Immunohistochemistry (IHC) protocols and methods for diagnosing and treating cancer

A standardized IHC method using monoclonal mouse anti-Ki-67 antibodies and defined scoring criteria addresses the reproducibility issues in Ki-67 expression assessment, enhancing clinical applicability and treatment efficacy by identifying suitable patient populations for cyclin-dependent kinase inhibitors.

JP7832929B2Active Publication Date: 2026-03-18AGILENT TECHNOLOGIES INC +1
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Patent Information

Application Number
JP2023514981
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-17
Filing Date
2021-09-08
Publication Date
2026-03-18
Estimated Expiration
2041-09-08

AI Technical Summary

Technical Problem

Current immunohistochemistry (IHC) methods for determining Ki-67 expression in cancer tissues lack standardization and reproducibility, limiting their clinical applicability due to variability in staining techniques and scoring methods, particularly in defining the lower limit of positivity.

Method used

A standardized IHC method using monoclonal mouse anti-Ki-67 antibodies, such as clone MIB-1, with defined criteria for nuclear staining intensity and location, and a scoring system that calculates the Ki-67 score (%) by dividing the number of stained cells by the total viable cells, excluding specific cell types, to determine diagnostically positive or negative expression.

Benefits of technology

Provides reliable and reproducible assessment of Ki-67 expression, enabling accurate identification of patients likely to respond to cancer treatments like cyclin-dependent kinase inhibitors, thereby improving clinical decision-making and treatment efficacy.

✦ Generated by Eureka AI based on patent content.

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Abstract

In alternative embodiments, there is provided an immunohistochemistry (IHC) method for determining and reproducibly scoring the nuclear expression level of protein Ki-67 (also known as MKI67) in tissue samples.In alternative embodiments, there is provided a method for diagnosing, treating, or improving cancer or tumor, or assessing the risk of its recurrence, using the IHC method provided herein.In alternative embodiments, there is provided a kit, which includes components and instructions for carrying out the method provided herein.
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Description

Technical Field

[0001] [Related Applications] This Patent Cooperation Treaty (PCT) international patent application claims the benefit of priority under 35 U.S.C. § 119(e) to U.S. Provisional Patent Application No. (USSN) 63 / 076,079, filed Sep. 9, 2020; and USSN 63 / 114,949, filed Nov. 17, 2, which are hereby expressly incorporated by reference in their entirety and for all purposes.

[0002] The present invention generally relates to cancer therapy, companion or complementary diagnostics, and immunohistochemistry. In alternative embodiments, an immunohistochemistry (IHC) method is provided for determining and reproducibly scoring the degree of nuclear expression of the protein Ki-67 (also known as MKI67) in a tissue sample. In alternative embodiments, methods are provided for diagnosing, treating or ameliorating cancer or a tumor, or assessing the risk of its recurrence, using the IHC method provided herein. In alternative embodiments, kits are provided that include components and instructions for practicing the methods provided herein. This application describes methods for scoring Ki-67 expression and for using the score as a companion or complementary diagnostic, or for treating or ameliorating cancer or a tumor.

Background Art

[0003] The Ki-67 antigen (also known as the antigen identified by the monoclonal antibody Ki-67) is a nuclear protein expressed during all active phases of the mammalian cell cycle (G1, S, G2, and M phases) and downregulated in the resting cell phase (G0 phase). During interphase, the antigen can be detected exclusively in the nucleus, while during mitosis, most of the protein is rearranged to the surface of chromosomes. The localization of the Ki-67 antigen correlates with its individual function. During interphase, Ki-67 is required for normal cell distribution and nucleolar assembly of heterochromatin. During mitosis, Ki-67 plays a role in the formation of the perichromosomal layer and prevents condensation of mitotic chromosomes. As the cell enters a non-proliferative state, the antigen is rapidly degraded, and during DNA repair processes, Ki-67 expression appears to be absent, detectable by immunohistochemistry (IHC). [Overview of the project]

[0004] According to an alternative embodiment, an immunohistochemistry (IHC) method for determining and scoring the degree of nuclear expression of the protein Ki-67 (also known as MKI67) in a tissue sample, wherein the method is: (a) A step of staining a tissue sample with an antibody that specifically binds to Ki-67, and (b) Determining the total number of viable invasive tumor cells or cancer cells with anti-Ki-67 nuclear staining, and determining the total number of stained and unstained viable invasive tumor cells or cancer cells in at least a portion of the tissue sample, wherein if there is reliable and complete anti-Ki-67 nuclear staining and the invasive tumor cells or cancer cells exhibit any intensity of anti-Ki-67 nuclear staining above a defined threshold, the invasive tumor cells or cancer cells are counted as stained as anti-Ki-67 positive, and (c) A step to determine the Ki-67 score (%), where the Ki-67 score (%) is the number obtained by dividing the number of Ki-67 stained viable invasive tumor cells or cancer cells found in the tissue sample by the total number of stained and unstained viable invasive tumor cells or cancer cells and multiplying by 100. The IHC Act, including the provision of the IHC Act, is available.

[0005] In an alternative embodiment of the IHC method provided herein, - The tissue section is deemed suitable for evaluation if it contains approximately 100 or more viable invasive tumor or cancer cells stained with Ki-67, and the tissue section is considered suitable for evaluation. - The Ki-67 score (%) is calculated by dividing the number of Ki-67-stained surviving invasive tumor cells or cancer cells found in a tissue sample by the total number of stained and unstained surviving invasive tumor cells or cancer cells, and multiplying by 100; - If there is definite and complete anti-Ki-67 nuclear staining, and the invasive tumor cells or cancer cells exhibit anti-Ki-67 nuclear staining of any intensity higher than 1+, then the invasive tumor cells or cancer cells are counted as stained as anti-Ki-67 positive; - Sections or portions of the tissue sample are prepared on a slide or equivalent, and the sections or portions of the tissue sample are stained on the slide; - Antibodies that specifically bind to Ki-67 include monoclonal mouse anti-Ki-67 antibodies; - Anti-Ki-67 includes monoclonal mouse anti-Ki-67 clone MIB-1 (available from Agilent Technologies, Inc., Santa Clara, CA); - Anti-Ki-67 contains substantially isolated or substantially purified monoclonal mouse anti-Ki-67 clone MIB-1k; - The total number of viable invasive tumor cells or cancer cells stained with Ki-67 is assessed under high magnification; - High magnification is at least about 10x magnification, or about 10x to 40x magnification, or about 10x to 60x magnification; - If there is definite and complete anti-Ki-67 nuclear staining, and invasive tumor cells and cancer cells are counted as having anti-Ki-67 nuclear staining of 1+ or any intensity higher, then invasive tumor cells or cancer cells are counted as stained as anti-Ki-67 positive; - (a) The staining signal is clearly brown, or (b) Staining matches the nucleus, or (c) Staining covers the entire chromatin distribution within the nucleus, or (d) Cells exhibiting a gray color in the nucleus are considered not to have been stained with anti-Ki-67, or (e) Any combination of two or more of (a) to (d) In this case, there is definite and complete anti-Ki-67 nuclear staining, as well as anti-Ki-67 nuclear staining of any intensity, 1+ and higher; - If a cell is considered not stained with anti-Ki-67, then definite and complete anti-Ki-67 nuclear staining is present, as well as anti-Ki-67 nuclear staining of any intensity 1+ or higher, provided that (a) the staining signal is clearly brown, (b) the staining is consistent with the nucleus, (c) the staining covers the entire chromatin distribution within the nucleus, and (d) the nucleus is gray. - The method further includes, from calculating the Ki-67 score (%), excluding tumor cells or cancer cells having only cytoplasmic or membrane staining; non-invasive neoplasms or carcinoma in situ cells, non-viable or necrotic tumor cells or cancer cells, apoptotic nuclei or nuclear debris, tumor cells or cancer cells in poorly preserved tissue areas, benign epithelial cells, non-neoplastic cells and / or lymphocytes with nuclear staining, apoptotic cells, necrotic cells, cells that do not exhibit the intended color, cells in which staining reflecting antibody binding to Ki-67 is absent throughout the chromatin distribution in the nucleus, cells exhibiting membrane staining, cells exhibiting cytoplasmic staining, lymphocytes, and stromal cells; - If staining due to edge artifacts is inconsistent with the rest of the tissue sample, cells at the edges of the tissue sample will not be scored; - In step (b) determining whether a tissue section is suitable for determining and scoring the amount of nuclear expression of protein Ki-67, one parameter considered is that if there are approximately 200 or more viable invasive tumor cells, the tissue section is suitable for evaluation; - In step (d), (i) if the Ki-67 score (%) is less than 20% (<), the tissue sample is determined to have diagnostically negative Ki-67 expression; (ii) if the Ki-67 score (%) is greater than or equal to 20% (≧), the tissue sample is determined to have diagnostically positive Ki-67 expression; - Tissue samples include formalin-fixed paraffin-embedded (FFPE) specimens; or tissue sample sections are prepared by a protocol that includes fixation in approximately 10% neutral buffered formalin for approximately 6–72 hours; - The tumor or cancer is breast cancer or mammary carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma, or the tumor or cancer is invasive or metastatic mammary carcinoma or mammary carcinoma; and / or - The tissue sample is a biopsy sample, or the tissue sample is a needle biopsy sample or derived therefrom, or the tissue sample is a fine-needle aspirate, cytological specimen, or bone decalcification sample or derived therefrom.

[0006] In an alternative embodiment, a method for treating or improving cancer or tumor in a patient is provided, comprising the step of determining and scoring the amount of nucleoprotein Ki-67 (also known as MKI67) in a patient-derived tissue sample requiring it using an IHC method provided herein, wherein if the tissue sample is determined or scored to have high or diagnostically positive Ki-67 expression, the patient is treated with a cancer treatment that the patient may preferably respond to. In an alternative embodiment, the tumor or cancer is breast carcinoma or breast cancer, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma. In an alternative embodiment, the breast carcinoma or breast cancer is early-stage breast cancer or breast carcinoma. In an alternative embodiment, the breast carcinoma or breast cancer is invasive or metastatic breast carcinoma or breast cancer.

[0007] In an alternative embodiment, a method is provided for treating or improving cancer or tumor in an individual requiring it, comprising the steps of: (a) determining whether cells in a tissue sample derived from the individual requiring it have a low or high, or negative or diagnostically positive Ki-67 expression score (%), as determined by a protocol including the use of an immunohistochemistry (IHC) method provided herein; and (b) if the tissue sample is found to have a high or diagnostically positive Ki-67 expression score (%), administering the individual a tumor or cancer treatment. In an alternative embodiment, the cancer or tumor is a breast carcinoma, or the cancer or tumor is an early-stage breast cancer, or the cancer or tumor is an invasive or metastatic breast carcinoma. In an alternative embodiment, the treatment or improvement of the cancer or tumor comprises the step of administering a pharmaceutical formulation comprising an ATP competitive inhibitor of cyclin-dependent kinases to the individual requiring it. In an alternative embodiment, the pharmaceutical formulation comprises ATP competitive inhibitors of cyclin-dependent kinases 4 and 6. In an alternative embodiment, the ATP competitive inhibitors of cyclin-dependent kinases 4 and 6 include abemaciclib. In an alternative embodiment, treatment or improvement of cancer or tumor includes the step of administering a pharmaceutical formulation comprising palbociclib (optionally, IBRANCE® or PALBONIX®) or ribociclib (optionally, KISQUALI®) to an individual in need. In an alternative embodiment, treatment or improvement of cancer includes the step of administering a pharmaceutical formulation comprising an ATP competitive inhibitor of cyclin-dependent kinases in combination with endocrine therapy to an individual in need. In an alternative embodiment, the individual in need is a patient with breast cancer, or a patient with early-stage breast cancer, or a patient with lymph node-positive, early-stage, excised hormone receptor-positive (HR+), human epidermal growth factor receptor 2-negative (HER2-) breast cancer at high risk of recurrence.

[0008] In an alternative embodiment, a method is provided for treating or improving breast cancer in a breast cancer patient, comprising the steps of: determining whether cells in a tissue sample have a low or high, or diagnostically negative or diagnostically positive Ki-67 expression score (%), as determined by a protocol including the use of an immunohistochemistry (IHC) method provided herein; and, if the Ki-67 expression score (%) is high or diagnostically positive, administering a cancer treatment. In an alternative embodiment, the breast cancer patient has hormone receptor-positive (HR+) breast cancer after surgery. In an alternative embodiment, the breast cancer patient receives adjuvant endocrine therapy.

[0009] In an alternative embodiment, a method is provided for assessing the degree of Ki-67 expression in a tumor or cancer, comprising the steps of: contacting a tissue sample or portion thereof derived from an individual having a tumor or cancer with an antibody or portion thereof that specifically binds to Ki-67; and determining a Ki-67 score (%) by dividing the number of Ki-67-stained surviving tumor cells or cancer cells specifically bound by the antibody by the total number of stained and unstained surviving cancer cells or tumor cells, multiplying the result by 100, thereby obtaining a Ki-67 score (%).

[0010] In an alternative embodiment of a method for assessing the degree of Ki-67 expression in tumors or cancer, - Cancer cells or tumor cells are invasive breast cancer cells that survive; - The method further includes a step of determining whether the Ki-67 score (%) is 10 or greater, or a step of determining whether the Ki-67 score (%) is 20 or greater; - The step of determining the number of Ki-67-positive surviving tumor cells or cancer cells includes the step of determining the number of surviving tumor cells or cancer cells that have Ki-67 staining in the nucleus; - The step of determining the number of Ki-67-positive surviving tumor cells or cancer cells includes determining the number of surviving tumor cells or cancer cells that have Ki-67 staining across the entire chromatin distribution in the nucleus; - The method further comprises the step of determining whether the color reflecting the binding of the antibody to Ki-67 is an intended color, optionally, the intended color is brown, and optionally, the brown color is produced by staining with 3,3'-diaminobenzidine (DAB); - The method further includes the step of excluding from Ki-67-positive tumor or cancer cells at least one type of cell selected from the group consisting of: tumor or cancer cells having only cytoplasmic or membrane staining; non-invasive neoplasms or carcinoma in situ cells, non-viable or necrotic tumor or cancer cells, apoptotic nuclei or nuclear debris, tumor or cancer cells in poorly preserved tissue areas, benign epithelial cells, non-neoplastic cells and / or lymphocytes with nuclear staining, apoptotic cells, necrotic cells, cells that do not exhibit the intended color, cells in which staining reflecting antibody binding to Ki-67 is absent throughout the chromatin distribution in the nucleus, cells exhibiting membrane staining, cells exhibiting cytoplasmic staining, lymphocytes, and stromal cells; - The method further includes the step of excluding from the portion of the tissue sample used to determine the Ki-67 score (%) portions any portion of the tissue sample that exhibits at least one artifact selected from the group consisting of distorted morphology, poor fixation, crushing, and cauterization artifacts; - The Ki-67 score (%) is calculated based on a portion of the tissue sample containing at least 100 cells, or the Ki-67 score (%) is calculated based on a portion of the tissue sample containing at least 200 cells; - The method further includes a step of administering cancer treatment based on the Ki-67 score (%); - The cancer treatment is an ATP competitive inhibitor of cyclin-dependent kinase, and optionally, the ATP competitive inhibitor of cyclin-dependent kinase is abemaciclib, and optionally, the cancer treatment includes palbociclib (optionally, IBRANCE® or PALBONIX®) or ribociclib (optionally, KISQUALI®); - The tissue samples are from patients with lymph node-positive, early-stage, excised hormone receptor-positive (HR+), human epidermal growth factor receptor 2-negative (HER2-) breast cancer; - The method further comprises the step of determining whether a subject is likely to respond favorably to treatment with a cancer treatment if the Ki-67 score (%) is above a threshold, wherein the threshold is optionally approximately 1%, 5%, 10%, 20%, 30%, 40%, 50%, or any number between 1% and 50%; - The cancer treatment is a cyclin-dependent kinase inhibitor, and optionally, the cyclin-dependent kinase inhibitor is a CDK4 or CDK6 inhibitor, and optionally, the cyclin-dependent kinase inhibitor is abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®); - Cancer is breast cancer or mammary carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma, and optionally, cancer is metastatic breast cancer; and / or - The method further includes a step of administering a cancer treatment if the Ki-67 score (%) is above a threshold, and optionally, the method further includes a step of administering a treatment other than a cyclin-dependent kinase inhibitor if the Ki-67 score (%) is below a threshold.

