Thyroid hormone analysis method, analysis system and detection system

JP2024163911A5Active Publication Date: 2025-06-25KAZUSA DNA RES INST
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Patent Information

Application Number
JP2024109780
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-06-25
Estimated Expiration
2043-05-12

AI Technical Summary

Technical Problem

Existing methods for measuring thyroid hormone levels in hair samples are inaccurate due to the minute amount of hormone present, making it difficult to achieve precise analysis.

Method used

A method involving mixing a biological sample with a solvent at controlled temperatures between 20°C and 80°C for 0.1 to 12 hours, followed by liquid chromatography and mass spectrometry to separate and analyze thyroid hormone components such as T3 and T4.

Benefits of technology

Enables accurate measurement of thyroid hormones, allowing for the detection of thyroid diseases like Graves' disease and Hashimoto's disease through precise analysis.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a technique of accurately measuring a thyroid hormone.SOLUTION: An analysis method for analyzing a thyroid hormone contained in a biological sample, includes the steps of: mixing the biological sample with a solvent and controlling a temperature to 20°C or higher and 80°C or lower for 0.1 hour or longer and 12 hours or shorter, to prepare an extract: separating an analytical component in the extract by liquid chromatography; and subjecting the separated analytical component to mass spectrometry.SELECTED DRAWING: None
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Description

[Technical field]

[0001] The present invention relates to a method, an analysis system and a detection system for thyroid hormones. [Background technology]

[0002] There is a known technology for predicting or diagnosing health conditions or diseases by detecting specific components contained in blood, tissues, etc. collected from a living body as indicators of health or disease (biomarkers) using a mass spectrometer (MS). Among such biological components, thyroid hormones secreted from the thyroid gland play an important role in regulating the metabolism of the entire body, and are known to be related to various diseases such as Graves' disease, Hashimoto's disease, and thyroid cancer. Therefore, it would be advantageous to be able to efficiently analyze thyroid hormones.

[0003] As a method for analyzing thyroid hormone secretion, Non-Patent Documents 1 to 3 describe a technique for measuring thyroid hormone levels from human hair. In the techniques described in Non-Patent Documents 1 to 3, components extracted from human hair are separated by liquid chromatography, and the separated components to be measured are measured by a mass spectrometer. [Prior art documents] [Non-patent literature]

[0004] [Non-Patent Document 1] N. Grova et. al., Journal of Chromatography A, Volume 1612, 8 February 2020, 460648 [Non-Patent Document 2] Wei Gao et al., Psychoneuroendocrinology, Volume 106, August 2019, Pages 129-137 [Non-Patent Document 3] Feng-Jiao Peng et al., Eur J Endocrinol, 2022 May 1; 186(5): K9-K15 Summary of the Invention [Problem to be solved by the invention]

[0005] Hair, which is used for analysis in the techniques described in Non-Patent Documents 1 to 3, is easy to collect and is less invasive when collected, making it an excellent biological sample for measuring thyroid hormones. However, since the amount of thyroid hormone contained in hair is very small, it is difficult to measure it accurately. Therefore, there is a demand for the development of a technique for measuring thyroid hormones with high accuracy.

[0006] One aspect of the present invention has been made to solve the above-mentioned problems, and aims to realize a technology for accurately measuring thyroid hormones from hair. [Means for solving the problem]

[0007] In order to solve the above problems, an analytical method according to one embodiment of the present invention is a method for analyzing thyroid hormones contained in a biological sample, which includes the steps of mixing the biological sample with a solvent and controlling the temperature to 20°C or higher and 80°C or lower for 0.1 hour or more and 12 hours or less to prepare an extract, separating the analyte components in the extract by liquid chromatography, and subjecting the separated analyte components to mass spectrometry.

