Method and reagent for detecting ovarian malignant tumors

The TFPI2-based method and reagent address inaccuracies in ovarian cancer diagnosis by providing a specific and accurate means to differentiate malignant from benign tumors, enhancing diagnostic precision and reducing overtreatment.

JP7777304B2Active Publication Date: 2025-11-28PUBLIC UNIV CORP YOKOHAMA CITY UNIV +1
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Patent Information

Application Number
JP2022503238
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-26
Filing Date
2021-02-09
Publication Date
2025-11-28
Estimated Expiration
2041-02-09

AI Technical Summary

Technical Problem

Current ovarian cancer diagnosis methods, relying on markers like CA125 and HE4, suffer from inaccuracies due to variations in measurement values across different reagents and false-positive diagnoses, leading to delayed treatment and overtreatment of benign diseases.

Method used

A method and reagent using tissue factor pathway inhibitor 2 (TFPI2) measurement, specifically through detecting TFPI2 levels in blood samples, to differentiate between ovarian malignant and benign tumors with high specificity, excluding high-grade serous carcinoma.

Benefits of technology

Enables accurate and minimally invasive detection of ovarian malignant tumors, reducing false positives and improving treatment timing by utilizing TFPI2 levels as a reliable marker.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention addresses the problem of providing a method for detecting malignant ovarian tumors distinctly from benign ovarian tumors and a reagent that can be used in the method. This method for detecting malignant ovarian tumors (excluding high-grade serous carcinoma) distinctly from benign ovarian tumors is characterized in that the amount of TFPI2 in a sample originating from a patient is measured. In addition, an antibody that specifically recognizes TFPI2 processing polypeptide and intact TPFI2 is included in a reagent for detecting malignant ovarian tumors (excluding high-grade serous carcinoma) distinctly from benign ovarian tumors.
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Description

[Technical Field]

[0001] The present invention relates to a method and a reagent for detecting ovarian malignant tumors, in which tissue factor pathway inhibitor 2 (TFPI2) is measured. [Background technology]

[0002] Ovarian cancer is estimated to cause approximately 280,000 new cases worldwide and approximately 10,000 new cases in Japan (GLOBOCAN 2018), making it the leading cause of death among gynecological malignancies. Current ovarian cancer diagnosis relies on imaging and blood tests using multiple markers, primarily CA125 and CA19-9, to predict whether the cancer is malignant or benign. Suspected malignancies require surgical ovarian removal and pathological examination of the removed specimens for a definitive diagnosis. However, while CA125, a representative ovarian cancer marker, has excellent sensitivity for detecting ovarian cancer, its levels can vary significantly due to menstruation, peritonitis, and benign tumors, including endometriosis. As a result, delays in treatment for ovarian cancer cases and overtreatment of benign diseases due to false-positive diagnosis, resulting in a decline in patient quality of life, have become a problem. Therefore, efforts are underway to develop novel ovarian cancer markers that complement CA125.

[0003] Human epididymis protein 4 (HE4) is a new ovarian cancer marker that was approved for insurance coverage in Japan in 2017. Although HE4 has lower sensitivity than CA125, it is considered a highly specific marker with a low positive rate in endometriosis and other benign diseases. Furthermore, because HE4 and CA125 have a low correlation, calculating the Risk of Ovarian Malignancy Algorithm (ROMA) based on the measurements of both markers and menopausal information is believed to further improve the accuracy of distinguishing benign from malignant ovarian tumors (Non-Patent Document 1). However, it has been pointed out that the measurement values ​​of CA125, which are commercialized by various in vitro diagnostic pharmaceutical companies, vary from company to company. One contributing factor is the differences in the antibodies used in the assay reagents and the reference standards used to calculate concentrations. Therefore, the need to consider the differences in CA125 measurement values ​​between reagents is a challenge in calculating an accurate ROMA. Therefore, there is a strong demand for a simple and accurate method for detecting ovarian malignant tumors using a blood test that places a minimal burden on patients.

[0004] Tissue factor pathway inhibitor 2 (TFPI2) is a placenta-derived serine protease inhibitor containing three Kunitz-type protease inhibitor domains, identical to placental protein 5 (PP5). TFPI2 is specifically produced by clear cell carcinoma cell lines in ovarian cancer cell lines, and its gene expression in ovarian cancer patient tissues is specifically elevated only in clear cell carcinoma patients (Patent Document 1). A method for detecting ovarian clear cell carcinoma by measuring circulating TFPI2 has been disclosed (Patent Documents 2 and 3, Non-Patent Documents 2 and 3). Meanwhile, another research group reported that TFPI2 was one of the proteins whose median measured value increased in the HGSC group as a result of proteomic analysis of plasma from high-grade serous carcinoma (HGSC), a type of ovarian malignant tumor, and benign ovarian tumor (Non-Patent Document 4). However, until now, it has been unclear whether TFPI2 can be applied to distinguish between ovarian malignant tumors with various histological types, including borderline malignant tumors, and benign ovarian tumors. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Patent No. 5224309 [Patent Document 2] Patent No. 6074676 [Patent Document 3] International Publication No. 2016 / 084912 [Non-patent literature]