[0011] In alternative embodiments, kits are provided that include an antibody that specifically binds to Ki-67, and scoring guidelines that include the methods provided herein; optionally, the kit includes scoring guidelines that include (or are described in) the methods provided herein. In alternative embodiments, the kit further includes images showing multiple Ki-67 staining levels. In alternative embodiments, the kit further includes an image depicting staining of the entire nuclear chromatin distribution.

[0012] Details of one or more exemplary embodiments of the invention are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the invention will be apparent from the description and drawings, and from the claims.

[0013] All publications, patents, and patent applications cited herein are hereby expressly incorporated by reference in their entirety for all purposes.

Brief Description of the Drawings

[0014] This patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawings will be provided by the Office upon request and payment of the necessary fee.

[0015] The drawings described herein are examples of the exemplary embodiments provided herein and are not intended to limit the scope of the invention encompassed by the claims.

[0016] The figures are described in detail herein.

[0017] Like reference symbols in the various drawings indicate like elements.

Modes for Carrying Out the Invention

[0018] In an alternative embodiment, an immunohistochemistry (IHC) method is provided for determining and reproducibly scoring the degree of nuclear expression of protein Ki-67 (also known as MKI67) in tissue samples such as biopsies. In an alternative embodiment, the IHC method provided herein provides a reliable, standardized, reproducible, and harmonized methodology for assessing the degree of nuclear expression of protein Ki-67, thus creating greater interlaboratory and inter-investigation comparability and enabling earlier and more effective application of Ki-67 in clinical practice. In an alternative embodiment, the IHC method provided herein provides high-quality staining and reliable diagnostic assessment.

[0019] In alternative embodiments, the methods and compositions described herein are used to assist in identifying patients with early-stage breast cancer at high risk of recurrence, and treatment with abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®), or other cyclin-dependent kinase inhibitors is considered in combination with standard adjuvant endocrine therapy. The methods provided herein enable pathologists and laboratory personnel to achieve accurate and reproducible results in assessing Ki-67 expression in formalin-fixed paraffin-embedded (FFPE) breast cancer specimens. In alternative embodiments, the methods provided herein provide Ki-67 expression assessments that can be used to identify patients eligible for cancer treatment.In some embodiments, cancer or tumors include breast cancer or mammary carcinoma (see, e.g., Dowsett, M ​​et al., JNCI, Vol.103, Issue 2, Nov 16, 2011), head and neck cancer (see, e.g., Ahmed et al., Int J Biol Markers. 2016 May 28;31(2):193-203), colorectal cancer (see, e.g., Li et al., Mol Med Rep. 2015 Mar;11(3):1566-72), bladder cancer (see, e.g., He et al., BMJ Open. 2018 Apr 17;8(4):e019635), lung cancer (see, e.g., Wei et al., 2018, Respir Res. Aug 13;19(1):150), gastrointestinal stromal tumors (GIST) (see, e.g., Zhou et al. It may be prostate cancer (see, for example, Berlin et al., 2017, Urol Oncol. Aug; 35(8): 499-506), cervical cancer (see, for example, Silva et al., 2017, Pathol Res Pract. Jul; 213(7): 723-729), or renal cell carcinoma (see, for example, Xie et al., 2017 Sci Rep. Mar 13; 7: 44281). In some embodiments, the method may be used to treat or improve breast cancer by administering the drug abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®), or other cyclin-dependent kinase inhibitors such as CDK4 or CDK6 inhibitors.

[0020] In an alternative embodiment, a method is provided for diagnosing, treating, or improving cancer or tumors such as breast cancer or mammary gland carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma, including the use of the IHC method provided herein. In an alternative embodiment, a kit is provided comprising components and instructions for use for practicing the IHC method provided herein.

[0021] In breast cancer, immunohistochemical (IHC) assessment of the percentage of cells staining for the nuclear antigen Ki67 is the most widely used method for comparing growth between tumor samples. Ki67 is measured in these scenarios for clinical studies, including as a primary efficacy endpoint for clinical trials, or for clinical management. Currently, the vast variability in analytical practice significantly limits the value of Ki67 in each of these contexts. For example, 17 out of 18 studies involving more than 200 patients showed a statistically significant association between Ki67 and prognosis, providing strong evidence of a biological relationship, but the cutoffs for distinguishing "high Ki67" from "low Ki67" varied from 1% to 28.6%, thereby severely limiting its clinical applicability (see, e.g., Urruticoechea et al J Clin Oncol. 2005;23(28):7212-7220).Ki-67 detection is Dowsett,M et al.,JNCI,Vol.103,Issue 2,Nov 16,2011,Leung et al.,npj Breast Cancer,May 18,2016,T Harris LN,Ismaila N,McShane LM,Hayes DF.Use of Biomarkers to Guide Decisions on Adjuvant Systemic Therapy for Women With Early-Stage Invasive Breast Cancer:American Society of Clinical Oncology Clinical Practice Guideline Summary.J Oncol Pract 2016;12(4):384-9 doi:10.1200 / JOP.2016.010868(published Online First:Epub Date), Polley MY,Leung SC,McShane LM,et al.An international Ki67 reproducibility study.J Natl Cancer Inst It is also described in 2013;105(24):1897-906 doi:10.1093 / jnci / djt306) and Polley MY, Leung SC, Gao D, et al. An international study to increase concordance in Ki67 scoring. Mod Pathol 2015;28(6):778-86 doi:10.1038 / modpathol.2015.38. Despite the considerable effort spent over the past 30 years to evaluate Ki67 as a prognostic and / or predictive marker, this biomarker remains not fully incorporated into clinical decision-making, mainly due to a lack of standardization and reproducibility in staining techniques and Ki67 scoring methods.

[0022] Ki-67 is a nuclear staining method. One of the problems pathologists and those using nuclear staining methods have encountered is defining and identifying the lower limit of positivity. For example, the ASCO / CAP guidelines for Estrogen Receptor and Progesterone Receptor (Hammond ME et al, Arch Pathol Lab Med, Vol 134, July 2010) describe that intensity should be reported and can be used as a way to measure assay quality over time. However, they do not provide guidance on how to assess this intensity, except that they define three buckets: strong, moderate, and weak. Furthermore, there is no definition of the lower limit of positivity; that is, how to define what is positive (or diagnostically positive) and what is negative (or diagnostically negative). In the case of cells at the lower limit of detection, casearily referred to as gray cells, it can be difficult for the scorer to determine what is a positive or negative cell. This can be true of any nuclear staining method that has a dynamic range of assays dealing with the level of detection by a human observer. The scoring method provided herein defines this lower limit of detection by the presence of staining and the location where the staining occurs (at the cellular level); therefore, the difficulty associated with determining the intensity (level of staining) is translated into a question about the location where the staining occurs.

[0023] Some embodiments describe a method for identifying subjects who may be likely to respond favorably to cancer treatments such as cyclin-dependent kinase inhibitors by calculating a Ki-67 score (%) and determining whether the score (%) exceeds a threshold. In some embodiments, the Ki-67 score (%) is calculated using the following equation:

number

[0024] In some embodiments, the threshold is approximately 1%, approximately 5%, approximately 10%, approximately 20%, approximately 30%, approximately 40%, approximately 50%, or any approximate number between 1% and 50%. In some embodiments, the cyclin-dependent kinase inhibitor is abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®). In some embodiments, the cancer is breast cancer or mammoma, head and neck cancer, colorectal cancer or bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma. In some embodiments, the cancer is metastatic breast cancer. In some embodiments, the method further includes the step of administering a cancer treatment if the Ki-67 score (%) is above the threshold. In some embodiments, the method further includes the step of administering a treatment other than a cyclin-dependent kinase inhibitor if the Ki-67 score (%) is below the threshold.

[0025] In alternative embodiments, when using the IHC methods and exemplary scoring guidelines provided herein, the lower limit of positivity is determined not by the lower limit of positivity itself, but rather by the staining of cells and the presence or absence of staining. In alternative embodiments, the IHC methods provided herein include the use of an exemplary set of rules that define what is staining and ask the scorer / pathologist where that staining is present.

[0026] In alternative embodiments, the methods and kits provided herein are used for in vitro diagnostic use. In alternative embodiments, the Ki-67 IHC provided herein is an immunohistochemical (IHC) assay using an anti-Ki-67 antibody, such as monoclonal mouse anti-Ki-67 clone MIB-1, for the detection of Ki-67 protein in formalin-fixed paraffin-embedded (FFPE) tissue samples, such as breast cancer tissue samples. In alternative embodiments, the EnVision FLEX® visualization system at Dako OMNIS® is used. Figure 1 shows FFPE breast cancer tissue stained with the Ki-67 IHC method provided herein using monoclonal mouse anti-Ki-67 clone MIB-1, visualized at 10× magnification.

[0027] In alternative embodiments, the Ki-67 IHC provided herein is used to assist in identifying patients with tumors or cancers, such as early-stage cancers like breast cancer at high risk of recurrence. For breast cancer patients, treatment with abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), ribociclib (optionally, KISQUALI®), or other cyclin-dependent kinase inhibitors such as CDK4 or CDK6 inhibitors is considered in combination with standard adjuvant endocrine therapy.

[0028] In an alternative embodiment, the patient population to be considered for abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), ribociclib (optionally, KISQUALI®), or other cyclin-dependent kinase inhibitors such as CDK4 or CDK6 inhibitors in adjuvant settings in combination with endocrine therapy is patients with lymph node-positive, early-stage, excised hormone receptor-positive (HR+), human epidermal growth factor receptor 2-negative (HER2-) breast cancer at high risk of recurrence.

[0029] In an alternative embodiment, the Companion Diagnostic Indication is: The filename is JPEG0007832929000002.jpg46170.

[0030] In an alternative embodiment, the Ki-67 IHC provided herein is an immunohistochemical assay that determines Ki-67 expression in cancer or tumors, such as breast cancer or mammary carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma, by using an exemplary Ki-67 score (%) provided herein (which is the number obtained by dividing the number of surviving invasive tumor cells stained with Ki-67 by the total number of surviving invasive tumor cells and multiplying by 100). In an alternative embodiment, a cancer or tumor tissue specimen to be tested for Ki-67 expression, such as breast cancer or mammary carcinoma, is scored based on the overall tissue score and divided into Ki-67 expression levels. Ki-67 score (%) less than 20% (<): Low Ki-67 expression or diagnostically negative. Ki-67 score greater than or equal to 20% (≧) (%): High Ki-67 expression, or diagnostically positive.

[0031] In an alternative embodiment, Ki-67 expression levels are used to provide information regarding patient eligibility for cancer drug therapy, such as the drug abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®), or other cyclin-dependent kinase inhibitors such as CDK4 or CDK6 inhibitors, for the treatment of breast cancer.

[0032] <Products and Kits> Products and kits for practicing the methods provided herein are provided, including, for example, an anti-Ki-67 antibody such as a mouse anti-Ki-67 monoclonal mouse antibody like clone MIB-1, and / or reagents for practicing IHC, including, for example, those described herein (see Example 1); optionally, the products and kits may further include instructions for use for practicing the methods provided herein.

[0033] Any of the above aspects and embodiments may be combined with any other aspects or embodiments disclosed herein in the Abstract, Figures, and / or Detailed Description sections.

[0034] As used herein and in the claims, the singular forms "a," "an," and "the" include plural referents unless otherwise clearly indicated by the context.

[0035] Unless otherwise specifically stated or evident from the context, the term “or” as used herein is understood to be inclusive and encompass both “or” and “and.”

[0036] Unless otherwise specifically stated or evident from the context, the term “about” as used herein is understood to mean within the range of ordinary acceptance in the art, for example, within two standard deviations of the mean. “About” (in the use of the term “about”) may be understood to mean within 25%, 24%, 23%, 22%, 21%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.1%, 0.05%, or 0.01% of the stated value. Unless otherwise evident from the context, all numerical values ​​provided herein are modified by the term “about”.

[0037] Unless otherwise specifically stated or evident from the context, the terms “substantially all,” “substantially most,” “substantially all,” or “majority” as used herein encompass at least about 90%, 95%, 97%, 98%, 99%, or 99.5% or more of the reference amount of the composition.

[0038] Each patent, patent application, publication, and document referenced herein in its entirety constitutes part of this Specified. The references to the aforementioned patents, patent applications, publications, and documents do not constitute an understanding that any of them are relevant prior art, nor do they constitute any understanding of the content or date of such publications or documents. The incorporation of these documents by reference should not be independently construed as an assertion or understanding that any part of the content of any document is considered essential material for satisfying the disclosure requirements of any national or local government for a patent application. Nevertheless, with respect to any reliance on any of such documents, the right is reserved to provide, where appropriate, material that is considered essential to the subject matter in question by the examining authority or court.

[0039] Modifications to those described herein can be made without departing from the basic aspects of the present invention. Although the present invention is described in substantial detail with reference to one or more specific embodiments, those skilled in the art will recognize that variations can be made to the embodiments specifically disclosed herein, and that these modifications and improvements will fall within the scope and spirit of the invention. The inventions described herein exemplary can be adequately practiced in the absence of any elements not specifically disclosed herein. Thus, for example, in any case herein, any of the terms “includes,” “essentially consists of,” and “consists of” can be replaced with any of the other two terms. Thus, it is recognized that the terms and expressions used are used as descriptive terms and not as restrictive terms, that no equivalents or parts of the characteristics shown and described are excluded, and that various modifications are possible within the scope of the invention. Embodiments of the present invention are specified in the following claims.