[0008] An analytical system according to one embodiment of the present invention is an analytical system for analyzing thyroid hormones contained in a biological sample, and includes a device for separating analytical components in an extract by liquid chromatography, which is prepared by adding a solvent to the biological sample and controlling the temperature to 20°C or higher and 80°C or lower for a period of 0.1 hour or more and 12 hours or less, and a mass spectrometer for performing mass analysis of the separated analytical components.

[0009] A detection system according to one embodiment of the present invention is a detection system for detecting thyroid disease, and includes an apparatus for separating analytical components in an extract prepared by adding a solvent to the biological sample and controlling the temperature to a range of 20°C to 80°C for a period of 0.1 hour to 12 hours using liquid chromatography, and a mass spectrometer for performing mass analysis of the separated analytical components. Effect of the Invention

[0010] According to one aspect of the present invention, a technique for measuring thyroid hormones with high accuracy can be realized. [Brief description of the drawings]

[0011] [Figure 1] 1 is a block diagram showing a configuration of a main part of an analysis system according to an embodiment of the present invention; [Diagram 2] FIG. 1 is a diagram showing the results of comparing the analysis results of T3 and T4 extracted from hair between subjects who were not affected by thyroid disease and subjects who were affected by thyroid disease in an example. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] [Analysis method] An analytical method according to one embodiment of the present invention is a method for analyzing thyroid hormones, which are analytes contained in a biological sample. This analytical method includes the steps of preparing an extract for extracting an analyte from a biological sample, separating the analyte in the extract, and subjecting the separated analyte to mass spectrometry. Examples of thyroid hormones analyzed in this analytical method include triiodothyronine (T3), reverse T3, and thyroxine (T4). The thyroid hormones analyzed in this analytical method may be free thyroid hormones (FT3, FT4, etc.) that are not bound to proteins. In addition, in this analytical method, thyroid hormones may be analyzed by analyzing iodine that constitutes thyroid hormones.

[0013] <Sample> The biological sample to be subjected to the present analysis method is not particularly limited, and may be a sample that may contain thyroid hormone. The biological sample may be a sample collected or prepared from a human or an animal. The biological sample may be selected from the group consisting of hair, nails, skin, organs, tissues, cells, blood, urine, cerebrospinal fluid, feces, and cecal contents, and an example is hair or nails. Hair is also called hair, and includes head hair and body hair. Hair also includes the hair shaft part on the outside of the skin and the hair root part on the inside of the skin, as well as parts involved in hair production such as the hair root sheath and hair matrix that are present around the hair root in the hair follicle (or hair follicle).

[0014] (Step of preparing extract) In the step of preparing an extract, the biological sample is mixed with a solvent to prepare an extract. The extract may be prepared by extracting thyroid hormones from a biological sample by a known method such as solvent extraction or solid-phase extraction.

[0015] The solvent to be added to the biological sample is preferably a solvent capable of dissolving thyroid hormones, and examples thereof include methanol, heptane, ethyl acetate, butanol, chloroform, etc. An extract can be prepared by suspending and stirring the biological sample in such a solvent.

[0016] When the biological sample is a solid sample, the amount of the biological sample suspended in the solvent is not particularly limited, but is, for example, 1 mg or more and 10 mg or less.

[0017] The amount of the solvent in which the biological sample is suspended is, for example, 50 μL or more and 200 μL or less; 50 μL or more and 150 μL or less; or 50 μL or 100 μL. When the biological sample is a solid sample, the biological sample may be cut or crushed and suspended in the solvent.

[0018] In the step of preparing an extract, the temperature of the biological sample mixed with the solvent is controlled to 20° C. or more and 80° C. or less. The temperature of the biological sample mixed with the solvent may be controlled to 40° C. or more and 70° C. or less, or may be controlled to 50° C. or more and 60° C. or less. In the step of preparing an extract, the temperature of the biological sample mixed with the solvent is controlled for 0.1 hours or more and 12 hours or less. The temperature control time of the biological sample mixed with the solvent may be 1 hour or more and 8 hours or less, or may be 2 hours or more and 5 hours or less.

