and these graphs are shown in Figure 1.

[0091] [Table 2]

[0092] <Examples 2 and 3> The analysis method was carried out in the same manner as in Example 1, except that the type and concentration of protein contained in the second acidic solution were changed to those shown in Table 2. The results are shown in Figures 2 and 3. Figures 1 to 3 show that the detection sensitivity is improved when the protein content per μg of matrix is ​​10 to 600 fmol.

[0093] Among the proteins used, the mass of recombinant Ng (rNg; Abcam) was 9925.92 Da, the mass of Cytochrome C (CytC; Sigma) was 12360.52 Da, and the mass of Bovine sewrum albumin (BSA; Nacalai Tesque) was 66296 Da.

[0094] Example 4 The same procedures as in Examples 1 to 3 were carried out. However, instead of 5 μL of the second acidic solution containing the proteins (rNg, CytC, BSA), 2.5 μL of the second acidic solution containing no protein was used. Furthermore, 0.5 μL of the matrix solution was dropped into each well of the MALDI plate and dried, after which 0.5 μL of the second elution solution and 0.5 μL of the protein-containing solution (protein concentration 100 nM, solvent: 70% (v / v) acetonitrile aqueous solution containing 5 mM hydrochloric acid and 0.1 mM methionine) were dropped and dried. The amount of protein incorporated per μg of matrix was 50 fmol. For the Ng43-75 peptide, the signal-to-noise ratio (S / N) of the peak when no protein was added (no added protein) was compared with the S / N of the peak when the protein was added for each protein (rNg, CytC, BSA) was added. Figure 4 shows the S / N ratio of the peak when the protein was added. For the Ng33-75 peptide, the signal-to-noise ratio (S / N) of the peak when no protein was added (no added protein) is shown in Figure 5 for each protein (rNg, CytC, BSA).

Claims

1. 1. A method for analyzing neurogranin-related peptides by matrix-assisted laser desorption / ionization mass spectrometry, comprising: the target of laser irradiation contains the neurogranin-related peptide, a matrix, and a protein of 9 kDa or more; the content of the protein per 1 μg of the matrix is ​​10 fmol or more and 600 fmol or less; A method for analyzing neurogranin-related peptides, in which the generation of doubly charged ions of the neurogranin-related peptides in matrix-assisted laser desorption ionization is reduced by including the protein.

2. The analytical method according to claim 1 , wherein the content of the protein per 1 μg of the matrix is ​​30 fmol or more and 150 fmol or less.

3. The analytical method according to claim 1 , wherein the mass of the protein is 9 kDa or more and 15 kDa or less.

4. The mass of the protein is 9 kDa or more and 11 kDa or less, The analytical method according to claim 1 , wherein the content of the protein per 1 μg of the matrix is ​​30 fmol or more and 150 fmol or less.

5. a binding step of contacting a sample containing a neurogranin-related peptide with a carrier in a binding solution to obtain a conjugate in which the neurogranin-related peptide is bound to the carrier; a washing step of washing the conjugate with a washing solution; an elution step of contacting the conjugate with an acidic solution to obtain an eluate in which the neurogranin-related peptide is eluted in the acidic solution; a detection step of subjecting the eluate to matrix-assisted laser desorption / ionization mass spectrometry to detect the neurogranin-related peptide; In order, The analytical method according to claim 1 , wherein the acidic solution contains the protein.

6. The analytical method according to claim 5 , wherein the concentration of the protein in the eluate is 10 nM or more and 600 nM or less.

7. a binding step of contacting a sample containing a neurogranin-related peptide with a carrier in a binding solution to obtain a conjugate in which the neurogranin-related peptide is bound to the carrier; a washing step of washing the conjugate with a washing solution; an elution step of contacting the conjugate with an acidic solution to obtain an eluate in which the neurogranin-related peptide is eluted in the acidic solution; a detection step of subjecting the eluate to matrix-assisted laser desorption / ionization mass spectrometry to detect the neurogranin-related peptide; In order, The analytical method according to claim 1 , wherein in the detection step, the eluate and the liquid containing the protein are mixed on a plate that is irradiated with a laser.

8. The analytical method according to claim 7 , wherein the concentration of the protein in the protein-containing liquid is 10 nM or more and 600 nM or less.

Citation Information

Patent Citations

  • Method of selectively measuring specified substance from mixture by maldi mass spectrometry

    JP2006010672A

  • Sample plate for maldi mass spectrometer enabling identification of trace amount of protein

    JP2007309673A

  • Mass spectrometry method for polypeptide

    JP2017020980A

  • Tailoring site specificity of bioconjugation using step-wise ATRP on proteins

    US20210290769A1

  • SURROGATE BIOMARKER FOR EVALUATING INTRACEREBRAL AMYLOID β PEPTIDE ACCUMULATION AND METHOD FOR ANALYSIS THEREOF

    WO2015178398A1