[0040] The present invention is further described with reference to the examples described herein, but it should be understood that the present invention is not limited to such examples. [Examples]

[0041] Unless otherwise described in the examples, all recombinant DNA techniques are performed according to the standard protocols described, for example, Sambrook et al. (2012) Molecular Cloning: A Laboratory Manual, 4th Edition, Cold Spring Harbor Laboratory Press, NY, and Volumes 1 and 2 of Ausubel et al. (1994) Current Protocols in Molecular Biology, Current Protocols, USA. Other references on standard molecular biology techniques include Sambrook and Russell (2001) Molecular Cloning: A Laboratory Manual, Third Edition, Cold Spring Harbor Laboratory Press, NY, and Volumes I and II of Brown (1998) Molecular Biology LabFax, Second Edition, Academic Press (UK).

[0042] [Example 1: Exemplary methods and kits provided herein] In an alternative embodiment, a method is provided for assessing the degree of Ki-67 expression in a tumor or cancer, the method comprising the steps of contacting a tissue sample or portion thereof from an individual having a tumor or cancer with an antibody or portion thereof that specifically binds to Ki-67, and determining a Ki-67 score (%), wherein the score is obtained by multiplying the result of dividing the number of surviving tumor or cancer cells stained with Ki-67 specifically bound by the antibody by the total number of stained and unstained surviving cancer or tumor cells by 100.

[0043] In one embodiment, the exemplary Ki-67 IHC provided herein is a modular assay configured for the Dako OMNIS® workflow and contains a ready-to-use (RTU) optimized purified primary antibody and negative control reagent (NCR). Deparaffinization, rehydration, and targeted retrieval are performed in a Dako OMNIS® automated staining instrument using a two-step incubation of CLEARIFY® followed by a low pH targeted retrieval solution (TRS). The specimen is then incubated with a monoclonal antibody or NCR against Ki-67 before a peroxidase block. Following incubation with the primary antibody / NCR and peroxidase block, the specimen is incubated with a ready-to-use visualization reagent consisting of a secondary antibody molecule and a horseradish peroxidase molecule conjugated to a dextran polymer backbone. The subsequent enzymatic conversion of the added chromogen (e.g., 3,3'-diaminobenzidine (DAB) chromogen) results in a visible precipitate of the reaction product at the antigen site. The specimen can then be counterstained and covered with a coverslip. The results are interpreted using a bright-field microscope. The Ki-67 IHC provided herein can be used in automated staining, for example, using a Dako OMNIS® instrument.

[0044] Figure 2 schematically illustrates an exemplary staining procedure.

[0045] In one exemplary embodiment of Ki-67 IHC configured for the Dako OMNIS™ workflow, the following reagents are required for multiple individual runs: 1. Primary antibody: Purified monoclonal mouse anti-Ki-67, clone MIB-1 RTU 2. Negative control reagent RTU

[0046] The following Dako OMNIS® bulk and visualization reagents are also required: EnVision FLEX, High pH (Dako OMNIS®) (code GV800) or EnVision Mini Kit, High pH (Dako OMNIS®) contains EnVision FLEX DAB+ pigment (Dako OMNIS®). EnVision FLEX (trademark) peroxidase blocking reagent (Dako OMNIS (trademark)) EnVision FLEX™ Substrate Buffer (Dako OMNIS™) EnVision FLEX(TM) Visualization Reagent (Dako OMNIS(TM)) EnVision FLEX™ Target Activation Solution, Low pH (50×) (Dako OMNIS™) Hematoxylin (Dako OMNIS® trademark) Wash buffer (20x) (Dako OMNIS(TM)) CLEARIFY® Cleaning Agent (Dako OMNIS®) Dako OMNIS(TM) Sulfuric Acid, 0.3M

[0047] In the exemplary protocol, specimens must be handled in a manner that preserves the tissue for immunohistochemical staining; intact tumor morphology is to be determined, and the presence of sufficient tumor cells is assessed. Standard tissue processing methods are used for all specimens.

[0048] <Example specimen preparation protocol> In an alternative embodiment, specimens are handled in a manner that preserves the tissue for IHC staining. Standard tissue preparation methods should be used for all specimens.

[0049] <Example of paraffin-embedded tissue preparation> In alternative embodiments, formalin-fixed paraffin-embedded (FFPE) tissue is suitable for use, but alternative fixatives have not been validated and may give incorrect results. In alternative embodiments, a fixation time of approximately 6 to 72 hours in 10% neutral buffered formalin (NBF) is used. Fixation times of less than 6 hours may result in variable Ki-67 detection. In alternative embodiments, the ischemic time is maintained at less than 1 hour. In alternative embodiments, the specimen is blocked to a thickness of 3 or 4 mm, fixed in formalin, dehydrated and washed in a series of alcohol and xylene solutions, followed by infiltration with molten paraffin. In alternative embodiments, the paraffin temperature does not exceed 60°C.

[0050] <Example of tissue section preparation> In an alternative embodiment, the FFPE tissue specimen is cut into 4-5 μm sections. In an alternative embodiment, after sectioning, the tissue is placed on a Dako FLEX IHC microscope slide (code K8020) or a SuperFrost Plus microscope slide and then placed in a memory oven at 58±2°C for 1 hour.

[0051] In alternative embodiments, to preserve antigenicity, tissue sections placed on slides may be stained within 5 months of sectioning (recommended) if stored in the dark at 2–8°C, or within 4 months if stored at near room temperature or 25°C. In alternative embodiments, slide storage and handling conditions should not exceed 25°C at any point after placement to ensure tissue integrity and antigenicity.

[0052] In an alternative embodiment, the tissue specimen is placed on a slide within a defined slide staining area. The dimensions of the slide staining area can be determined using the Dako OMNIS® Basic User Guide.

[0053] <Example of reagent preparation> In an alternative embodiment, EnVision FLEX target retrieval solution, low pH (50×) (GV805) and washing buffer (20×) (GC807) are diluted to a 1× concentration according to their instructions for use. The FLEX target retrieval solution, low pH (50×) is red in color.

[0054] In an alternative embodiment, the pH of the 1× target activating solution is 6.1 ± 0.2. A 1× target activating solution pH below 5.9 may give incorrect results. In an alternative embodiment, the pH of the prepared 1× target activating solution is not adjusted.

[0055] In an alternative embodiment, the reagents are not equilibrated to room temperature before being loaded into the instrument. However, they may be loaded into the instrument before commencing the staining procedure, allowing sufficient time for equilibration.

[0056] <Exemplary staining procedure> In an alternative embodiment, the automated staining procedure for antibodies against Ki-67 in Dako OMNIS® includes deparaffinization, targeted retrieval, and staining of tissue sections. In an alternative embodiment, the slides are lowered onto a moist unloading station. All protocol steps can be pre-programmed into the Dako OMNIS® software.

[0057] <Example of pre-staining procedure> 1. From the Dako Link OMNIS™ workstation software, select the appropriate Ki-67 IHC protocol or Ki-67 IHC NCR protocol to apply to each slide. 2. Ensure that the Dako Link OMNIS® workstation software is configured to print slide labels that present the protocol name. 3. Print the slide labels and attach them to the glass slides. 4. Place the slides in the slide rack. The slide rack can hold 1 to 5 slides. 5. Ensure that the bulk bottle containing the fluid is mounted and registered by Dako OMNIS® equipment. Bulk bottle fluid: a. CLEARIFY CLEARING AGENT (trademark) (Dako OMNIS (trademark)) (code GC810) b. EnVision FLEX target activating solution diluted to 1x working concentration with distilled or deionized water, low pH, (Dako OMNIS®) (code GV805) c. Wash buffer (Dako OMNIS®) (code GC807) diluted to 1x working concentration with distilled or deionized water. 6. Before loading all required reagents into the reagent storage module, ensure that all push-up vial lids are open and locked in place: a. Monoclonal mouse anti-Ki-67, clone MIB-1, code [GE020] b. Negative control reagent, code [GE020] c. EnVision FLEX Peroxidase Blocking Reagent (Dako OMNIS®), code GV800 or GV823 d. EnVision FLEX visualization reagent (Dako OMNIS®), code GV800 or GV823 e. EnVision FLEX Substrate Buffer (Dako OMNIS®), code GV800 or GV823 f. EnVision FLEX DAB + pigment (Dako OMNIS (trademark)), code GV800 or GV823 g. Optional: Hematoxylin (Dako OMNIS®), code GC808 or equivalent h. Sulfuric acid, 0.3M, (Dako OMNIS (trademark)), code GC203 7. Load the slide rack onto the Dako OMNIS (trademark). 8. Follow the instructions on the touchscreen and tap "Finished" to start the dyeing process. 9. Ensure the slide unloading station is filled with distilled or deionized water to prevent the slides from drying out.

[0058] <Example counterstaining protocol> In an alternative embodiment, the slides are counterstained with Dako hematoxylin (code GC808). In an alternative embodiment, the antibody against Ki-67 and Ki-67 IHC negative control reagent protocol in Dako OMNIS® includes a 3-minute pre-programmed counterstaining step with hematoxylin (Dako OMNIS®) (code GC808). The slides are ready for mounting once removed from the Dako OMNIS® unloading station.

[0059] <Example encapsulation protocol> In an alternative embodiment, after staining in Dako OMNIS®, the sections are dehydrated, washed, and mounted using a non-aqueous permanent mounting method.

[0060] <Example-stained slide storage protocol> Some fading of stained slides may occur depending on several factors, including, but not limited to, counterstaining, mounting materials and methods, and slide storage conditions. In an alternative embodiment, stained slides may be stored in the dark at room temperature (approximately 20–25°C) to minimize fading.

[0061] <Example system-level control protocol> In alternative embodiments, positive and negative control tissues (laboratory-supplied) are run for each staining procedure. In alternative embodiments, these quality controls are intended to ensure the effectiveness of the staining procedure, including reagents, tissue processing, and instrument performance. It is recommended that the control tissues be stained on the same slide as the patient tissues. In alternative embodiments, the positive control is tissue exhibiting positive biomarker expression. In alternative embodiments, the negative control is tissue or tissue element that does not exhibit biomarker expression. The control tissues should be fixed in the same manner as the patient tissues. If the controls are not fixed in the same manner as the patient tissues, they may only be used as staining controls for reagent and instrument performance.

[0062] <Example assay inspection protocol> In an alternative embodiment, before the first use of the staining system in a diagnostic procedure, or whenever there is a change in assay parameters, the user may check the performance of the assay by testing it against a range of laboratory-supplied tissues having known IHC performance characteristics that represent known positive and negative tissues.

[0063] <Example Negative Control Reagent Protocol> In an alternative embodiment, a negative control reagent (NCR) is used instead of the primary antibody along with each patient tissue section to evaluate nonspecific staining and allow for better interpretation of specific staining at antigen sites.

[0064] <Example Staining and Scoring Interpretation> In an alternative embodiment, hematoxylin and eosin (H&E) stained sections adjacent to the IHC sample are used for the evaluation of acceptable samples. In an alternative embodiment, all viable invasive tumor cells on the entire slide are evaluated and included in the Ki-67 scoring assessment. In an alternative embodiment, the Ki-67 IHC scoring method and H&E staining described herein are performed on serial sections derived from the same paraffin block of the specimen to confirm the following: 1. Histological diagnosis of invasive breast cancer 2. The specimen contains at least 200 viable invasive tumor cells to determine the percentage of positive cells. 3. The specimen is properly fixed and prepared for IHC analysis. Only well-preserved and well-stained areas of the specimen should be used to determine the percentage of positive tumor cells. 4. Location of the invasive cancer. Only invasive cancer components should be scored. Carcinoma in situ should not be scored.

[0065] In alternative embodiments, slide evaluation is performed by a pathologist using a bright-field microscope. In alternative embodiments, 10-40× magnification objective lenses are suitable for immunohistochemical staining and scoring evaluation. In alternative embodiments, reliable nuclear staining of tumor cells with an intensity of 1+ or higher is included in the scoring. In alternative embodiments, the lower limit of 1+ positivity is evaluated using a high-power (e.g., 40×) objective lens and is defined by the following rule: The signal must be distinctly brown. • Staining must match that of the nucleus. • Staining must cover the entire chromatin distribution within the nucleus. • Staining must correspond to viable (non-apoptotic, non-necrotic) cells.

[0066] Tumor areas and artifacts that should not be scored are: • Necrotic area • Carcinoma in situ area • Edge effect • Fixation and processing artifacts Includes.

[0067] In an alternative embodiment, Ki-67 protein expression is determined by assessing the percentage of viable tumor cells that show reliable nuclear staining of 1+ and higher intensity.

[0068] In an alternative embodiment, with respect to each staining procedure, the slides should be examined in the order presented in Table 1 in order to determine the effectiveness of the staining procedure and to enable assessment of patient tissue staining.

[0069] <Example organizational assessment protocol> Table 1 below provides an exemplary sequence of tissue assessments for interpreting the exemplary Ki-67 IHC score (%) provided herein.

[0070] JPEG0007832929000003.jpg219170JPEG0007832929000004.jpg231170JPEG0007832929 000005.jpg232170JPEG0007832929000006.jpg233170JPEG0007832929000007.jpg32170

[0071] <Example Performance Evaluation> <Non-clinical performance evaluation: Normal and neoplastic tissues> Normal tissues: Table 2 below summarizes the immunoreactivity of monoclonal mouse anti-Ki-67 clone MIB-1 to a recommended panel of normal tissues. Nuclear staining was observed in small populations of tissues. All tissues were formalin-fixed, paraffin-embedded, and stained with antibody against Ki-67 for IHC (using Dako OMNIS®). No unexpected results were observed in the cell or tissue types tested. The observed staining was consistent with the literature reported on Ki-67 expression IHC in normal tissues.

[0072] JPEG0007832929000008.jpg218170JPEG0007832929000009.jpg95170

[0073] Neoplastic tissue: Table 3 below summarizes the monoclonal mouse anti-Ki-67 clone MIB-1 immunoreactivity to a panel of neoplastic tissues. Nuclear staining was observed in the majority of the tumor types evaluated. All tissues were formalin-fixed, paraffin-embedded, and stained with antibody against Ki-67 using Dako OMNIS®. No unexpected results were observed in the tumor specimens tested.

[0074] JPEG0007832929000010.jpg224170JPEG0007832929000011.jpg132170

[0075] Control tissue: Differences in processing and embedding in the user's laboratory can lead to considerable variability in results. It is recommended that control tissue be stained on the same slide as the patient tissue. See Table 1 above.