[0019] The extract prepared in the step of preparing the extract can be directly subjected to the next liquid chromatography without being subjected to supernatant recovery and drying treatment. In the step of preparing the extract, a small amount of solvent is used to extract thyroid hormones from a biological sample, and an extract having a high concentration of the extracted components can be obtained. Therefore, an extract that can be subjected to analysis can be prepared without concentrating the extracted components by supernatant recovery and drying treatment. The prepared extract may be further mixed with a solvent and distilled water for liquid chromatography to adjust the concentration of the solvent, and used as a sample for liquid chromatography.

[0020] (Step of separating the analyte components) In the step of separating the analytes, the analytes in the extract are separated by liquid chromatography. In the step of separating the analytes, the extract prepared in the step of preparing the extract is injected into a purification column of liquid chromatography to separate the thyroid hormones, which are the analytes in the extract. In the step of separating the analytes, the extract prepared in the step of preparing the extract is used as is for liquid chromatography. An example of the liquid chromatography is reversed-phase liquid chromatography.

[0021] The purification column used in liquid chromatography is, for example, a reversed-phase column (C8). The flow rate of the mobile phase in liquid chromatography is, for example, 100 to 400 μL / min. The solvent used in liquid chromatography may be a mixed solvent of water and a solvent. For example, methanol, acetonitrile, 2-propanol, etc. can be suitably used as the solvent. The amount of the extract injected into the purification column is, for example, 50 μL or more and 200 μL or less; 50 μL or more and 150 μL or less; or 50 μL or more and 100 μL or less.

[0022] In the step of separating the analyte, an eluate is obtained by eluting the analyte on the purification column. Then, in the step of performing mass analysis described below, the obtained eluate is subjected to mass analysis. The amount of the solvent used to elute the analyte from the purification column is, for example, 20 μL or more and 150 μL or less; 20 μL or more and 120 μL or less; or 20 μL or more and 100 μL or less.

[0023] In the step of separating the analyte, the eluate from which the analyte is eluted from the purification column can be directly subjected to mass spectrometry, which will be described later. Since the amount of solvent used to elute the analyte is small, an eluate with a high concentration of the eluted component can be obtained. Therefore, an eluate that can be subjected to mass spectrometry can be prepared without concentrating the analyte by a drying process. The obtained eluate can also be dried and then redissolved in a solvent for mass spectrometry.

[0024] (Mass spectrometry step) In the mass spectrometry step, the analytes separated in the analyte separation step are subjected to mass spectrometry. In the mass spectrometry step, the analytes, thyroid hormones, are analyzed using a known mass spectrometry device such as a triple quadrupole MS. In the mass spectrometry step, the presence or absence of thyroid hormones in the analytes can be detected. In addition, in the mass spectrometry step, the amount of thyroid hormones in the analytes can also be measured.

[0025] (Presenting an indicator of thyroid disease) The analysis method may further include a step of presenting the measured values ​​of thyroid hormone obtained by mass spectrometry as an index of thyroid disease. In the step of presenting the index of thyroid disease, a predetermined relationship between the measured values ​​of thyroid hormone and the index of thyroid disease is referenced, and the index of thyroid disease is obtained from the measured values ​​of thyroid hormone obtained by mass spectrometry. The obtained index of thyroid disease is then presented to a user. The step of presenting the index of thyroid disease may be executed by an information processing device.

[0026] In the step of presenting an indicator of a thyroid disease, for example, when a measured value of a thyroid hormone is outside a predetermined reference range, an indicator is presented that indicates that the thyroid disease level is outside the reference range. Here, for example, the thyroid disease level may indicate a stage of the possibility of suffering from a thyroid disease. Examples of thyroid diseases include Graves' disease and Hashimoto's disease.