[0006] [Non-Patent Document 1] Tumor Biology, 36.2(2015),1045-1053 [Non-patent document 2] J. Proteome Res., 2013,12(10),4340-4350 [Non-patent document 3] PloS one 11.10 (2016): e0165609. [Non-patent document 4] Frontiers in oncology 9(2019): 1150 Summary of the Invention [Problem to be solved by the invention]

[0007] An object of the present invention is to provide a method for detecting and differentiating ovarian malignant tumors from ovarian benign tumors, and a reagent that can be used in said method. [Means for solving the problem]

[0008] After extensive research, the inventors discovered that blood TFPI2 levels are significantly higher in patients with malignant ovarian tumors compared to patients with benign ovarian tumors, and concluded that TFPI2 can detect malignant ovarian tumors with high specificity, thereby completing the present invention. That is, the present invention includes the following aspects. [1] A method for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, which comprises measuring the amount of TFPI2 in a specimen. [2] The method according to [1], wherein an ovarian malignant tumor (excluding high-grade serous carcinoma) is detected when the measured value of the amount of TFPI2 exceeds a predetermined reference value. [3] The method according to [1] or [2], wherein the amount of TFPI2 is the sum of the amount of TFPI2-processing polypeptide and the amount of intact TFPI2. [4] The method according to any one of [1] to [3], wherein the amount of TFPI2 is measured by an antigen-antibody reaction using an antibody that binds to an antigenic determinant within the region from the 23rd aspartic acid residue to the 131st histidine residue or the 130th cysteine ​​residue of the amino acid sequence of SEQ ID NO: 1. [5] The method according to [4], wherein the antibody recognizes Kunitz domain 1 of TFPI2. [6] The method according to any one of [1] to [3], wherein the measurement is carried out using mass spectrometry. [7] The method according to any one of [1] to [6], further comprising the step of detecting an ovarian cancer marker other than TFPI2. [8] A reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, comprising an antibody that binds to an antigenic determinant within the region from aspartic acid at residue 23 to histidine at residue 131 or cysteine ​​at residue 130 of the amino acid sequence shown in Sequence No. 1. [Effects of the Invention]

[0009] The present invention provides a method for easily and accurately detecting and differentiating malignant ovarian tumors from benign ovarian tumors, and a reagent that can be used in said method. [Brief explanation of the drawings]

[0010] [Figure 1]1 shows a box plot of TFPI2 or CA125 measurement values ​​in a group of patients with benign ovarian tumors and a group of patients with malignant ovarian tumors, with the vertical axis representing the amount of TFPI2 or CA125 in the blood. [Figure 2] Receiver operating characteristic (ROC) curves for the benign ovarian tumor group and the malignant ovarian tumor group. [Figure 3] A graph showing the correlation between TFPI2 and CA125 measurement values ​​in a group of patients with benign ovarian tumors and a group of patients with malignant ovarian tumors. The vertical axis represents CA125 measurement values, and the horizontal axis represents TFPI2 measurement values. [Figure 4] Box plots of TFPI2 or CA125 measurements in a group of patients with benign ovarian tumors and a group of patients with malignant ovarian tumors, with the vertical axis representing the amount of TFPI2 or CA125 in the blood. [Figure 5] ROC curves for the benign ovarian tumor group and the malignant ovarian tumor group. [Figure 6] A graph showing the correlation between TFPI2 and CA125 measurement values ​​in a group of patients with benign ovarian tumors and a group of patients with malignant ovarian tumors. The vertical axis represents CA125 measurement values, and the horizontal axis represents TFPI2 measurement values. DETAILED DESCRIPTION OF THE INVENTION

[0011] <1> The method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from ovarian benign tumors A first aspect of the present invention is a method for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, which involves measuring the amount of TFPI2 in a specimen. This method is based on the fact that the presence of TFPI2 is elevated in biological samples such as blood from ovarian malignant tumors compared to benign ovarian tumors. Measurement of the amount of TFPI2 in a specimen is usually performed in vitro. As shown in the Examples below, this method enables the detection and differentiation of ovarian malignant tumors from benign ovarian tumors with high specificity. The method of the present invention includes the step of detecting and differentiating ovarian malignant tumors from benign ovarian tumors, but does not include the final decision regarding the diagnosis of ovarian malignant tumors. Physicians refer to the detection results obtained by the method of the present invention to diagnose ovarian malignant tumors and formulate treatment plans.