[0076] Each staining run should include positive and negative autocontrol tissues. Controls should be normal tonsils or biopsy / surgical specimens of the same tumor indicator as the patient specimen, and should be fixed, processed, and embedded as soon as possible in the same manner as the patient tissue. If tonsils are used as the positive control tissue, negative control elements within the tonsil specimen may serve as the negative control tissue.

[0077] Control tissues, which are processed differently from patient specimens, only verify the performance of the reagents and do not verify proper patient tissue preparation.

[0078] Tissues selected for use as positive tissue controls should exhibit weak to moderate positive staining when stained with Ki-67 IHC provided herein, in order to assist in detecting slight changes in assay sensitivity.

[0079] Tonsils stained with Ki-67 IHC as provided herein should show moderate to strong brown nuclear expression in the majority of germinal center B cells. The parabasal layer of squamous epithelium should show a strong nuclear pattern. Cells in the intermediate layer of squamous epithelium should show low to moderate nuclear expression. The majority of cells in the superficial and basal squamous epithelial layers should be negative.

[0080] When using a biopsy / surgical specimen with the same tumor index as the patient's specimen as a control tissue, the presence of brown nuclear staining should be observed in tumor cells. An ideal positive control tissue provides a complete dynamic representation of weak to moderate staining of tumor cells. An ideal negative control tissue should show no staining on tumor cells.

[0081] <Organizational Processing> Formalin-fixed, paraffin-embedded tissues have been validated for use. Other tissue preparations (e.g., cytological specimens, aspirations, or decalcified bone) may also be used. In an alternative embodiment, the specimen is blocked to a thickness of 3 mm or 4 mm, fixed in formalin, dehydrated and washed in a series of alcohol and xylene solutions, followed by infiltration with molten paraffin. In an alternative embodiment, the paraffin temperature is set not to exceed 60°C. Feasibility studies for breast cancer tissue samples were conducted using fixation in 10% neutral buffered formalin for 6–72 hours.

[0082] In an alternative embodiment, the tissue specimen is cut into 4 μm–5 μm sections. In an alternative embodiment, after sectioning, the tissue is placed on a Dako FLEX® IHC microscope slide or a SUPERFROST PLUS® slide, and then placed in an oven and dried at 58°C ± 2°C for 1 hour. In an alternative embodiment, all tissues, specimens, and controls are placed within the verified area of ​​the slide. In an alternative embodiment, to preserve antigenicity, the tissue sections are stored in the dark at 2°C–8°C (recommended) or at room temperature up to 25°C and stained within 2 months of sectioning.

[0083] <Staining> Reagent storage: When not in use, store all components according to the IFU (Instruction Facility Regulations).

[0084] Reagent preparation: Reagents do not need to be equilibrated to room temperature before loading them into the instrument. However, they should be loaded into the instrument before starting the staining procedure, allowing sufficient time for equilibration.

[0085] In an alternative embodiment, the EnVision FLEX target retrieval solution, low pH (50×) (GV805) and wash buffer (20×) (GC807) are diluted to a 1× concentration according to their instructions for use.

[0086] Deparaffinization, rehydration, target activation, staining, and counterstaining: Select either the Ki-67 IHC protocol or the Ki-67 IHC NCR protocol for the slides to be stained; place the Dako OMNIS® staining rack containing the slides in the Dako OMNIS® instrument; load all required reagents into the Dako OMNIS® as instructed by the instrument; ensure that an appropriate quality and quantity of water is added to the unloading rack to prevent dehydration of the specimens; the instrument performs the pretreatment, staining, and counterstaining procedures by applying the appropriate reagents, monitoring incubation time, and rinsing the slides between reagents.

[0087] Mounting: In an alternative embodiment, use a non-aqueous permanent mounting medium. To minimize fading, store the slides in a dark place at room temperature (approximately 20-25°C).

[0088] Product-Specific Limitation: In one embodiment, for a specimen to be considered suitable for Ki-67 evaluation, a minimum of 200 viable invasive tumor cells should be present on the Ki-67 stained slide. If fewer than 200 viable invasive tumor cells are present, tissue derived from a deeper level of the block or potentially another block may have a sufficient number of viable tumor cells for Ki-67 IHC testing.

[0089] Positive and Negative Autologous Control Tissues: To determine that the tissue has been properly prepared and the reagents are functioning correctly, examine a positive autologous control tissue (tonsil or breast cancer). In alternative embodiments, it is recommended that the control tissue be stained on the same slide as the patient tissue. An ideal positive control tissue provides a complete dynamic representation of weak to moderate cell staining. If the staining of the positive autologous control tissue does not meet the criteria, all results regarding the patient specimen should be considered invalid.

[0090] When using tonsils as a positive control tissue, negative control elements within the specimen may act as negative control tissues: Tonsils stained with Ki-67 IHC provided herein should show moderate to strong nuclear expression in the majority of germinal center B cells. The parabasal layer of squamous epithelium should show a strong nuclear pattern. Cells in the intermediate layer of squamous epithelium should show low to moderate nuclear expression. The majority of cells in the superficial and basal squamous epithelial layers should be negative. Antibody-labeled cells exhibit a nuclear staining pattern, except in mitotic cells where both the mitotic nucleus and cytoplasm are labeled.

[0091] Using breast carcinoma as autologous control tissue: An ideal positive control tissue provides a complete dynamic representation of weak to moderate staining of cells (Figure 3). In an alternative embodiment, the control tissue is stained on the same slide as the patient tissue. In an alternative embodiment, if breast carcinoma is used as the control tissue on the slide, the positive control tissue is run on the same slide as the patient specimen. The negative control may be run on a separate slide. If the staining of the positive autologous control tissue does not meet the criteria, all results relating to the patient specimen should be considered invalid. Figure 3 illustrates positive autologous control tissue stained with exemplary Ki-67 IHC, showing varying intensities of nuclear Ki-67 expression by invasive breast carcinoma cells (20× magnification).

[0092] An ideal negative control tissue should not show staining of tumor cells. To determine the expected staining, examine the negative autocontrol tissue. The diverse range of different cell types present in most breast cancer tissue sections will provide internal negative control areas; this should be checked by the user.

[0093] If improper staining occurs in the autologous control tissue, the results regarding the patient specimen should be considered invalid.

[0094] Negative control reagent (NCR): In an alternative embodiment, slides stained with NCR are examined to identify nonspecific background stains that may interfere with the interpretation of Ki-67 staining, rendering the specimen unassessable. Performance meeting the criteria is indicated by the absence of specific stains; patient specimens stained with NCR are examined to determine if there are any nonspecific stains that may interfere with the interpretation of Ki-67 stained slides.

[0095] An exemplary protocol for evaluating staining is schematically illustrated in Figure 4.

[0096] In an alternative embodiment, Ki-67 expression in breast cancer tumors stained with exemplary Ki-67 IHC is determined by using the following exemplary Ki-67 score (%). In an alternative embodiment, the entire viable tumor area must be evaluated to determine the Ki-67 score (%). The Ki-67 score (%) is a numerical value obtained by dividing the number of viable invasive tumor cells stained for Ki-67 by the total number of viable invasive tumor cells in the entire specimen and multiplying by 100%.

[0097] Determining the Ki-67 score (%)

Number

[0098] Any definite nuclear staining greater than or equal to (≧) 1+ of viable invasive tumor cells is considered Ki-67 staining and should be included in the scoring. Nuclear staining (≧1+) of any other cell type, including in situ breast tumors, non-neoplastic breast epithelium, or other non-neoplastic cells, should be excluded from the Ki-67 score (%) calculation.

[0099] <Exemplary protocol for determining the Ki-67 score (%)> At a lower magnification, examine all well-preserved tumor areas across the slide. Evaluate the entire area of Ki-67-stained and non-stained tumor cells, noting that 1+ nuclear staining may be difficult to see at a lower magnification.

[0100] In an alternative embodiment, for specimens considered appropriate for evaluation, there are at least 200 viable invasive tumor cells present on the Ki-67-stained slide. For specimens with less than 200 viable tumor cells, sections from deeper levels of the block or potentially from another block may have a sufficient number of tumor cells for evaluation of Ki-67 expression.

[0101] At a higher magnification, evaluate Ki-67 expression and determine the Ki-67 score (%): Estimate the total number of viable invasive tumor cells, both Ki-67 stained and non-stained (denominator in Ki-67 score (%)) Estimate the number of viable invasive tumor cells that are Ki-67 stained (numerator in Ki-67 score (%); see Tables 1 and 2 for additional Ki-67 score (%) inclusion / exclusion criteria)

[0102] <Estimate the Ki-67 score (%)> JPEG0007832929000013.jpg123170

[0103] JPEG0007832929000014.jpg104170

[0104] Figure 5 illustrates an example of the determination of the Ki-67 score (%) based on a small Ki-67 stained area.

[0105] First, evaluate the tumor area for reliable staining as described in "Determine the Ki-67 score (%)". Assessment: 10% of the area shows staining and 90% of the area does not show staining.

[0106] Second: Evaluate the stained area to determine the number of Ki-67 stained invasive tumor cells. Assessment: There are approximately 100 viable tumor cells and about 80 Ki67 stained cells in the stained area (per molecule of Ki-67 score (%)).

[0107] Figure 6 illustrates the determination of the Ki-67 score (%) based on a heterogeneous Ki-67 stained area.

[0108] First step: Visually divide the tumor area into regions with an equal number of tumor cells.

[0109] Second step: Observe each region and determine the total number of viable tumor cells and Ki-67 stained tumor cells. Determine the Ki-67 score (%) for each region.

[0110] Assessment: The four compartments contain approximately 60, 30, 20, and 10 Ki-67 stained tumor cells, respectively. Each compartment contains a total of 100 tumor cells (including Ki-67 stained cells). Ki-67 scores (%) for each compartment: approximately 60%, 30%, 20%, and 10%.

[0111] Figure 7 illustrates the determination of the Ki-67 score (%) for samples near the cutoff point.

[0112] Stage 1: Evaluate the specimen for reliable staining, as described in "Determining the Ki-67 score (%)".

[0113] Stage 2: Examine the specimen with a higher objective lens (20×) to confirm the presence of weak (1+) staining in areas that appear unstained with a lower objective lens. Evaluate all stained areas and estimate the total number of Ki-67 stained tumor cells.

[0114] Next, the entire specimen (stained and unstained areas) is re-evaluated to estimate the total number of viable invasive tumor cells (Ki-67 stained and unstained tumor cells). The Ki-67 score (%) is then determined.

[0115] Assessment: The tumor specimen has recognizable and reliable staining. Thirty Ki-67 stained invasive tumor cells. Approximately 200 viable invasive tumor cells are present throughout the specimen.

[0116] Figure 8 provides an example illustrating how the Ki-67 score (%) and the corresponding Ki-67 expression level can be used to determine the percentage of surviving invasive tumor cells that express nuclear Ki-67.

[0117] Figure 9 schematically illustrates a flowchart that can be used to determine which patients may require treatment with abemaciclib, palbociclib (optionally, IBRANCE™ or PALBONIX™), or ribociclib (optionally, KISQUALI™), or other cyclin-dependent kinase inhibitors such as CDK4 or CDK6 inhibitors, based on their Ki-67 score (%).

[0118] In summary, Ki-67 stained cells in invasive breast carcinomas are viable tumor cells with distinct nuclear staining (intensity 1+ or higher) corresponding to chromatin distribution within the nucleus; the Ki-67 expression status in breast carcinomas is determined by the Ki-67 score (%), which is the number obtained by dividing the number of Ki-67 stained invasive tumor cells by the total number of viable invasive tumor cells in the whole specimen and multiplying by 100%.

[0119] <Ki-67 stained cells included in Ki-67 score (%)> Tumor cells exhibiting appropriate Ki-67 expression are defined as Ki-67 stained cells showing distinct nuclear staining of any intensity greater than or equal to (≧) 1+. All Ki-67 stained viable invasive tumor cells are included in the numerator of the Ki-67 score (%) for determination of the Ki-67 score (%) (see Tables 1 and 2 for additional Ki-67 score (%) inclusion / exclusion criteria). All viable invasive tumor cells should be included in the denominator. The common staining characteristics of Ki-67 stained cells to be included in the numerator of the Ki-67 score (%) are as follows.

[0120] Nuclear staining of tumor cells of all intensities from 1+ to 3+ should be included. Tumor cells showing distinct nuclear staining are considered Ki-67 stained cells. Distinct nuclear staining is determined by the following parameters: 1. The signal is clearly brown. 2. The staining coincides with the nucleus. 3. The staining covers the entire chromatin distribution within the nucleus. 4. Staining indicates viable (non-apoptotic, non-necrotic) cells.

[0121] Figure 10 illustrates an image of an invasive breast carcinoma specimen stained with exemplary Ki-67 IHC, showing 1+ nuclear staining of tumor cells (arrows).

[0122] Figure 11 illustrates an image of an invasive breast cancer specimen stained with exemplary Ki-67 IHC, showing 2+ nuclear staining of tumor cells (arrows).

[0123] Figure 12 illustrates an image of an invasive breast cancer specimen stained with exemplary Ki-67 IHC, showing 3+ nuclear staining of tumor cells (arrows).

[0124] Definitive staining of tumor cells is often heterogeneous, exhibiting varying staining intensities within the same sample. Figure 13 illustrates images of exemplary Ki-67 IHC-stained invasive breast carcinoma specimens showing 1+ to 3+ nuclear staining of tumor cells. Red arrows indicate 3+ staining intensity, yellow indicates 2+ staining intensity, and green indicates 1+ staining intensity (20× objective lens).

[0125] Cells exhibiting a "gray" color in the nucleus are excluded from Ki-67 scoring. If the nucleus is not distinctly brown, the cell is considered to not exhibit definite nuclear staining. Figure 14 illustrates images of invasive breast carcinoma specimens stained with antibody against Ki-67, exhibiting both negative and weakly positive staining. Negative cells show gray hematoxylin counterstaining and are indicated by black arrows, while weak 1+ staining is indicated by green arrows (20× objective lens).

[0126] In summary, reliable nuclear staining of any intensity of viable invasive tumor cells should be included in the Ki-67 score (%) molecule.

[0127] Tumor cells with membrane and / or cytoplasmic staining under any objective lens should not be included in the Ki-67 score (%) numerator unless the nucleus is also clearly stained, as defined in the previous section.

[0128] Figure 15 illustrates an image of an invasive breast cancer specimen stained with exemplary Ki-67 antibody, showing membrane staining without clearly distinguishable nuclear staining (arrow) (20× objective lens).

[0129] Figure 16 illustrates an image of an exemplary Ki-67-stained invasive breast carcinoma specimen showing cytoplasmic staining with clearly distinguishable nuclear staining (arrow) (20× objective lens).