[0027] The method of presenting the thyroid disease index to the user is not particularly limited. For example, the thyroid hormone measurement value and the thyroid disease index may be displayed on a computer display, a display of a mobile device such as a smartphone, or the like. In addition, the thyroid disease index may be presented to the user by providing the user with a medium on which the thyroid hormone measurement value and the thyroid disease index are printed.

[0028] [Analysis System] An analytical system according to one aspect of the present invention is an analytical system for analyzing thyroid hormones contained in a biological sample, and includes an apparatus for separating analytes in an extract by liquid chromatography, the analytes being prepared by mixing the biological sample with a solvent and controlling the temperature to 20° C. or higher and 80° C. or lower for 0.1 to 12 hours, and a mass spectrometer for performing mass analysis of the separated analytes. That is, the analytical system according to one aspect of the present invention is one aspect of a system for executing the above-mentioned analytical method according to one aspect of the present invention.

[0029] Fig. 1 is a block diagram showing the main configuration of an analysis system according to an embodiment of the present invention. As shown in Fig. 1, the analysis system 100 includes a liquid chromatograph (a device that separates) 10, a mass spectrometer 20, and a computing device 30. In the analysis system 100, the liquid chromatograph 10 and the mass spectrometer 20 may be independent devices, or may be an integrated device having the functions of each device. A known reverse phase liquid chromatography-mass spectrometer (LC-MS) can be used as an integrated device having the functions of the liquid chromatograph 10 and the mass spectrometer 20.

[0030] (Liquid Chromatograph) The liquid chromatograph 10 is a device that separates analytes by reversed-phase liquid chromatography. The liquid chromatograph 10 may be a conventionally known liquid chromatograph device, and a commercially available device may be suitably used. The analytes separated by the liquid chromatograph 10 may be a sample adjusted to a state suitable for separation in the device, for example, an extract obtained by extracting the analytes with a solvent. The liquid chromatograph 10 can separate thyroid hormones, which are analytes in the extract. The eluate containing the analytes separated by the liquid chromatograph 10 is introduced into a mass spectrometer 20.

[0031] (mass spectrometer) The mass spectrometer 20 is a device that performs MS analysis of thyroid hormones in a biological sample. The mass spectrometer 20 has an ionization unit 21 that ionizes molecules contained in the eluate obtained in the liquid chromatograph 10, and a detection unit 22 that performs MS analysis of the ionized molecules and detects thyroid hormones in the eluate. The mass spectrometer 20 may be a conventionally known mass spectrometer, and a commercially available device may be suitably used.

[0032] The eluate introduced into the mass spectrometer 20 is first introduced into the ionization section 21, where molecules in the eluate are ionized. The detection section 22 separates and detects the molecules ionized in the ionization section 21 according to their mass-to-charge ratios (m / z ratios). The detection results in the mass spectrometer 20 are output to the calculation device 30.

[0033] (computing device) The calculation device 30 generates MS and MS / MS spectra of the thyroid hormone in the eluate based on the detection results output from the mass spectrometer 20, and measures the peak areas to quantify the thyroid hormone molecules in the eluate.

[0034] The calculation device 30 may be, for example, a computer in which software for executing calculations related to MS analysis is installed, and which is equipped with a memory for storing the calculation results, a display for displaying the calculation results, and the like.

[0035] <Example of software implementation> The calculations performed by the calculation device 30 may be realized by a logic circuit (hardware) formed in an integrated circuit (IC chip) or the like, or may be realized by software using a CPU (Central Processing Unit).

[0036] In the latter case, the arithmetic device 30 includes a CPU that executes instructions of a program, which is software that realizes each function, a ROM (Read Only Memory) or a storage device (these are referred to as "recording media") in which the program and various data are recorded so as to be readable by a computer (or CPU), and a RAM (Random Access Memory) in which the program is expanded. The object of the present invention is achieved by the computer (or CPU) reading and executing the program from the recording media. As the recording media, "non-transient tangible media" such as tapes, disks, cards, semiconductor memories, and programmable logic circuits can be used. The program may be supplied to the computer via any transmission medium (such as a communication network or broadcast waves) capable of transmitting the program. The present invention may also be realized in the form of a data signal embedded in a carrier wave in which the program is embodied by electronic transmission.