[0012] The ovarian malignant tumors detected in the present invention refer to malignant tumors and borderline malignant tumors, and include various tumors that fall within these categories, with the exception of high-grade serous carcinoma, and are not particularly limited. Malignant tumors include epithelial tumors such as non-invasive low-grade serous carcinoma, low-grade serous carcinoma, mucinous carcinoma, endometrioid carcinoma, clear cell carcinoma, malignant Brenner tumor, serous-mucinous carcinoma, undifferentiated carcinoma (low-grade endometrial stromal sarcoma, high-grade endometrial stromal sarcoma), mixed epithelial-mesenchymal tumors (adenosarcoma, carcinosarcoma), pure stromal tumors (cellular fibroma, fibrosarcoma, malignant steroid cell tumor), pure sex cord tumors (adult granulosa cell tumor, juvenile granulosa cell tumor, Sertoli cell tumor), and uterine fibroid tumors (adult granulosa cell tumor, juvenile granulosa cell tumor, Sertoli cell tumor). Examples of tumors include sex cord-stromal tumors such as cystomas and sex cord tumors with annular tubules; mixed sex cord-stromal tumors such as Sertoli-Leydig cell tumors and other sex cord-stromal tumors; germ cell tumors such as dysgerminoma / dysgerminoma, yolk sac tumor, somatoblastic carcinoma (embryonic carcinoma), polyembryoma, immature teratoma (G3), mature teratoma with malignant addition, fibrosarcoma, choriocarcinoma, and mixed germ cell tumors; carcinomas, sarcomas; malignant lymphomas; and secondary (metastatic) tumors. Among these, clear cell carcinoma, low-grade serous carcinoma, endometrioid carcinoma, and mucinous carcinoma are preferred. Furthermore, clear cell carcinoma, endometrioid carcinoma, and mucinous carcinoma are even more preferred. Borderline malignant tumors include epithelial tumors such as serous, mucinous, endometrioid, clear cell, adenofibroma, superficial papillary, Brenner tumor, and serosomycinous tumors; germ cell tumors such as granulosa cell, Sertoli-stromal cell tumor (moderately differentiated), steroid cell tumor (unclassifiable), and ginadoblastoma; germ cell tumors such as immature teratoma (G1, G2), carcinoid, and goitrous carcinoid; and gonadoblastoma (pure type).

[0013] The TFPI2 measured in the present invention is not particularly limited, and may be, for example, intact TFPI2 (hereinafter also referred to as "I-TFPI2"), TFPI2 processing polypeptide (hereinafter also referred to as "NT-TFPI2"), or both. The amino acid sequence based on the cDNA of human TFPI2 is shown in SEQ ID NO: 1. In SEQ ID NO: 1, the portion from the initiation methionine to the 22nd residue, glycine, is a signal peptide. "Intact TFPI2" refers to the peptide represented by residues 23 to 235 of the amino acid sequence of SEQ ID NO:1.

[0014] Furthermore, as described in Patent Document 3, "NT-TFPI2" refers to a peptide fragment containing Kunitz domain 1 located at the N-terminus of intact TFPI2. More specifically, NT-TFPI2 is a peptide containing at least the sequence from aspartic acid at residue 23 to histidine at residue 131 or cysteine ​​at residue 130 of the amino acid sequence of SEQ ID NO: 1, or a peptide containing an amino acid sequence having 80% or more identity to the above sequence. The identity is preferably 90% or more, more preferably 95% or more. This polypeptide may also be a polypeptide consisting of the above sequence in which one or several amino acids have been deleted, substituted, inserted, and / or added. Here, "several" preferably refers to 2 to 20, more preferably 2 to 10, and even more preferably 2 to 5. The above sequence may have other peptide fragments on both sides, but preferably does not have an antigenic determinant (epitope) for an antibody that recognizes Kunitz domain 3 of TFPI2.

[0015] In the present invention, patient-derived specimens (test samples) include blood components such as whole blood, blood cells, serum, and plasma, cell or tissue extracts, urine, cerebrospinal fluid, peritoneal lavage fluid, and ascites. Ovarian tissue biopsy samples may also be used as the test subject, in which case the extract or culture supernatant of the biopsy sample is measured. Using body fluids such as blood components and urine as specimens is preferred because it allows for simple and non-invasive testing. Considering the ease of specimen collection and versatility for other test items, blood components are particularly preferred. The dilution ratio of the specimen may be selected appropriately from undiluted to 100-fold dilution depending on the type and condition of the specimen used.

[0016] In the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, the method for detecting TFPI2 may be combined with a method for detecting other tumor markers for ovarian cancer (ovarian cancer markers other than TFPI2, also referred to as "other ovarian cancer markers"). There are no particular limitations on the manner of combination. As an example of a method for combining the method for detecting TFPI2 with the method for detecting other ovarian cancer markers in the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, (A) A method for detecting TFPI2 and other ovarian cancer markers in a sample to be measured, either simultaneously or separately, to differentiate and detect ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors; (B) A method of first detecting TFPI2 in the specimen to be measured, and then detecting other ovarian cancer markers in specimens that are determined to be negative as a result, to differentiate and detect ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors; (C) A method of first applying a method for detecting other ovarian cancer markers to the sample to be measured, and then detecting TFPI2 for samples that are determined to be negative as a result, thereby differentiating and detecting ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors; However, method (B) or (C) is preferred in that no reagent used during detection is wasted.

[0017] Other ovarian cancer markers to be detected by the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors may be appropriately selected from conventionally known markers, and examples include cancer antigen 125 (Cancer Antigen 125, CA125), cancer antigen 546 (CA546), cancer antigen 72-4 (CA72-4), cancer antigen 130 (CA130), cancer antigen 602 (CA602), sialyl Tn antigen (SLN), cancer-associated galactosyltransferase associated with tumor (GAT), lysophosphatidic acid (LPA), and human epididymis protein 4 (HE4). Among these, CA125, which is the most widely used ovarian cancer marker, has established clinical usefulness and is therefore preferred as the other ovarian cancer marker to be used in the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors. Furthermore, the number of other ovarian cancer markers detected in the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors may be one, or two or more.