[0130] Figure 17 illustrates an image of an invasive breast cancer specimen stained with an antibody against Ki-67, which exhibits membrane staining without clearly distinguishable nuclear staining (arrow) (20× objective lens).

[0131] In summary: Tumor cells exhibiting recognizable membrane and / or cytoplasmic staining without nuclear staining are not included in the Ki-67 score (%) molecule. Tumor cells exhibiting clearly distinguishable nuclear staining in addition to membrane and / or cytoplasmic staining should be included in the Ki-67 score (%) molecule.

[0132] Uneven chromatin distribution: Sometimes, tumor cells may exhibit an incomplete nuclear staining pattern due to uneven chromatin distribution or nuclear pseudo-inclusions, resulting in a "nuclear clearing" appearance. These nuclear characteristics should also be observable with the corresponding H&E staining method. Any reliable nuclear staining (intensity ≥1+) of tumor cells that covers the entire intranuclear chromatin distribution should be included in the Ki-67 score (%) numerator, even if the appearance is incomplete.

[0133] Figures 18A - B illustrate images of an exemplary invasive breast cancer tumor specimen stained with Ki - 67 IHC (Figure 18A) and the corresponding H&E - stained slide (Figure 18B) (20× objective lens) that exhibit an incomplete nuclear staining pattern (arrow) due to an unequal chromatin distribution resulting in a "nucleus - lost" mode. Tumor cells must exhibit a reliable nuclear staining pattern corresponding to the chromatin distribution within the nucleus in order to be included in the numerator of the Ki - 67 score (%).

[0134] <Cells excluded from the Ki - 67 score (%)> Only viable invasive tumor cells exhibiting reliable Ki - 67 nuclear staining should be included in the numerator of the Ki - 67 score (%). In alternative embodiments, cells that may exhibit staining but should be excluded from the Ki - 67 score (%) estimate (numerator and / or denominator of the Ki - 67 score (%)) may include the following.

[0135] Intraductal carcinoma in situ: Intraductal carcinoma in situ (DCIS) cells exhibiting Ki - 67 nuclear staining should be excluded from the Ki - 67 score (%) estimate. Figures 19A - B illustrate images of an exemplary invasive breast cancer tumor specimen stained with Ki - 67 IHC (Figure 19A) and the corresponding H&E (Figure 19B) that exhibit staining of non - invasive ductal carcinoma in situ (DCIS) (10× objective lens).

[0136] Benign epithelial cells may exhibit Ki - 67 nuclear staining. These cells should be excluded from the Ki - 67 score (%) estimate. Figure 20 illustrates an image of staining using exemplary Ki - 67 IHC in normal epidermal cells adjacent to the invasive area of a breast cancer tumor specimen (20× objective lens).

[0137] Normal ducts and lobules, and other non-neoplastic breast epithelium adjacent to breast carcinomas, may show Ki-67-positive nuclear staining. These cells should not be included in the Ki-67 score (%) estimate. Figure 21 illustrates an image of a breast carcinoma specimen stained with exemplary Ki-67 IHC, where Ki-67 staining may be seen in normal epithelial cells within ducts and lobules (arrows). The left half of the image above shows tumor cells that should be included in the Ki-67 score (%) calculation. The right side of the image shows normal breast epithelium that should be excluded from the Ki-67 score (%) estimate (10× objective lens).

[0138] Only viable tumor cells should be included in the Ki-67 score (%) estimate. Non-viable, necrotic, and apoptotic cells, which may or may not exhibit Ki-67 staining, should be excluded from both the numerator and denominator. Figures 22A and 22B illustrate images of a necrotic area in a breast carcinoma specimen stained with the primary Ki-67 antibody (Figure 22A) and the corresponding H&E-stained slide (Figure 22B) (10× objective lens).

[0139] Lymphocytes often exhibit nuclear staining and should not be included in the Ki-67 score (%) scoring algorithm. Nuclear staining of lymphocytes is often heterogeneous, with varying staining intensities. Figure 23A illustrates an image of an exemplary Ki-67-stained breast carcinoma specimen showing staining of positive lymphocytes scattered within lymphocyte-like aggregates (arrows) (20× objective lens). Figure 23B illustrates an image of an exemplary Ki-67 IHC-stained breast carcinoma specimen showing staining of lymphocytes mixed with positive tumor cells (arrows) (20× objective lens).

[0140] Stromal cells exhibiting Ki-67 nuclear staining should be excluded from the Ki-67 score (%) estimation. Figure 24 illustrates an example image of a breast cancer specimen stained with Ki-67 IHC, showing stromal cell nuclear staining (arrows) and tumor cell staining (20× objective lens).

[0141] <Pre-analysis artifacts> Areas of examined sections exhibiting distorted morphology resulting from pre-analysis artifacts such as poor fixation, fragmentation, and / or ablation artifacts should be excluded from scoring. Figure 25 illustrates an image of an exemplary Ki-67 IHC-stained breast cancer specimen exhibiting fragmentation artifacts; these areas should be excluded from scoring (20× objective lens). Figure 26 illustrates an image of an exemplary Ki-67 IHC-stained breast cancer specimen exhibiting ablation artifacts; these areas should be excluded from scoring (20× objective lens).

[0142] Figure 27 illustrates an image of an exemplary Ki-67 IHC-stained breast carcinoma specimen exhibiting acceptable (≤1+) nonspecific staining; however, nonspecific background staining (arrows) should be excluded from the score. Weak nuclear staining is also present and should be included (20× objective lens).

[0143] Figure 28 illustrates an image of a negative control reagent (NCR) exhibiting acceptable (≤1+) nonspecific background staining in breast carcinoma (arrow) (20× objective lens).

[0144] Generally, edge artifacts are associated with the following pre-analysis factors: thick tissue sections; tissue ablation; or tissue drying before fixation or during the staining procedure. These factors can lead to enhanced staining at the outer edges of the section. In this case, Ki-67 staining at the edges of the tissue section should be excluded from scoring. Figure 29 illustrates an image of a breast cancer specimen stained with exemplary Ki-67 IHC, where edge staining artifacts should be excluded from scoring (5× objective lens).

[0145] Examples of diagnostically negative cases (Ki-67 score less than 20% (<)) are illustrated in Figures 30 (10× objective lens), 31 (20× objective lens), and 32 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score of 0% (10–40× objective lenses).

[0146] Another example of a diagnostically negative case (Ki-67 score less than 20%) is illustrated in Figure 33 (10× objective lens), Figure 34 (20× objective lens), and Figure 35 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score of 7% (10× to 40× objective lenses).

[0147] Another example of a diagnostically negative case (Ki-67 score < 20%) is illustrated in Figure 36 (10× objective lens), Figure 37 (20× objective lens), and Figure 38 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score of 11% (10–40× objective lenses).

[0148] Examples of diagnostically positive cases (Ki-67 score greater than or equal to 20% (≧)) are illustrated in Figure 39 (10× objective lens), Figure 40 (20× objective lens), and Figure 41 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score of 43% (10–40× objective lenses).

[0149] Another example of a diagnostically positive case (Ki-67 score greater than or equal to 20% (≧)) is illustrated in Figure 42 (10× objective lens), Figure 43 (20× objective lens), and Figure 44 (40× objective lens). A breast cancer specimen was stained with exemplary Ki-67 IHC, and the specimen exhibited a Ki-67 score of 52% (10–40× objective lens).

[0150] Another example of a diagnostically positive case (Ki-67 score greater than or equal to 20% (≧)) is illustrated in Figure 45 (10× objective lens), Figure 46 (20× objective lens), and Figure 47 (40× objective lens). A breast cancer specimen was stained with exemplary Ki-67 IHC, and the specimen exhibited a Ki-67 score of 82% (10–40× objective lens).

[0151] Examples of cases that are "near the cutoff" but diagnostically negative (Ki-67 score (%) range greater than or equal to 10% (≧) but less than 20% (<)) are illustrated in Figures 48 (10× objective lens), 49 (20× objective lens), and 50 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score (%) of 15% (10–40× objective lenses).

[0152] Examples of cases that are "near the cutoff" but diagnostically negative (Ki-67 score (%) range greater than or equal to 10% (≧) but less than 20% (<)) are illustrated in Figures 51 (10× objective lens), 52 (20× objective lens), and 53 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score (%) of 15% (10–40× objective lenses).

[0153] Examples of cases that are "near the cutoff" but are diagnostically positive (greater than or equal to 20% (≧) but less than or equal to 30% (≦) Ki-67 score (%) range) are illustrated in Figures 54 (10× objective lens), 55 (20× objective lens), and 56 (40× objective lens). Breast cancer specimens were stained with exemplary Ki-67 IHC, and the specimens exhibited a Ki-67 score (%) of 21% (10×~40× objective lenses).

[0154] [Example 2: Use of Ki-67 score (%) as a companion or complementary diagnostic tool for breast cancer treatment] In an alternative embodiment, a method is provided for treating or improving cancer or tumors in an individual in need, comprising the steps of: determining whether cells in a patient-derived tissue sample have a low or high or diagnostically negative or diagnostically positive Ki-67 expression score, as determined by a protocol including the use of an immunohistochemistry (IHC) method provided herein; and, if the tissue sample is found to have a high or diagnostically positive Ki-67 expression score (%), administering to the individual an oncological or cancer treatment, such as a treatment developed to inhibit CDK4 and CDK6, for example, abemaciclib, palbociclib (optionally, IBRANCE® or PALBONIX®), or ribociclib (optionally, KISQUALI®).

[0155] In an alternative embodiment, the Ki-67 IHC method provided herein is used in a randomized, open-label phase 3 study comparing abemaciclib in combination with standard adjuvant endocrine therapy versus standard adjuvant endocrine therapy alone in patients with high-risk, lymph node-positive, early-stage, hormone receptor-positive, and human epithelial receptor 2-negative breast cancer.

[0156] Abemaciclib is administered orally, and standard adjuvant endocrine therapy is administered according to the package label.

[0157] The primary outcome metric is disease-free survival (IDFS).

[0158] In an alternative embodiment, secondary outcome metrics may be used, which may include: - IDFS for participants with a Ki-67 score greater than or equal to 20% (≧) (%); - Distant recurrence-free survival (DRFS); - Overall survival (OS); - Pharmacokinetics (PK): Minimum steady-state concentration (Cmin, ss) of abemaciclib; - Changes from baseline in functional assessment of cancer therapy - Breast (FACT-B); - Changes from baseline in the functional assessment of cancer therapy - Endocrine symptoms (FACT-ES); - Changes from baseline in the functional assessment of chronic disease therapy - fatigue (FACIT-F); and - Change from baseline in the EuroQol Five-Dimensional Five-Level Questionnaire (EQ-5D-5L)

[0159] <Eligibility Criteria> Exemplary IHC inclusion criteria: Participants have confirmed HR+, HER2-, early-stage resected invasive breast cancer with no evidence of distant metastasis. Participants must have undergone curative surgery for a primary breast tumor. • Pathological lymph node involvement and at least one of the following indicating a higher risk of recurrence: ○ Four or more positive axillary lymph nodes ○ Tumor size of at least 5 centimeters ○ Grade 3, defined as a minimum of 8 points in the Bloom-Richardson rating system. ○ Ki-67 score (%) by central analysis, greater than or equal to 20% of untreated breast tissue (≧) Participants must have an Eastern Cooperative Oncology Group (ECOG) performance status of less than or equal to (≤1).

[0160] Examples of exclusion criteria; one or more of these may be considered: • Metastatic disease (including contralateral axillary lymph nodes) or lymph node-negative disease • Participants with inflammatory breast cancer Participants with a prior history of breast cancer are eligible, with the exception of ipsilateral ductal carcinoma in situ (DCIS) treated with local topic therapy alone more than 5 years prior or equal to 5 years prior (≧). Participants with a history of contralateral DCIS treated with local topic therapy at any point in time may be eligible. Participants with a history of any other cancer (excluding non-melanoma skin cancer or cervical carcinoma in situ) are excluded unless they are in complete remission without therapy for at least 5 years from the date of randomization.

[0161] Subjects with a Ki-67 score (%) of 20% or higher have been observed to respond favorably to treatment with abemaciclib. Similar assessments may be performed for Ki-67 scores with thresholds other than 20%, e.g., approximately 1%, 5%, 10%, 20%, 30%, 40%, 50%, or any number of approximate thresholds between 1% and 50%.

[0162] This study demonstrates that subjects with a Ki-67 score (%) above the threshold are deemed to have a desirable response to abemaciclib treatment, and therefore, abemaciclib treatment can be guided using a Ki-67 score (%) at or above the threshold.

[0163] Similar analyses can be performed using other cyclin-dependent kinase inhibitors to identify Ki-67 scores (%) that indicate a desirable response to treatment with these therapies.

[0164] [Example 3: Sensitivity, specificity, accuracy, and robustness of an exemplary Ki-67 IHC assay] In an alternative embodiment, a method is provided for determining and reproducibly scoring the degree of nuclear expression of the protein Ki-67 in tissue samples. In the alternative embodiment, the method provided herein addresses the lack of standardized Ki-67 assay performance that remained an obstacle to global clinical research prior to the present invention (Dowsett M et al.: Assessment of Ki67 in Breast cancer: Recommendations from the International Ki67 in Breast Cancer Working Group. JNCI 103:1656-64. 2011). The IHC assay and scoring algorithm provided herein address this problem and can reproducibly detect Ki-67 expression in formalin-fixed paraffin-embedded human breast cancer.

[0165] <Method> In an alternative embodiment, the Ki-67 scoring (%) assay is based on EnVision FLEX® technology using anti-Ki-67 clone MIB-1. An exemplary scoring guide provided herein has been developed and optimized for high inter-observer precision. This exemplary assay has been analytically validated for sensitivity, specificity, precision (day-to-day, inter-instrument, inter-lot, and repeatability: intra-instrument / in-rack / intraday), and robustness.

[0166] <Result> Exemplary Ki-67 IHC detected Ki-67 expression in the relevant region in 148 breast cancer specimens, including excised and core needle biopsy specimens. All precision and robustness studies achieved lower 95% confidence intervals (LBCI) greater than 90% for negative agreement percentage (NPA), positive agreement percentage (PPA), and overall agreement (OA). Specifically, observer reproducibility results demonstrated high agreement with 95% LBCI values ​​for NPA / PPA / OA, with between-observer 97.2% / 91.7% / 95.4% and within-observer 98.3% / 94.4% / 96.8%.

[0167] <Conclusion> These studies demonstrate that the exemplary standardized Ki-67 IHC assays provided herein are highly sensitive, specific, accurate, and robust for the reproducible detection of Ki-67 expression in breast cancer. In some embodiments, the Ki-67 IHC assays described herein may be available on the Dako OMNIS® platform.