[0037] Detection Systems and Methods A detection system according to one embodiment of the present invention is a detection system for detecting a thyroid disease, and includes an apparatus for separating, by liquid chromatography, an analyte in an extract prepared by adding a solvent to a biological sample and controlling the temperature to 20°C or higher and 80°C or lower for 0.1 hours or more and 12 hours or less, and a mass spectrometer for performing mass analysis of the separated analyte. The detection system according to one embodiment of the present invention is the above-mentioned analysis system according to one embodiment of the present invention, which is used for detecting thyroid disease. According to the detection system according to one embodiment of the present invention, the thyroid hormone level in a biological sample is measured, and a thyroid disease is detected based on the measurement result. According to this detection system, the presence or absence of a thyroid disease in a subject can be detected by measuring the thyroid hormone level in a biological sample collected from the subject.

[0038] The present invention also includes a method for detecting a thyroid disease, which comprises the steps of mixing a biological sample with a solvent and controlling the temperature at 20° C. or higher and 80° C. or lower for 0.1 to 12 hours to prepare an extract, separating an analyte in the extract by liquid chromatography, and subjecting the separated analyte to mass spectrometry. According to this detection method, the presence or absence of a thyroid disease in a subject can be detected by measuring the thyroid hormone level in a biological sample collected from the subject.

[0039] [Additional Note 1] The analytical method according to aspect 1 of the present invention is a method for analyzing thyroid hormones contained in a biological sample, and includes the steps of mixing the biological sample with a solvent and controlling the temperature to 20°C or higher and 80°C or lower for 0.1 hour or longer and 12 hours or shorter to prepare an extract, separating analyte components in the extract by liquid chromatography, and subjecting the separated analyte components to mass spectrometry.

[0040] In the analytical method according to aspect 2 of the present invention, in the separating step of the first aspect, the extract is injected into a purification column to separate the analyte in the extract.

[0041] The analytical method according to aspect 3 of the present invention is, in the above aspect 1 or 2, characterized in that in the separating step, an eluate that elutes the analyte on a purification column is obtained, and in the mass spectrometry step, the eluate is subjected to mass spectrometry.

[0042] An analytical method according to a fourth aspect of the present invention is characterized in that, in any one of the first to third aspects, the biological sample is hair or nail.

[0043] The analytical method according to a fifth aspect of the present invention is the method according to any one of the first to fourth aspects, further comprising the step of presenting the measured value of the thyroid hormone obtained by the mass spectrometry as an index of a thyroid disease.

[0044] The analytical system according to aspect 6 of the present invention is an analytical system for analyzing thyroid hormones contained in a biological sample, and includes an apparatus for separating analytical components in an extract by liquid chromatography, the extract being prepared by adding a solvent to the biological sample and controlling the temperature to a range of 20°C to 80°C for a period of 0.1 hour to 12 hours, and a mass spectrometer for performing mass analysis of the separated analytical components.

[0045] The detection system according to aspect 7 of the present invention is a detection system for detecting thyroid disease, and includes an apparatus for separating analytical components in an extract prepared by adding a solvent to a biological sample and controlling the temperature to 20°C or higher and 80°C or lower for a period of 0.1 hour or more and 12 hours or less, by liquid chromatography, and a mass spectrometer for performing mass analysis of the separated analytical components.

[0046] [Additional Note 2] The present invention is not limited to the above-described embodiments, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of the present invention. EXAMPLES

[0047] Thyroid hormones in hair were measured as follows. Hair samples were taken from healthy subjects and patients with Graves' disease.

[0048] (Acquisition of biological samples) Hair was cut and collected from the head and scalp of each subject. The cut hair was cut from the root and used. The collected hair was washed and naturally dried at room temperature before being used for analysis.