[0018] Furthermore, the timing of specimen collection in the present invention is not particularly limited. For example, specimens may be collected at any time from preoperatively, when a pelvic mass is detected by diagnostic imaging or the like and a detailed examination is performed, to during follow-up after a definitive diagnosis of ovarian malignancy is made by postoperative pathological examination. Specimens collected at any stage, such as before or after a definitive diagnosis or before or after the start of treatment, can be subjected to the method of the present invention.

[0019] In the detection method of the present invention, it is preferable to determine that a malignant ovarian tumor (excluding high-grade serous carcinoma) has been detected and differentiated from a benign ovarian tumor when the amount of TFPI2 obtained by measurement exceeds a predetermined reference value (cutoff value). Here, the amount of TFPI2 may be the amount of intact TFPI2, the amount of NT-TFPI2, or the sum of the amounts of intact TFPI2 and NT-TFPI2, but the sum of the amounts of intact TFPI2 and NT-TFPI2 is more preferable from the viewpoint of achieving both ease of measurement and sufficient sensitivity and specificity.

[0020] The reference value used for the determination may be either a measured value or a converted concentration value. The converted concentration value is a value converted from the measured value based on a calibration curve prepared using TFPI2 as a standard sample. The cutoff value for differentiating and determining ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors can be determined by measuring both benign ovarian tumors and malignant ovarian tumors (excluding high-grade serous carcinoma) and then appropriately setting the measurement value that shows optimal sensitivity and specificity using receiver operating characteristic (ROC) curve analysis.

[0021] The method for measuring TFPI2 will be explained below. In the present invention, the amount of NT-TFPI2 or the amount of intact TFPI2 in a sample may be measured separately, or the values ​​may be summed to determine the total amount. Alternatively, the total amount of NT-TFPI2 and intact TFPI2 in a sample may be measured using a measurement system that can simultaneously measure the total amount. Alternatively, as described below, the amount of NT-TFPI2 may be measured indirectly from the total amount measured by both measurements and the amount of intact TFPI2 alone. In the methods of the present invention, the method for measuring the amount of NT-TFPI2 and / or intact TFPI2 is not particularly limited, and examples thereof include a method utilizing an antigen-antibody reaction using an antibody that recognizes NT-TFPI2 and / or intact TFPI2, and a method utilizing mass spectrometry.

[0022] (a) A competitive method using a labeled analyte and an antibody that recognizes the analyte, utilizing the competitive binding of the labeled analyte and the analyte contained in the sample to the antibody. (b) A method using surface plasmon resonance in which a sample is brought into contact with a chip onto which an antibody that recognizes the target of measurement is immobilized, and a signal dependent on the binding between the antibody and the target of measurement is detected. (c) Fluorescence polarization immunoassay, which uses an antibody that recognizes a fluorescently labeled analyte and utilizes the fact that the degree of fluorescence polarization increases when the antibody binds to the analyte. (d) The sandwich method uses two types of antibodies (one of which is labeled) that recognize the target substance and have different epitopes, and forms a three-component complex with the two antibodies and the target substance. (e) A method in which the target substance in a sample is concentrated using an antibody that recognizes the target substance as a pretreatment, and then the target substance is separated from the antibody and detected using a mass spectrometer or the like. Methods (d) and (e) are simple and versatile, but method (d) is more preferable for processing multiple samples because the techniques for reagents and equipment are well established.

[0023] Specific examples of methods for measuring the amount of NT-TFPI2 and / or intact TFPI2 using an antigen-antibody reaction include the following. (A) A method of measuring the total amount of NT-TFPI2 and intact TFPI2 using an antibody that recognizes both NT-TFPI2 and intact TFPI2 (NT+I-TFPI2 measurement system). The antibody that recognizes both NT-TFPI2 and intact TFPI2 is preferably an antibody that binds to an antigenic determinant within the region from aspartic acid at residue 23 to histidine at residue 131 or cysteine ​​at residue 130 in the TFPI2 amino acid sequence represented by SEQ ID NO: 1, and more preferably an antibody that recognizes Kunitz domain 1 of TFPI2 as an antigenic determinant. When the sandwich assay described above is used in this method, two types of antibodies with different epitopes are usually used.

[0024] (B) A method of measuring the amount of intact TFPI2 alone using an antibody that recognizes intact TFPI2 but not NT-TFPI2 (I-TFPI2 measurement system). The antibody that recognizes intact TFPI2 but not NT-TFPI2 is preferably an antibody that recognizes Kunitz domain 3 of TFPI2 as an antigenic determinant. When the sandwich method described above is used in this method, two types of antibodies with different epitopes are usually used, at least one of which is an antibody that recognizes intact TFPI2 but not NT-TFPI2, and the other may be an antibody that recognizes intact TFPI2 but not NT-TFPI2, or an antibody that recognizes both NT-TFPI2 and intact TFPI2.

[0025] (C) A method for calculating the amount of NT-TFPI2 alone by subtracting the amount of intact TFPI2 alone measured with the I-TFPI2 measurement system in (B) from the total amount of NT-TFPI2 and intact TFPI2 measured with the NT+I-TFPI2 measurement system in (A). (D) A method for measuring the amount of NT-TFPI2 alone using an antibody that recognizes NT-TFPI2 but not intact TFPI2. The antibody that recognizes NT-TFPI2 but not intact TFPI2 includes, for example, an antibody that specifically recognizes the peptide sequence at the C-terminus of NT-TFPI2. When using the sandwich method described above, for example, the antibody is used as a solid-phase antibody, and an antibody that recognizes Kunitz domain 1 as an antigenic determinant is used as a detection antibody.