[0168] [Example 4: Reproducibility of an exemplary Ki-67 IHC assay] In an alternative embodiment, a method is provided for determining and reproducibly scoring the degree of nuclear expression of the protein Ki-67 in tissue samples. Although Ki-67 immunohistochemistry (IHC) is a widely used tumor growth assessment, there is considerable variation in assay format and interpretation. The reproducibility of the exemplary analytically validated Ki-67 IHC assay provided herein was evaluated in the Abemaciclib adjuvant early breast cancer study.

[0169] <Design> A blinded, randomized study was conducted in two parts. Part A assessed inter-institutional / intra-institutional reproducibility of staining and Ki-67 interpretation for five sets of replicated specimens of 30 formalin-fixed, paraffin-embedded breast carcinoma specimens performed at three external laboratories. Part B assessed inter-observer / intra-institutional reproducibility using one set of pre-stained specimens consisting of 60 formalin-fixed, paraffin-embedded breast carcinoma specimens. A balanced sample distribution was used, along with a washout period of 14–30 calendar days between evaluations. Reproducibility was measured using a diagnostic endpoint of “positive” if Ki-67-expressing tumor cells were greater than or equal to 20% (≧), and “negative” if they were less than 20% (<). Negative agreement percentage, positive agreement percentage, and overall agreement percentage were calculated using two-sided 95% confidence intervals. Acceptance criteria for all agreements required that the lower limit of the two-sided 95% confidence interval be ≧85%.

[0170] <Result> The lower bounds of the calculated 95% confidence intervals were greater than or equal to 85% (≧) for all parameters, with a cutoff of greater than or equal to 20% (≧). Inter-institutional reproducibility across three facilities, intra-institutional / daily reproducibility over five days within three facilities, inter-observer reproducibility across three pathologists, and intra-observer reproducibility over three readings by three pathologists all met the acceptable criteria.

[0171] <Conclusion> The analysis demonstrates robust external reproducibility results at cutoffs greater than or equal to 20% (≧), supporting the use of the exemplary Ki-67 IHC assay provided herein for reproducible detection of Ki-67 in breast cancer.

[0172] [Example 5: Validation of an exemplary Ki-67 IHC assay] In an alternative embodiment, a method is provided for determining and reproducibly scoring the degree of nuclear expression of the protein Ki-67 in a tissue sample, the Ki-67 score (%) provided herein, which is an exemplary scoring method, is referred to herein as the "Ki-67 score".

[0173] Background – The Abema Ciclib Adjuvant Early Breast Cancer Study demonstrated positive efficacy results during a pre-specified interim analysis of 5,637 high-risk early breast cancer patients. Secondary outcome metrics included assessment of invasive disease-free survival for participants with Ki-67 greater than or equal to 20% (≧). Immunohistochemical (IHC) assessment for Ki-67 is a commonly used analytical method for assessing cell proliferation status, but it lacks standardized procedures and recognized cutoff criteria for Ki-67.

[0174] Objective - To develop a standardized method for Ki-67 IHC and to evaluate the multicenter reproducibility of the novel, well-validated Ki-67 IHC scoring methods provided herein.

[0175] Design—The exemplary assays provided herein have been analytically validated for sensitivity, specificity, repeatability, precision (inter-instrument, day-to-day, lot-to-lot), and robustness (target retrieval and tissue thickness) using cutoffs greater than or equal to 20% (≧). Reproducibility studies (inter-institutional and intra-institutional, inter-observer and intra-institutional) were performed in three external laboratories using the same cutoffs.

[0176] Results – All analytical validation studies achieved point estimates greater than 90% for negative, positive, and overall agreement percentages. Inter-institutional reproducibility showed point estimates of 94.7%, 100.0%, and 97.3%, respectively, while inter-external observer reproducibility showed point estimates of 98.9%, 97.8%, and 98.3%, respectively.

[0177] Conclusion – The standardization of the Ki-67 scoring methodology using the methods provided herein, as well as the pre-analytical and analytical variables, resulted in high agreement in staining and scoring across multiple laboratories. The standardized Ki-67 scoring assay provided herein may assist in treatment decisions in patients with early-stage breast cancer where Ki-67 expression levels are relevant to predicting prognosis, risk of disease recurrence, or response to therapy.

[0178] The Ki-67 antigen, also known as Ki-67 or MKI67, is a nuclear protein associated with cell proliferation. This protein is expressed during the active phases of the cell cycle (G1, S, G2, and M phases), but not during the quiescent G0 phase. Unregulated proliferation is a distinctly distinguishing feature of tumors, and Ki-67 has been shown to be a promising biomarker candidate in aggressive lesions. The Ki-67 labeling index has been found to correlate with tumor grade and clinical course in many cancer types. In the context of breast carcinoma, the percentage of Ki-67-positive cells allows for classification between luminal A and B type tumors, and high Ki-67 index values ​​have been associated with large, high-grade, lymph node-positive, triple-negative, or human epidermal growth factor receptor-2 (HER2)-positive breast carcinomas.

[0179] Measuring Ki-67 expression has attracted considerable attention as a possible predictive marker for responsiveness or resistance to chemotherapy or endocrine therapy. However, due to substantial heterogeneity and variability in the pre-analysis and analytical methods used, there are practical limitations to the value of some Ki-67 findings. The lack of standardized procedures and accepted cutoff definitions for Ki-67 makes it impossible to compare Ki-67 data between clinical trials and limits the application of Ki-67 assessment for clinical use. Therefore, Ki-67 immunohistochemistry (IHC) is not routinely performed as part of the diagnostic refinement of breast carcinoma in clinical settings across many geographic regions, and the impact of Ki-67 detection in the management of patients with breast carcinoma remains not universally recognized. In an effort to minimize variability in clinical Ki-67 assessment and promote its adoption, the expert group on Ki-67 testing in breast cancer has provided guidelines on preferred methods for Ki-67 staining and scoring (see, for example, Dowsett M, et al., Assessment of Ki67 in breast cancer: recommendations from the International Ki67 in Breast Cancer working group, J Natl Cancer Inst. 2011;103(22):1656-1664).

[0180] Cyclin-dependent kinase 4 and 6 (CDK4 and 6) inhibitors, when used in combination with endocrine therapy, have improved outcomes in patients with hormone receptor-positive (HR+), HER2-negative (HER2-) advanced breast cancer. Abemaciclib is a selective CDK4 and 6 inhibitor approved for the treatment of HR+, HER2- advanced or metastatic breast cancer. A neoadjuvant study of abemaciclib and anastrozole in HR+, HER2- breast cancer incorporated the International Ki-67 in Breast Cancer working group guidelines as the primary endpoint, defining the change in Ki-67 measurement results from baseline to 2 weeks post-treatment. The study met its primary endpoint by demonstrating a greater reduction in Ki-67 tumor expression after treatment with abemaciclib monotherapy or in combination with anastrozole compared to anastrozole monotherapy. Ki-67 measurements for cell cycle inhibition provide information about biological risk hypotheses and help assess the impact of tumor growth in early-stage breast cancer settings with a high risk of recurrence. To enable the design of a global multicenter registry study, a standardized automated testing system and a uniform scoring algorithm were developed to detect Ki-67 expression in formalin-fixed, paraffin-embedded human breast cancer tumors.

[0181] This analysis was conducted in support of the Abemaciclib Adjuvant Early Breast Cancer Study to evaluate abemaciclib adjuvant therapy in high-risk, lymph node-positive, early-stage, HR+, HER2- breast cancer patients.

[0182] In an alternative embodiment, a standardized Ki-67 assay is provided herein that may be used to assist in treatment decisions in patients with early-stage breast cancer in which Ki-67 expression levels are related to prognosis, risk of disease recurrence, or response to therapy.

[0183] <Materials and Methods> <Tissue specimen preparation> Unless otherwise noted, the specimens used in these studies were commercially sourced formalin-fixed paraffin-embedded (FFPE) human breast cancer tissue. Specimens consisted of both core biopsies and surgically excised tissues, as indicated. Information regarding HR status and HER2 status was not available for all specimens. Sections were cut to a thickness of 4–5 μm, placed on positively charged slides, and dried in an oven at 58°C ± 2°C for 1 hour. The mounted sections were stored in the dark at 2°C–8°C and stained within 5 months of sectioning using the exemplary Ki-67 IHC assay described herein. Tonsil tissue was used as an assay control and for evaluation of pre-analyte variables.

[0184] <Prototype assay design input> Initial input to the assay prototype was provided from a qualitative comparison of commercially available FFPE human breast cancer tissues assessed using the Ki-67 IHC assay used in the neoadjuvant study of abemaciclib and anastrozole in HR+, HER2- breast cancer. A limited sample set of 18 invasive breast cancer resection specimens, a tissue microarray consisting of 49 invasive breast cancer cores, and tonsil control tissue were assayed using a laboratory-developed test (LDT) at the University of Southern California and then assayed using the exemplary Ki-67 IHC assay described herein. Alternate section levels were stained using both assays prior to performance comparison. The study was conducted for informational purposes only, and no formal consent criteria were applied.

[0185] <Example Ki-67 IHC assay> The IHC staining procedure was performed on the Dako OMNIS® platform using an automated staining protocol validated for the Ki-67 IHC assay described herein. The Ki-67 IHC is a modular assay consisting of optimized, purified monoclonal mouse antibodies (clone MIB-1) produced in a good manufacturing practice environment under strict quality control standards for purity, integrity, and concentration, as well as isotype control antibodies with matching protein concentrations. The supplemental system reagents required to complete the IHC staining procedure are available in individual packages from Agilent Technologies, Inc., Santa Clara, CA. Table 4 provides an overview of the relevant factors incorporated into the development of the Ki-67 IHC assay described herein.

[0186] Heat-inducible epitope activation was performed using diluted EnVision FLEX targeted retrieval solution, low pH (50×) (Dako OMNIS®) (code GV805). Deparaffinization, rehydration, and targeted retrieval were performed within Dako OMNIS®. Following incubation with primary monoclonal mouse anti-human Ki-67 antibody clone MIB-1 or negative control reagent (NCR; mouse immunoglobulin G isotype control), specimens were incubated with secondary antibody and a ready-to-use visualization reagent (Dako OMNIS®; code GV800, or the respective bulk reagent) consisting of horseradish peroxidase conjugated to a dextran polymer backbone. Enzymatic conversion of the subsequently added 3,3'-diaminobenzidine tetrahydrochloride chromogen resulted in a visible precipitation of the reaction product at the antigen site. Next, the specimens were counterstained with hematoxylin (Dako OMNIS®; code GC808) and covered with coverslips. All reagents and equipment were manufactured and supplied by Dako North America. The glass slides were scored as described under "Scoring Interpretation".

[0187] <Scoring Interpretation> Ki-67 IHC assay results were interpreted using a light microscope. A minimum of 200 viable invasive tumor cells were required for scoring. All viable invasive tumor cells in the specimen were evaluated and included in the Ki-67 scoring assessment. Carcinoma in situ was not scored. Only nuclear staining was considered for evaluating positive staining in tumor cell nuclei. Tumor cells were considered positive if the signal was clearly brown and covered the entire chromatin distribution within the nucleus. For the determination of Ki-67 protein expression, an intensity grade from 1+ (weak staining) to 3+ (strong staining) was reported. Nonspecific staining was recorded using a 0-3+ scale in 0.25 increments. Cytoplasmic and / or membrane staining, if present, was excluded from scoring. The Ki-67 score was determined by dividing the number of viable invasive tumor cells stained with Ki-67 by the total number of viable invasive tumor cells and multiplying by 100. Breast cancer specimens stained with NCR were required to have nonspecific background staining of intensity <1+ for the same specimens stained with Ki-67 antibody to be considered valid. Tumors were classified as diagnostically positive or negative based on a cutoff of greater than or equal to 20% (≧), with Ki-67 scores greater than or equal to 20% (≧) considered positive and <20% (<) considered negative. An overview of the scoring methodology is provided in the Post-Host Analysis (Interpretation and Scoring) section of Table 6.

[0188] Ki-67 IHC immunohistochemical staining results were assessed by blinded and randomized slide evaluation in all studies, with the exception of 31 normal tissue studies and pre-analysis variable surveys.

[0189] Internal observers and external laboratory pathologists were trained and tested regarding the scoring algorithm / guidelines. In the initial planning stages, hotspots were also analyzed in an exploratory manner. Hotspots were defined as areas corresponding to the field of view in a 20× objective lens that had the highest percentage of positive tumor nuclei in the section.

[0190] <Investigational assay sensitivity study> The expression levels of the Ki-67 protein in procured FFPE breast carcinoma tissue sections were assessed using an exemplary Ki-67 IHC assay. 148 specimens were stained using the exemplary Ki-67 IHC assay. The specimens reflected a wide range of Ki-67 expression levels and included both excision (n=100) and core needle biopsy (CNB) (n=48) specimens. Small populations of specimens were sister blocks from the same case, and therefore, the mean scores from these blocks were used to perform the diffusion analysis. The diffusion analysis was performed on 113 unique specimens (excision, n=80; CNB, n=33).

[0191] <Investigation of specificity of clinical trial assays> A. Western blot Cell lysates from two cancer cell lines, SKBR3 and IM-9, were used in Western immunoblotting to demonstrate the specificity of the MIB-1 antibody against Ki-67. Samples were separated by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) together with a protein molecular weight marker ladder (Novex Hi-Mark, Fisher Scientific) and then transferred to a polyvinylidene fluoride membrane. To show the inhibition of Ki-67 MIB-1 antibody binding in the presence of a peptide (Abcam 15581) derived from the region of the Ki-67 protein containing the binding epitope, the blot was cut into three identical strips each containing the transferred SKBR3 and IM-9 cell lysate proteins. One strip was incubated with the MIB-1 clone alone as the primary antibody, and the other two were incubated with the MIB-1 antibody pre-mixed with different amounts of the inhibitory peptide (5× and 15× weight excess). After primary antibody incubation, the Ki-67 protein was detected using a goat anti-mouse fluorescent-tagged secondary antibody with SUPERSIGNAL WEST FEMTO (trademark) substrate (Fisher Scientific). After imaging, the Ki-67 primary antibody was stripped from the blot and re-stained with a glyceraldehyde-3-phosphate dehydrogenase (GAPDH) housekeeping protein antibody to show equal loading of the cell lysate proteins. The detection method for the housekeeping protein was a goat anti-mouse fluorescent-tagged secondary antibody.

[0192] B. Immunoreactivity: 31 normal tissue tests IHC-based specificity tests were performed on a sample set consisting of excised specimens from three different cases, each of the 30 tissue types recommended by the FDA 16 and three normal bladder specimens.

[0193] <Ki-67 IHC assay robustness investigation> The robustness of the Ki-67 IHC assay was assessed by evaluating it under various laboratory conditions (diluted target retrieval solution pH range 5.9–6.5, tissue section thickness of 3–6 μm, and staining procedures over the night and weekend).