[0049] (Preparation of extract) The hair that had been pretreated as described above was placed in an extraction vessel, 100 μL of methanol water was added, and extraction was carried out for 4 hours at 60° C. To adjust the methanol concentration, further methanol water was added to prepare an extract.

[0050] (Preparation of eluate) First, the purification column was conditioned by applying methanol onto the column and pushing it out with air using a syringe. Furthermore, distilled water was applied onto the column and pushed out in the same manner.

[0051] 100 μL of the extract prepared as described above was injected into the conditioned column and pushed out. Next, the remaining extract was pushed out in the same manner. After injecting and pushing out hexane for washing, the column was dried by pushing out only air.

[0052] After that, 100 μL of methanol was injected and the liquid pushed out was collected in a new container as the eluate. The collected eluate was dried by blowing nitrogen gas over it. After drying, methanol was added to the container to redissolve the eluate. Distilled water was then added to the container, and the mixture was mixed well and subjected to mass spectrometry.

[0053] (analysis) The extracted samples were separated by reversed-phase liquid chromatography using an ultra-high-performance liquid chromatograph NEXERA X2 (Shimadzu Corporation) as follows. A reversed-phase packing material for ultra-high-performance liquid chromatography was used as the packing material for the reversed-phase liquid chromatography column. Gradient elution was performed using two types of mobile phases as the mobile phase used in reversed-phase liquid chromatography under acidic conditions. The separated molecules were ionized by electrospray ionization (ESI) using a triple quadrupole LCMS-8060 system (Shimadzu Corporation), and MS spectra of T3 and T4 were generated and measured.

[0054] The results of measuring T3 and T4 in hair collected from nine healthy subjects (Healthy Control) and eight patients with Graves' disease (Basedow) are shown in Figure 2. Figure 2 shows the results of comparing the analysis results of T3 and T4 extracted from hair between subjects who were not affected by thyroid disease and subjects who were affected by thyroid disease. In the graph shown in Figure 2, the vertical axis indicates the intensity of T4, and the horizontal axis indicates the intensity of T3.

[0055] As shown in Figure 2, thyroid hormone levels were measurable in both healthy subjects and Graves' disease patients. Also, as shown in Figure 2, the T3 and T4 levels in hair were largely divided between healthy subjects and Graves' disease patients. Therefore, it was suggested that, for example, by setting standard values ​​such as normal, abnormal, and cautionary values ​​for thyroid hormones and comparing the subjects' thyroid hormone values ​​with these standard values, they could be used as markers for thyroid disease. [Industrial Applicability]

[0056] The present invention can be used in the medical field, for example, to predict or diagnose health conditions or diseases. [Explanation of symbols]

[0057] 10 Liquid chromatograph (analytical equipment) 20 Mass spectrometer 21 Ionization section 22 Detection unit 30 Arithmetic unit 100 Analysis Systems

Claims

1. A method for providing an indication for the diagnosis of a thyroid disease, comprising: A method comprising the step of measuring the thyroid hormones T3 and / or T4 in cut hair of a subject.

2. The method of claim 1, further comprising a step of comparing the measured values ​​of thyroid hormones T3 and / or T4 in the cut hair of the subject with the values ​​of thyroid hormones T3 and / or T4 in cut hair of a healthy individual.

3. The method described in claim 1, wherein the thyroid disease is Graves' disease.

4. The measuring step mixing the cut hair with a solvent and controlling the temperature to 20°C or higher and 80°C or lower for 0.1 hour or higher and 12 hours or lower to prepare an extract, wherein the amount of the solvent is 200 μL or less; separating the analytes in the extract by liquid chromatography; and 2. The method of claim 1, comprising measuring the thyroid hormones T3 and / or T4 by mass spectrometry of the separated analytical components.

5. The method of claim 4, wherein the separating step comprises injecting the extract into a purification column and separating the analyte components in the extract.