[0026] In the method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors, the amount of NT-TFPI2 alone measured by the above-mentioned methods (C) and (D) may be used as the criterion for judgment. However, the latter method is more preferable because it provides sufficient sensitivity and specificity when the total amount of NT-TFPI2 and intact TFPI2 measured by method (A) is used as the criterion for judgment, and the antibody is easy to obtain and the measurement is simple in one step.

[0027] Antibodies that recognize NT-TFPI2 and / or intact TFPI2 can be obtained by immunizing animals with immunogens such as NT-TFPI2 polypeptides or proteins, oligopeptides consisting of partial regions of intact TFPI2 polypeptides or TFPI2 proteins, or polynucleotides encoding intact or partial regions of NT-TFPI2 polypeptides or TFPI2 proteins. The proteins or oligopeptides or polypeptides may not reflect the three-dimensional structure of TFPI2 in vivo, or their structure may change during their preparation. Therefore, the obtained antibodies may not have high specificity or binding strength for the desired in vivo TFPI2, and even if an assay system is constructed using the antibodies, the TFPI2 concentration in a sample may not be accurately quantified.

[0028] On the other hand, using an expression vector containing a polynucleotide encoding an intact or partial region of a TFPI2 polypeptide or intact TFPI2 protein as an immunogen is more preferable because the intact or partial region of the TFPI2 polypeptide or intact TFPI2 protein is expressed in the body of the immunized animal, eliciting an immune response, thereby obtaining antibodies with high specificity and binding strength (i.e., high affinity) for TFPI2 in the sample. The animal used for immunization is not particularly limited as long as it has the ability to produce antibodies, and may be a mammal that is normally used for immunization, such as a mouse, rat, or rabbit, or may be a bird such as a chicken.

[0029] Furthermore, TFPI1, which is known to be a homologue of TFPI2, is also present in the blood. Therefore, it is desirable to use an antibody that specifically recognizes only TFPI2 without cross-reacting with TFPI1.

[0030] The antibody that recognizes TFPI2 may be a monoclonal antibody or a polyclonal antibody, but is preferably a monoclonal antibody. Hybridoma cells producing antibodies that recognize TFPI2 can be established by any method appropriately selected from established techniques. For example, B cells are collected from an animal immunized by the method described above, and the B cells are fused with myeloma cells electrically or in the presence of polyethylene glycol. Hybridoma cells that produce the desired antibodies are selected in HAT medium, and the selected hybridoma cells are monocloned by limiting dilution to establish hybridoma cells that produce monoclonal antibodies that recognize TFPI2.

[0031] Monoclonal antibodies that recognize TFPI2 for use in the present invention may be selected based on their affinity to GPI (glycosylphosphatidylinositol)-anchored TFPI2 or secreted TFPI2 derived from the host expression system. The host is not particularly limited and may be selected from microbial cells such as Escherichia coli and yeast, insect cells, and animal cells commonly used by those skilled in the art for protein expression, but mammalian cells are preferred, as they are capable of expressing proteins with a structure similar to that of native TFPI2 through post-translational modifications such as disulfide bonds or glycosylation. Examples of mammalian cells include the conventionally used human embryonic kidney (HEK) 293T cell line, monkey kidney COS7 cell line, Chinese hamster ovary (CHO) cells, and cancer cells isolated from humans.

[0032] The antibodies used in the present invention can be purified by any method appropriately selected from established techniques. For example, antibody-producing hybridoma cells established by the above-described method are cultured, the culture supernatant is collected, and the antibodies are concentrated by ammonium sulfate precipitation, if necessary, and then purified by affinity chromatography and / or ion exchange chromatography using a carrier on which protein A, protein G, protein L, or the like is immobilized. The labeled antibody used in the antigen-antibody reaction by the sandwich method described above can be obtained by labeling the antibody purified by the method described above with an enzyme such as peroxidase or alkaline phosphatase, and the labeling can be performed using a method for which the technology is well established.

[0033] In the method of the present invention, the method for measuring the amount of TFPI2 using mass spectrometry will be specifically described below. When the sample is blood, it is preferable to pretreat the blood by removing major proteins such as albumin, immunoglobulin, and transferrin, which are abundant in the blood, using Agilent Human 14 or the like, followed by further fractionation by ion exchange, gel filtration, reverse-phase HPLC, etc. Alternatively, TFPI2 can be specifically recovered by an immunological technique using an anti-TFPI2 antibody.

[0034] Measurements can be performed using tandem mass spectrometry (MS / MS), liquid chromatography-tandem mass spectrometry (LC / MS / MS), matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF / MS), surface-enhanced laser desorption ionization mass spectrometry (SELDI-MS), etc.

[0035] The method of the present invention for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from ovarian benign tumors can be applied to a method for treating ovarian malignant tumors. That is, the present invention provides a method for treating ovarian malignant tumors in a patient, comprising: (i) identifying a patient as having a measured amount of TFPI2 that exceeds a predetermined reference value; and (ii) administering treatment to the identified patient. In the identification step (i), the amount of TFPI2 may be measured using an antibody that specifically recognizes NT-TFPI2 and / or intact TFPI2, or may be measured using mass spectrometry. The treatment in the step (ii) includes, but is not limited to, surgical treatment, drug therapy, radiation therapy, and the like.