[0194] The effects of pre-analytical variables were also investigated. For the evaluation of fixative type and fixation time, archived tonsil specimens (n=4 per condition tested in triplicates) treated with various fixatives (i.e., 10% neutral buffered formalin (NBF), acetic formalin alcohol, Bouin's solution, 10% unbuffered formalin, and 10% NBF followed by 70% ethanol for 4–5 days) and fixation times (24, 48, or 72 hours) were stained. Additionally, fixation and ischemia times were evaluated for fresh tonsil tissue cut into approximately equal-sized fragments, placed under moist gauze for various ischemia times at ambient temperature, and then placed in NBF fixative. Fixation times of 6–72 hours and ischemia times of 30 minutes–72 hours were investigated. These prospectively recovered tonsil tissues treated under these specified conditions were obtained by the Cooperative Human Tissue Network.

[0195] <Tumor heterogeneity survey> Tumor heterogeneity was assessed in FFPE breast carcinoma specimens stained with the Ki-67 IHC assay. Intrablock tissue heterogeneity was assessed in 36 specimens across discontinuous sections spanning at least 200 μm in length. Intracase heterogeneity was assessed across 25 unique breast carcinoma specimen cases in sister block pairs (consisting of 50 total unique block IDs). Sister blocks were defined as paraffin blocks prepared from the same specimen. The positive / negative diagnostic status of each slide was determined based on a cutoff (or greater than or equal to 20% (≧)). Comparisons with the consensus were made using the diagnostic status of each block, and the negative agreement percentage, positive agreement percentage, and overall agreement percentage were calculated using these comparisons.

[0196] <Ki-67 IHC assay accuracy investigation> The accuracy test was performed internally at Dako North America to demonstrate that the assay yields consistent results in routine daily testing. Repeatability was measured within the instrument, within the staining rack, and within the day. Assay accuracy was measured across different Dako OMNIS™ instruments, across test days, and across different lots of primary antibody and supplementary reagent lots. Since the Dako OMNIS™ platform is fully automated, operator variability was determined to be negligible. Breast cancer tumor specimens with extensive expression with respect to the percentage of positive tumor cells were selected for internal analytical accuracy investigation. Efforts were made to include approximately 20 - 25% of the specimens considered to be in the vicinity of the cut-off range (10 - 30%). Repeatability and accuracy investigations across instruments, days, and supplementary reagent lots were performed using replicates from 32 breast cancer tumor specimens. The Ki-67 IHC assay lot-to-lot test utilized replicates from 40 specimens. The accuracy test was performed over 5 non-consecutive days. The stained slides were scored for their diagnostic concordance in positive and negative Ki-67 expression using a cut-off greater than or equal to (≧) 20%.

[0197] Inter-observer accuracy was evaluated by testing the scoring reproducibility among 3 trained and certified pathologists who performed 3 independent Ki-67 evaluations on a set of 60 specimens. Information regarding HR status and HER2 status was not available for all specimens. The consensus for the inter-observer analysis was determined as the majority call for the sample across all 9 observations.

[0198] <External reproducibility investigation across multiple facilities> Inter- and intra-institutional reproducibility was performed at three external Clinical Laboratory Improvement Amendments (CLIA) accredited laboratories (referred to as “the facilities”). One trained and accredited technician from each laboratory performed five automated IHC staining runs using an exemplary Ki-67 IHC assay over five non-continuous days. Each staining run contained replicate sections from the same set of breast carcinoma specimens (n=30), with one slide stained with NCR and one slide stained with the Ki-67 primary antibody. Efforts were made to balance the proportions of specimens greater than or equal to 20% (≧) positive and less than 20% (<) negative, and to include approximately 20–25% of specimens considered to be near the cutoff region (10–30%). Each blinded and randomized set of replicated sections was evaluated by a single trained and certified pathologist at each of three external facilities, with a minimum washout period of 14 days between each evaluation.

[0199] Inter-observer and intra-observer reproducibility across pathologists from different laboratories was assessed by blinded, randomized slide evaluation at three external CLIA-accredited laboratories. Samples were pre-stained using an exemplary Ki-67 IHC assay at Dako North America and sent to the three external sites for evaluation. Efforts were made to balance the proportion of positive / negative specimens to include approximately 20–25% of specimens considered to be near the cutoff range. One trained and accredited pathologist at each site performed three independent Ki-67 stain evaluations on the same set of breast carcinoma specimens (n=60) representing the dynamic range of Ki-67 expression. A minimum washout period of 14 days was observed between each readout. Pathologists participating in the external inter-observer and intra-observer studies were different from those who scored the inter- and intra-institutional reproducibility studies.

[0200] <Statistical analysis> For each specimen, a comparison was made between the IHC status (diagnostically positive / negative) of each test condition and the consensus (the most frequently occurring diagnostic observation within the specimen). Subsequently, pooled comparisons with the consensus were used to calculate agreement parameters. The negative percent agreement (NPA), positive percent agreement (PPA), and overall percent agreement (OA) were calculated for each of the inter-day, inter-device, inter-lot, repeatability, robustness, and reproducibility investigations using the corresponding two-sided 95% percentile bootstrap confidence intervals (CI). When a given parameter (NPA, PPA, and / or OA) resulted in zero-disagreement comparisons, the Wilson score method was used to calculate the CI. The non-parametric regression method of locally estimated scatterplot smoothing (LOESS) was applied to the inter-external observer reproducibility data to evaluate the scoring trend of specimens across the dynamic range of Ki-67 expression. LOESS curves were used to compare the scoring trends across multiple observers as well as across multiple readings within each observer.

[0201] <Results> <Definition of Positive Ki-67 Staining> To achieve a high degree of scoring reproducibility, clear and comprehensive scoring guidelines were developed for a dichotomous cut-off of invasive tumor cells stained positive at 20% or greater (≥). Since any staining intensity greater than (>) 1+ was considered positive, the distinction between staining intensities 0 and 1+ was a significant challenge. Therefore, specific focus was placed on defining and training the discrimination of the lower limit threshold of staining. When assessing whether tumor cells were negative to weakly positive, cells presenting a "gray" color in the nucleus were considered to insufficiently meet the lower limit threshold and were excluded from the Ki-67 score (Figure 57). In addition, a detailed description of potential artifacts that could distort results if not managed in the defined procedure was provided during pathologist training.

[0202] <Prototype Comparison with Neoadjuvant Investigations of Abemaciclib and Anastrozole in HR+, HER2- Breast Cancer> Prior to the final determination of the clinical trial assay format, an informal comparison of the prototype with the LDT used in the Phase 2 neoadjuvant investigation of abemaciclib and anastrozole in HR+, HER2− breast cancer was conducted. Similar quality immunoreactivity was observed between the two assays (Figures 58A - F). In some cases, slight differences in hematoxylin appearance and nuclear morphology were observed. When the same scoring method was applied to both assays, a high degree of concordance was observed across a small sample set (see Table 7 below).

[0203] <Ki-67 IHC assay specificity> The specificity of the MIB-1 clone for the Ki-67 antigen has been previously described. This investigation confirmed that MIB-1 detected protein bands corresponding to the predicted sizes for the Ki-67 antigen, 345 kDa and 395 kDa, in Western blots using lysates of the cell line IM-9. As expected, the cell line SKBR-3, which has minimal levels of expressed Ki-67 RNA, did not express detectable Ki-67 protein (Figure 59). Binding of the Ki-67 MIB-1 antibody to the Ki-67 protein could be completely abolished by the addition of a peptide containing the region reported to contain the epitope of this antibody (Figure 59). Partial blockade of binding was achieved when the MIB-1 antibody was pre-incubated with a 5-fold weight excess of the peptide, and no binding was detected when the peptide was added at a 15-fold weight excess.

[0204] Table 4 below summarizes an IHC-based specificity test on 31 normal tissues demonstrating that Ki-67 IHC detects Ki-67 protein in appropriate tissue elements and cell compartments. Nuclear staining was observed in the majority of specimens, and no unexpected results were observed in the cell types or tissue types tested. The staining observed was consistent with the reported literature on Ki-67 IHC expression in normal tissues.

[0205] <Ki-67 IHC assay sensitivity> The prevalence of Ki-67 protein was evaluated in 113 unique FFPE specimens stained for Ki-67 using the clone MIB-1 monoclonal antibody, regardless of HR or HER2 status. The specimens reflected a wide range of Ki-67 expression levels (Figs. 60A–D, Fig. 61) and included both resection (n = 80) and CNB (n = 33) specimens. Ki-67 expression was observed in tumor cells as well as in small populations of benign elements including lymphocytes, stromal cells, and epithelium. Ki-67 IHC consistently detected Ki-67 protein across the relevant expression range (0–75%) in commercially procured specimens (Fig. 61). Based on the cutoff (<20% of tumor cells positive), 74% of specimens were negative and 26% were positive (≧20% of tumor cells positive). This prevalence is consistent with reported literature. The distribution was similar in resection specimens and in CNB specimens (data not shown).

[0206] <Ki-67 IHC assay robustness> The robustness test was performed to evaluate the staining performance of the Ki-67 IHC assay under various laboratory conditions. The Ki-67 IHC assay demonstrated compatibility with the Dako OMNIS™ workflow option that enables the instrument to be pre-programmed and pre-loaded for delayed start and used overnight or over the weekend, and when the staining was completed, the slides were removed from the loading tray. In addition, the Ki-67 IHC assay achieved highly consistent results when tested with a wide range of target activation solution pH values from 5.9 to 6.5 and tissue section thicknesses from 3 to 6 μm. The analysis results are summarized in Table 5. Evaluation of pre-analytical variables demonstrated that an ischemia time of less than 1 hour was acceptable and fixation with 10% NBF was required, which is consistent with the optimal test recommendations for estrogen receptor (ER), progesterone receptor (PR), and HER2 biomarker tests in breast cancer. Tonsil specimens fixed with acetic acid formalin alcohol, 10% non-buffered formalin, and Bouin's solution, or tonsils held in 70% ethanol for four to five days after fixation in 10% NBF showed altered immunostaining intensity in Ki-67 positive cells when compared to 24 hours of 10% NBF under reference conditions. Fixation times of 6 to 72 hours produced equivalent results when 10% NBF was used and the ischemia time was maintained at or below 1 hour.

[0207] <Tumor heterogeneity assessed using an exemplary Ki-67 IHC assay> The investigation of within-block and within-case heterogeneity showed a high rate of concordance (Table 5). The results demonstrate that the Ki-67 diagnostic classification was consistent within tissue blocks and between sister blocks from the same case.

[0208] <Investigation of the accuracy of the Ki-67 IHC assay> All accuracy studies achieved lower confidence intervals (LBCI) greater than 90% (>)95% for NPA, PPA, and OA. Analysis results for internal studies are summarized in Table 7. Results for inter-observer and intra-observer studies are illustrated in Figure 62. In three cases, the samples were determined to have fewer than 200 viable tumor cells required for evaluation; therefore, only 537 observations were included in the analysis. Inter-observer reproducibility studies achieved estimated NPA, PPA, and OA points of 98.9%, 95.2%, and 97.2%, respectively, along with two-sided 95% LBCI values ​​of 97.2%, 91.7%, and 95.4%, respectively. Regarding intra-observer reproducibility, 95% LBCI values ​​of 98.3%, 94.4%, and 96.8% were achieved, along with estimated NPA, PPA, and OA points of 99.3%, 96.8%, and 98.1%, respectively.

[0209] Prior to assay validation, additional exploratory scoring was performed on a small population of early surveys to assess the potential practicality of the hotspot scoring method. The hotspot scores tended to produce a larger mean standard deviation across low and high Ki-67 expression tumors, resulting in lower agreement among observers (data not shown), which could be partly explained by less rigorous observer training for the method. These findings are relevant to similar scoring comparisons. 25 This is consistent with previous observations.

[0210] <External reproducibility of exemplary Ki-67 IHC assays across multiple facilities> Inter-institutional and intra-institutional reproducibility was performed by testing staining and scoring reproducibility across three external facilities and within the facility for a total of 15 sets of replicas (n=30) of unstained slide sets. Analysis was performed on 450 observations (compared to consensus), and consensus was determined as the majority call for the sample across all 15 observations and across 5 observations for sample-institutional combinations. For inter-institutional reproducibility, estimated NPA, PPA, and OA points of 94.7%, 100.0%, and 97.3% were achieved, along with two-sided 95% LBCI values ​​of 88.4%, 98.3%, and 94.2%, respectively (Figure 63). Intra-institutional reproducibility was assessed by testing intra-institutional staining and scoring reproducibility across each of five test runs. Consensus for intra-institutional reproducibility analysis was determined as the majority call for the sample across all 5 observations within a given facility. Regarding intra-institutional reproducibility, 95% LBCI values ​​of 98.2%, 96.9%, and 98.2% were achieved, along with estimated NPA, PPA, and OA points of 100.0%, 98.8%, and 99.3%, respectively (Figure 63). Since all inter-institutional and intra-institutional reproducibility parameters met the predefined acceptance criteria, this study demonstrates that the Ki-67 IHC assay is reproducible across multiple institutions and within the same institution across multiple days / runs.

[0211] Inter-observer precision was also assessed externally by testing scoring reproducibility among three trained and certified pathologists from different laboratories, each performing three independent Ki-67 assessments on a set of 60 pre-stained specimens. Thus, analysis was performed on 540 observations, and the consensus was a majority call across all nine observations for the samples. With respect to inter-observer reproducibility, NPA, PPA, and OA point estimates of 98.9%, 97.8%, and 98.3% were achieved, along with two-sided 95% LBCI values ​​of 97.7%, 95.3%, and 96.9%, respectively (Figure 63). Intra-observer precision was assessed by testing scoring reproducibility among each of the three external pathologists using the same set of scores from 60 specimens across three blinded and randomized reads. Analysis was performed on 540 observations, and the consensus was a majority call across three observations for the sample-observer combination. Regarding intra-observer reproducibility, 95% LBCI values ​​of 97.0%, 97.1%, and 97.4%, respectively, were achieved for NPA, PPA, and OA point estimates of 98.5%, 98.6%, and 98.5%, respectively (Figure 63). Observers followed similar trends in scoring across the dynamic range. As expected, score variability increased as the Ki-67 expression range increased. However, there was no significant inter-observer variability (Figures 64 and 65). These results demonstrate that a cutoff greater than or equal to 20% (≧) is reproducible within and between pathologists from different laboratories when used on Ki-67 IHC-stained breast carcinoma specimens and scored using the Ki-67 IHC algorithm.