[0036] <2> A reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors according to the present invention A second aspect of the present invention is a reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinomas) from benign ovarian tumors, comprising an antibody that recognizes NT-TFPI2 and / or intact TFPI2. Such antibodies are preferably antibodies that recognize NT-TFPI2 and intact TFPI2. More specifically, antibodies that bind to an antigenic determinant within the region from the aspartic acid at residue 23 to the histidine at residue 131 or the cysteine ​​at residue 130 of the amino acid sequence shown in SEQ ID NO: 1 are even more preferred. When the reagent of the present invention is used in the sandwich method described above, it is preferable that the antibodies contain two types of antibodies with different epitopes. The antibody contained in the reagent of the present invention may be an antibody itself, may be labeled, or may be immobilized on a solid phase.

[0037] The reagent of the present invention will be specifically described below when used in the two-step sandwich method, which is one embodiment of the sandwich method described above, although the present invention is not limited thereto. First, the reagent of the present invention can be prepared by the following methods (I) to (III). (I) First, of the two antibodies (hereinafter referred to as "Antibody 1" and "Antibody 2") that recognize TFPI2 and have different epitopes, antibody 1 is bound to a carrier capable of B / F (Bound / Free) separation, such as an immunoplate or magnetic particles. The binding method may be physical binding using hydrophobic bonds, or chemical binding using a linker reagent that can crosslink two substances.

[0038] (II) After binding the antibody 1 to the carrier, to prevent non-specific binding, the surface of the carrier is blocked with bovine serum albumin, skim milk, a commercially available blocking agent for immunoassays, or a chemically synthesized polymer for inhibiting protein adsorption, to prepare the primary reagent.

[0039] (III) The other antibody 2 is labeled, and a solution containing the resulting labeled antibody is prepared as a secondary reagent. Substances that can be used to label antibody 2 include enzymes such as peroxidase and alkaline phosphatase, fluorescent substances, chemiluminescent substances, radioisotopes, and other substances that can be detected by a detection device, as well as substances that specifically bind to biotin, such as avidin. Furthermore, the solution of the secondary reagent is preferably a buffer solution that allows for good antigen-antibody reactions, such as phosphate buffer or Tris-HCl buffer. The reagent of the present invention prepared in this manner may be lyophilized if necessary. In the case of the one-step sandwich method, antibody 1 is bound to a carrier and subjected to a blocking treatment as in (I) to (II) above, and a buffer solution containing labeled antibody 2 is further added to the antibody-immobilized carrier to prepare a reagent.

[0040] Next, to detect and measure TFPI2 by the two-step sandwich method using the reagent obtained by the above-mentioned method, the following methods (IV) to (VI) may be used. (IV) The primary reagent prepared in (II) is brought into contact with the sample for a certain period of time at a certain temperature. The reaction conditions are a temperature range of 4°C to 40°C and a time range of 5 to 180 minutes. (V) Unreacted materials are removed by B / F separation, and then the mixture is contacted with the secondary reagent prepared in (III) for a certain time and at a certain temperature to form a sandwich complex. The reaction conditions are a temperature range of 4°C to 40°C and a reaction time of 5 to 180 minutes. (VI) Unreacted substances are removed by B / F separation, the labeled substance of the labeled antibody is quantified, and human TFPI2 in the sample is quantified using a calibration curve prepared using a TFPI2 solution of known concentration as a standard.

[0041] The amounts of reagent components such as antibodies contained in the reagent of the present invention may be appropriately determined depending on various conditions such as the amount of sample, the type of sample, the type of reagent, the measurement method, etc. Specifically, for example, when TFPI2 level is measured by the sandwich method using 20 μL of serum or plasma as a sample as described below, the amount of antibody bound to the carrier may be 100 ng to 1000 μg and the amount of labeled antibody may be 2 ng to 20 μg per reaction system in which 20 μL of the sample is reacted with the antibody.

[0042] The reagent of the present invention can be used for manual measurement and for measurement using an automated immunodiagnostic device, and measurement using an automated immunodiagnostic device is particularly preferred because it allows measurement without being affected by endogenous measurement-interfering factors or competing enzymes contained in the sample and enables TFPI2 in the sample to be quantified in a short period of time.

[0043] Another aspect of the present invention is the use of NT-TFPI2 and / or intact TFPI2 in the production of a reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors. Another aspect of the present invention is the use of NT-TFPI2 and / or intact TFPI2 in detecting malignant ovarian tumors (excluding high-grade serous carcinoma) and differentiating them from benign ovarian tumors. Another aspect of the present invention is NT-TFPI2 and / or intact TFPI2 for use in detecting malignant ovarian tumors (excluding high-grade serous carcinoma) in distinction from benign ovarian tumors.

[0044] Another aspect of the present invention is the use of an antibody that recognizes NT-TFPI2 and / or intact TFPI2 in the manufacture of a reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors. Another aspect of the present invention is the use of antibodies that recognize NT-TFPI2 and / or intact TFPI2 in detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors. Another aspect of the present invention is an antibody that recognizes NT-TFPI2 and / or intact TFPI2, which is used to detect and differentiate ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors. In these aspects, the antibody is preferably an antibody that binds to an antigenic determinant within the region from aspartic acid residue 23 to histidine residue 131 or cysteine ​​residue 130 of the amino acid sequence shown in SEQ ID NO:1. [Example]

[0045] EXAMPLES In the following, examples are shown to specifically explain the present invention, but these examples are merely examples of the present invention and the present invention is not limited to these examples.

[0046] Example 1 Preparation of TFPI2 measurement reagent According to the method of Patent Document 3, a TFPI2 measurement reagent was prepared as follows using a TFPI2 antibody obtained by DNA immunization. (1) Anti-TFPI2 monoclonal antibody (TS-TF04) was physically adsorbed onto a water-insoluble ferrite-containing support at 100 ng / support overnight at room temperature, and then blocked with 100 mM Tris buffer (pH 8.0) containing 1% BSA at 53°C for 4 hours to prepare an anti-TFPI2 antibody-immobilized support. (2) An alkaline phosphatase-labeled anti-TFPI2 antibody was prepared from anti-TFPI2 monoclonal antibody (TS-TF01) using an alkaline phosphatase labeling kit (Dojindo Laboratories). (3) The 12 antibody-immobilized carriers prepared in (1) were placed in a magnetically permeable container (volume 1.2 mL), and 100 μL of a buffer solution (Tris buffer containing 3% BSA, pH 8.0) containing 1 μg / mL of the alkaline phosphatase-labeled antibody prepared in (2) was added, followed by lyophilization to prepare a TFPI2 measurement reagent. The prepared TFPI2 measurement reagent was sealed under a nitrogen atmosphere and stored at 4°C until measurement.

[0047] Example 2: Evaluation of clinical specimens The details of the clinical samples used in this example are shown in Table 1. The 33 sera from benign ovarian tumors and 38 sera from malignant ovarian tumors (excluding high-grade serous carcinoma) were collected using the same protocol at the Department of Obstetrics and Gynecology, Yokohama City University, and were provided with informed consent and approval from the Yokohama City University Ethics Committee.

[0048] [Table 1]

[0049] The evaluation device used was a fully automated enzyme immunoassay device AIA-2000 (manufactured by Tosoh Corporation: manufacturing and sales notification number 13B3X90002000009). Measurement of TFPI2 using the fully automated enzyme immunoassay device AIA-2000 was carried out according to the following procedure. (1) 20 μL of sample and 80 μL of diluent containing a surfactant were automatically dispensed into a container containing the TFPI2 assay reagent prepared in Example 1, (2) Carry out an antigen-antibody reaction at a constant temperature of 37°C for 10 minutes. (3) After B / F separation, wash eight times with a buffer solution containing a surfactant. (4) 4-Methylumbelliferyl phosphate was added, and the concentration of 4-methylumbelliferone produced by alkaline phosphatase per unit time was taken as the measured value (TFPI2 intensity, nmol / (L·s)).

[0050] A calibration curve was prepared using a commercially available TFPI2 recombinant protein (R&D) as a standard, and the TFPI2 concentration in the samples was calculated. CA125 was measured using the E-Test TOSOHII CA125 Measurement Reagent (Tosoh Corporation, Approval Number 20700AMZ00504000).

[0051] Boxplots of blood TFPI2 and CA125 measurements are shown in Figure 1. TFPI2 and CA125 were found to be statistically significantly higher in ovarian malignant tumors (excluding high-grade serous carcinoma) than in benign ovarian tumors (Mann-Whitney U test, p<0.0001). The results of the ROC analysis are shown in Figure 2. The area under the curve (AUC) for TFPI2 was 0.7644, and the AUC for CA125 was 0.7699, demonstrating that TFPI2 has excellent detection performance for ovarian malignant tumors (excluding high-grade serous carcinoma) (distinguishing performance between benign ovarian tumors and malignant ovarian tumors (excluding high-grade serous carcinoma)) comparable to that of CA125.

[0052] Example 3: Comparison of the performance of TFPI2 and CA125 in distinguishing benign from malignant tumors The cutoff value for TFPI2 (191 pg / mL) was determined as the concentration at which the Youden index (specificity + sensitivity - 1) was maximized based on the ROC analysis results in Example 2. For CA125, the cutoff value (35 U / mL) used in clinical practice was used. The discriminatory performance of each marker (sensitivity, specificity, positive predictive value, negative predictive value, positive likelihood ratio, negative likelihood ratio) calculated using a 2 × 2 contingency table is shown in Table 2. TFPI2 was shown to have superior specificity, positive predictive value, and positive likelihood ratio compared to CA125, while CA125 was shown to have superior sensitivity compared to TFPI2.

[0053] [Table 2]

[0054] Example 4: Correlation analysis between TFPI2 and CA125 Based on the results of Example 2, the correlation between TFPI2 and CA125 in benign ovarian tumors or malignant ovarian tumors (excluding high-grade serous carcinoma) was analyzed, and the results are shown in Figure 3. No significant correlation was observed between TFPI2 and CA125 in either benign ovarian tumors or malignant ovarian tumors (excluding high-grade serous carcinoma), suggesting that they can serve as independent indicators.

[0055] Example 5: Evaluation of additional clinical specimens The details of the clinical samples used in this example are shown in Table 3. Seventy-seven sera from benign ovarian tumors and 274 sera from malignant ovarian tumors (excluding high-grade serous carcinoma) were collected using the same protocol at the Department of Obstetrics and Gynecology, Yokohama City University, and were provided with informed consent and approval from the Yokohama City University Ethics Committee.

[0056] [Table 3]

[0057] The evaluation device used was a fully automated enzyme immunoassay device AIA-900 (manufactured by Tosoh Corporation, manufacturing and sales notification number: 13B3X90002000012). Measurement of TFPI2 using the fully automated enzyme immunoassay device AIA-900 was carried out according to the following procedure. (1) 20 μL of sample and 80 μL of diluent containing a surfactant were automatically dispensed into a container containing the TFPI2 assay reagent prepared in Example 1, (2) Carry out an antigen-antibody reaction at a constant temperature of 37°C for 10 minutes. (3) After B / F separation, wash eight times with a buffer solution containing a surfactant. (4) 4-Methylumbelliferyl phosphate was added, and the concentration of 4-methylumbelliferone produced by alkaline phosphatase per unit time was taken as the measured value (TFPI2 intensity, nmol / (L·s)). A calibration curve was prepared using a commercially available TFPI2 recombinant protein (R&D) as a standard, and the TFPI2 concentration in the samples was calculated. CA125 was measured using the E-Test "TOSOH" II (CA125) assay reagent (Tosoh Corporation, approval number: 20700AMZ00504000). Boxplots of blood TFPI2 and CA125 measurements are shown in Figure 4. TFPI2 and CA125 were found to be statistically significantly higher in ovarian malignant tumors (excluding high-grade serous carcinoma) than in benign ovarian tumors (Mann-Whitney U test, p<0.0001).

[0058] The results of the ROC analysis are shown in Figure 5. The area under the curve (AUC) for TFPI2 was 0.749, and the AUC for CA125 was 0.761, demonstrating that TFPI2 has excellent detection performance for ovarian malignant tumors (excluding high-grade serous carcinoma) (distinguishing performance between benign ovarian tumors and malignant ovarian tumors (excluding high-grade serous carcinoma)) comparable to that of CA125.

[0059] Example 6: Comparison of the performance of TFPI2 and CA125 in distinguishing benign from malignant cases in additional specimens The cutoff values ​​for TFPI2 and CA125 were the same as those used in Example 3 (TFPI2: 191 pg / mL, CA125: 35 U / mL). The discriminatory performance of each marker (sensitivity, specificity, positive predictive value, negative predictive value, positive likelihood ratio, negative likelihood ratio) calculated using a 2 × 2 contingency table is shown in Table 4. As in Example 3, TFPI2 was shown to be superior to CA125 in specificity, positive predictive value, and positive likelihood ratio, while CA125 was shown to be superior to TFPI2 in sensitivity.

[0060] [Table 4]

[0061] Example 7: Correlation analysis of TFPI2 and CA125 in additional samples Based on the results of Example 5, the correlation between TFPI2 and CA125 in benign ovarian tumors or malignant ovarian tumors (excluding high-grade serous carcinoma) was analyzed and the results are shown in Figure 6. No significant correlation was observed between TFPI2 and CA125 in either benign ovarian tumors or malignant ovarian tumors (excluding high-grade serous carcinoma), suggesting that they can serve as independent indicators. [Industrial Applicability]

[0062] The present invention provides a method for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from benign ovarian tumors using a simple blood test that places a relatively small burden on patients. This is expected to contribute to the diagnosis of ovarian malignant tumors, which currently rely on diagnostic imaging due to the lack of effective tumor markers, and is therefore extremely useful industrially.

Claims

1. A method for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from ovarian benign tumors, comprising measuring the amount of TFPI2 in a specimen, Differentiating ovarian malignant tumors (excluding high-grade serous carcinoma) from ovarian benign tumors involves only distinguishing whether the ovarian tumor is malignant or benign, When the measured value of the amount of TFPI2 exceeds a predetermined reference value, ovarian malignant tumor (excluding high-grade serous carcinoma) is detected.

2. 2. The method of claim 1, wherein the amount of TFPI2 is the sum of the amount of TFPI2 processing polypeptide and the amount of intact TFPI2.

3. 3. The method according to claim 1, wherein the amount of TFPI2 is measured by an antigen-antibody reaction using an antibody that binds to an antigenic determinant within the region from the 23rd aspartic acid residue to the 131st histidine residue or the 130th cysteine ​​residue of the amino acid sequence of SEQ ID NO:

1.

4. The method according to claim 3, wherein the antibody is an antibody that recognizes Kunitz domain 1 of TFPI2.

5. 3. The method of claim 1, wherein the measurement is performed using mass spectrometry.

6. The method according to any one of claims 1 to 5, further comprising a method for detecting an ovarian cancer marker other than TFPI2 in combination.

7. A reagent for detecting and differentiating ovarian malignant tumors (excluding high-grade serous carcinomas) from ovarian benign tumors, the reagent comprising an antibody that binds to an antigenic determinant within a region from aspartic acid at residue 23 to histidine at residue 131 or cysteine ​​at residue 130 of the amino acid sequence shown in SEQ ID NO: 1, A reagent that can differentiate ovarian malignant tumors (excluding high-grade serous carcinoma) from ovarian benign tumors, and can only distinguish whether an ovarian tumor is malignant or benign.

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