[0212] <Consideration> Ki-67, as determined by IHC, is a well-known biomarker widely used to assess tumor growth in several tumor types, but its broad clinical adoption in the management of breast cancer is limited by a lack of standardization. Although some oncologists consider Ki-67 IHC when making treatment decisions for breast cancer, the American Society of Clinical Oncology has not approved the use of Ki-67 to determine whether a patient should receive chemotherapy or to guide adjuvant endocrine therapy choices. The International Ki-67 Breast Cancer Working Group has conducted several international ring trials to determine inter-laboratory and intra-laboratory reproducibility and identify major sources of variability (Phase 1), and to determine whether standardization of the Ki-67 scoring methodology can lead to a high degree of agreement (Phase 2). Based on the findings of both studies, the report stated that "until the pre-analysis and analytical characteristics of Ki67 for IHC can be standardized, and until they can be standardized, this assay platform should not be used to advance patient care decisions in clinical practice." While a Phase 3 collaborative trial conducted on core-cut biopsies reported a higher level of observer agreement, further consideration was needed before Ki-67 IHC could be recommended for advancing patient care decisions, despite advances in assay standardization.

[0213] The first prototype antibody against Ki-67, which recognizes the human nuclear antigen associated with cell proliferation in Hodgkin lymphoma cell lines, was discovered in 1983. However, the prototype Ki-67 antibody could only be used for frozen sections, and several monoclonal and polyclonal antibodies against the Ki-67 antigen were subsequently developed. A comparative study of Ki-67 equivalent antibody clones (MIB-1, MM1, NCL-Ki-67p, and Rah Ki-67) reported that the MIB-1 antibody clone had higher sensitivity and better visible staining, with nuclei that were more diffuse and stained more strongly compared to the other clones. Furthermore, the International Ki-67 Breast Cancer Working Group recommends MIB-1 as the "gold standard" for proliferation analysis.

[0214] Therefore, an exemplary Ki-67 IHC assay was developed using MIB-1 clones produced at a manufacturing facility in Dako North America under stringent quality control conditions suitable for a US Class III in vitro diagnostic device. Staining was performed on FFPE tissue, which offers greater convenience compared to using frozen tissue for use in the assay in pathological examination and for high-precision medical applications. Analytical investigations were conducted on excised and core needle biopsy specimens to closely replicate how breast carcinoma is managed in clinical practice. The Ki-67 IHC assay consistently detected the Ki-67 antigen across a wide range of commercially sourced FFPE breast carcinoma samples expressing Ki-67 (expression levels from 0 to 75%). Specificity data demonstrated that the MIB-1 clone is specific to the Ki-67 antigen, and that the assay detected the protein in appropriate tissue elements and cellular compartments in both normal and neoplastic specimens.

[0215] International recommendations for Ki-67 assessment advocate counting a minimum of 500 malignant invasive cells and including data from hotspots in the overall score. Denkert et al. reported that when using a 15% cutoff value for Ki-67, counting at least 500–1000 cells is necessary to achieve an acceptable error rate. To maximize the available clinical trial specimens while maintaining a high degree of scoring reproducibility, a scoring algorithm and guidelines were developed with a minimum requirement of 200 viable invasive tumor cells that must be present in the specimen to determine the percentage of Ki-67-positive cells; however, most specimens tended to contain tumor content well above the minimum. The scoring methodology proved robust and consistent even when using discontinuous sections. Several studies have reported challenges in Ki-67 IHC interpretation, which may stem from intratumoral heterogeneity issues, including spatial and temporal heterogeneity associated with Ki-67. Heterogeneity can lead to substantial differences in Ki-67 scores between individual samples within the same specimen. In this study, intrablock and intracase (sister block) heterogeneity studies demonstrated high overall agreement rates, with 96.5% point estimates and 92.4% LBCI, respectively, and 96.0% point estimates along with 90.0% LBCI.

[0216] In addition to developing standardized guidelines for Ki-67 scoring, systematic training was incorporated prior to the conduct of the study. Internal observers and external laboratory pathologists were trained and tested on the scoring algorithm / guidelines. In both Phase 2 and Phase 3 international collaborative trials, evaluating pathologists were able to achieve better agreement in Ki-67 assessment when laboratories followed standardized training and scoring methods. In this study, the inventors report the external validation and comparability of Ki-67 staining and scoring, both intra-institutional and inter-institutional, after pathologist training. External reproducibility study results demonstrated robust reproducibility of scoring using the Ki-67 IHC assay in breast cancer specimens, with point estimates of 98.3% (inter-observer reproducibility) and 98.5% (intra-observer reproducibility).

[0217] The Ki-67 IHC assay was designed to run on the Dako OMNIS® platform, which employs a simple user interface, a fully automated workflow to ensure consistency of staining results, continuous patient case delivery, and rapid turnover times. Lot-to-lot testing of supplemental reagents was performed to demonstrate that the reagents used in combination with the Ki-67 IHC assay produce consistent results in normal daily testing. Instrument, staining rack, and intraday repeatability, as well as accuracy between Dako OMNIS® instruments, test days, and assay lots, further confirmed that the assay produces consistent results in normal daily testing. Robustness testing (target retrieval solution pH, tissue section thickness, and overnight / weekend staining) demonstrated that the Ki-67 IHC assay produces consistent Ki-67 staining under a variety of laboratory conditions.

[0218] While the study demonstrates high reproducibility in scoring across laboratories, there may be opportunities for further improvement in assay standardization. Limitations may exist regarding the manual interpretation of Ki-67 scoring using qualitative positive / negative results based on predefined cutoffs. The emergence of digital image analysis (DIA) platforms may mitigate some of these potential limitations. In a study by Acs et al., the authors examined the reproducibility of Ki-67 measurement results across three DIA platforms and found high inter- and intra-DIA platform reproducibility. Another limitation of this study is that Ki-67 IHC pharmDx has so far been validated against only one staining platform (Dako OMNIS®). Furthermore, prior to conducting these validation studies, there were no generally accepted scoring methods with practical applicability for Ki-67 as a selective biomarker in randomized clinical studies. Whole-slide scoring was preferred over the hotspot scoring method because additional variability potentially attributable to different scorers identifying different areas as hotspots was observed when using the hotspot method. An additional concern was that samples that did not present clear hotspots could be unassessable without further guidance. The acceptance of standardized Ki-67 assay interpretation guidelines will likely enable future refinement of clinical society guidelines and recommendations for the Ki-67 assay.

[0219] In summary, the inventors describe the development and analytical validation of a highly sensitive, specific, accurate, robust, and reproducible Ki-67 IHC assay for risk assessment in breast cancer. This novel assay is standardized to ensure that Ki-67 results are reproducible and therefore clinically relevant. This Ki-67 IHC assay was used in a Phase 3 clinical trial of abemaciclib in combination with standard adjuvant endocrine therapy versus standard adjuvant endocrine therapy alone in patients with early-stage, HR+, HER2- breast cancer. The assay, performed on FFPE tissue using an automated platform, exhibits well-established analytical performance and therefore may enable broader global implementation to help select breast cancer patients with associated Ki-67 expression. The inventors demonstrate that the standardization of the Ki-67 scoring methodology, as well as the pre-analytical variables and analytical variables, resulted in high agreement in staining and scoring across multiple laboratories. These advances represent progress in testing the practicality of Ki-67 IHC, which enables patient care decisions in appropriate clinical settings.

[0220] [Explanation of the diagram] Figure 57. Breast carcinoma specimens stained with Ki-67 primary antibody, exhibiting both negative and weakly positive staining. Negative cells show gray hematoxylin counterstaining and are indicated by black arrows. Cells with weakly positive 1+ staining are indicated by green arrows (20× objective lens; scale bar is 50 μm).

[0221] Figure 58: Qualitative comparison of the original Ki-67 assay with neoadjuvant studies of abemaciclib and anastrozole in HR+, HER2- breast cancer LDT. Representative images were taken from tumors with Ki-67 positivity near the ≥20% cutoff. Breast carcinoma tissue sections in the left column were assayed using the original assay (A, 12%; C, 25%; E, 35%); adjacent tissue levels were assayed using LDT, as shown on the right (B, 10%; D, 15%; F, 35%). Each score corresponds to the entire specimen. Images A–F are representative fields of view taken using a 20× objective lens; scale bar is 80 μm. Abbreviations: LDT, Laboratory-Developed Test.

[0222] Figure 59: The Ki-67 protein is expressed in IM-9 cells, a cell line from which an immune protein against MIB-1 is derived, and not in SKBR-3 cells, a cell line with very low levels of Ki-67 RNA expression. Peptides containing regions within the immune protein reduce binding to the IM-9 protein when pre-incubated with the antibody. GAPDH loading controls demonstrate equal loading of cell lysates. Abbreviation: GAPDH, glyceraldehyde-3-phosphate dehydrogenase.

[0223] Figure 60: Expression levels in breast cancer tissue bank specimens stained with the Ki-67 assay. Ki-67 was detected across relevant regions in breast cancer FFPE specimens. The images shown are from archived tumor samples with Ki-67 scores of 0% (A), 19% (B), 28% (C), and 52% (D), respectively (20× objective lens; scale bar is 50 μm). Abbreviations: FFPE, formalin-fixed paraffin-embedded.

[0224] Figure 61: Ki-67 IHC assay sensitivity. Dynamic range distribution of scores across 113 breast cancer samples, including excision and core needle biopsy. The green line indicates a diagnostic cutoff greater than or equal to 20% (≧).

[0225] Figure 62: Summary of agreement percentages for the Ki-67 IHC assay observer precision survey conducted internally at Dako North America.

[0226] Figure 63: Summary of agreement percentages for external reproducibility studies of the Ki-67 IHC assay conducted at three external facilities. The two graphs on the left show inter- and intra-institutional reproducibility, measuring assay staining and scoring interpretation. The two graphs on the right show inter- and intra-observer reproducibility, measuring scoring interpretation only. The horizontal dotted line indicates the acceptable threshold for external reproducibility studies.

[0227] Figure 64: Locally approximate scatter plot smoothing (LOESS) of externally reproducible inter-observer Ki-67 continuous scores grouped by observer. The LOESS line shows the mean trend across inter-observer data using locally weighted regression. Abbreviations: LOESS, Locally Approximate Scatter Plot Smoothing.

[0228] Figure 65: Locally approximate scatter plot smoothed (LOESS) of externally reproducible inter-observer Ki-67 continuous scores grouped by observer / reading combination. The LOESS line shows the mean trend across inter-observer data using locally weighted regression. Abbreviation: LOESS, Local Approximate Scatter Plot Smoothing.

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[0236] [Special Report] [ PubMed ] Lindboe CF, Torp SH. Comparison of Ki-67 equivalent antibodies. J Clin Pathol. 2002;55(6):467-471. 2. Luporsi E, Andre F, Spyratos F, et al. Ki-67: level of evidence and methodological considerations for its role in the clinical management of breast cancer: an analytical and critical review. Breast Cancer Res Treat. 2012;132(3):895–915. [ PMC free article ] [ PubMed ] 3. Urruticoechea A, Smith IE, Dowsett M. Proliferation marker Ki-67 in early breast cancer. J Clin Oncol. 2005;23(28):7212–7220. 4. Stuart-Harris R, Caldas C, Pinder SE, Pharoah P. Proliferation markers and survival in early breast cancer: a systematic review and meta-analysis of 85 studies in 32,825 patients. Breast. 2008;17(4):323-334. 5. Fasching PA, Gass P, Haberle L, et al. Prognostic effect of Ki-67 in common clinical subgroups of patients with HER2-negative, hormone receptor-positive early breast cancer. Breast Cancer Res Treat. 2019;175(3):617-625. 6. Bustreo S, Osella-Abate S, Cassoni P, et al. Optimal Ki67 cut-off for luminal breast cancer prognostic evaluation: a large case series study with a long-term follow-up. Breast Cancer Res Treat. 2016;157(2):363-371. 7. Tashima R, Nishimura R, Osako T, et al. Evaluation of an optimal cut-off point for the Ki-67 index as a prognostic factor in primary breast cancer: a retrospective study. PLoS One. 2015;10(7):e0119565. 8. Niazi MKK, Downs-Kelly E, Gurcan M. Hot spot detection for breast cancer in Ki-67 stained slides: image dependent filtering approach. Vol 9041: SPIE; 2014. 9. Inwald EC, Klinkhammer-Schalke M, Hofstadter F, et al. Ki-67 is a prognostic parameter in breast cancer patients: results of a large population-based cohort of a cancer registry. Breast Cancer Res Treat. 2013;139(2):539-552. 10. Dowsett M, Nielsen TO, A'Hern R, et al. Assessment of Ki67 in breast cancer: recommendations from the International Ki67 in Breast Cancer working group. J Natl Cancer Inst. 2011;103(22):1656-1664. 11. Sledge GW, Jr., Toi M, Neven P, et al. MONARCH 2: abemaciclib in combination with fulvestrant in women with HR+, HER2- advanced breast cancer who had progressed while receiving endocrine therapy. J Clin Oncol. 2017;35(25):2875-2884. 12. Dickler MN, Tolaney SM, Rugo HS, et al. MONARCH 1, a phase II study of abemaciclib, a CDK4 and CDK6 Inhibitor, as a single agent, in patients with refractory HR(+) / HER2(-) metastatic breast cancer. Clin Cancer Res. 2017;23(17):5218-5224. 13. Johnston S, Martin M, Di Leo A, et al. MONARCH 3 final PFS: a randomized study of abemaciclib as initial therapy for advanced breast cancer. NPJ Breast Cancer. 2019;5:5. 14. Hurvitz SA, Martin M, Press MF, et al. Potent cell-cycle inhibition and upregulation of immune response with abemaciclib and anastrozole in neoMONARCH, phase II neoadjuvant study in HR(+) / HER2(-) breast cancer. Clin Cancer Res.2020;26(3):566-580. 15. Lilly E, Company, Inc NF. Endocrine Therapy With or Without Abemaciclib (LY2835219) Following Surgery in Participants With Breast Cancer. https: / / ClinicalTrials.gov / show / NCT03155997; 2017. 16. FDA. Guidance for Submission of Immunohistochemistry Applications to the FDA 1998. 17. Key G, Becker MH, Baron B, et al. New Ki-67-equivalent murine monoclonal antibodies (MIB 1-3) generated against bacterially expressed parts of the Ki-67 cDNA containing three 62 base pair repetitive elements encoding for the Ki-67 epitope. Lab Invest. 1993;68(6):629-636. 18. Klijn C, Durinck S, Stawiski EW, et al. A comprehensive transcriptional portrait of human cancer cell lines. Nat Biotechnol. 2015;33(3):306-312. 19. Cattoretti G, Becker MH, Key G, et al. Monoclonal antibodies against recombinant parts of the Ki-67 antigen (MIB 1 and MIB 3) detect proliferating cells in microwave-processed formalin-fixed paraffin sections. J Pathol. 1992;168(4):357-363. 20. Hsu CY, Yang CF, Liao LR, Ho HL, Ho DM. Tonsil surface epithelium is ideal for monitoring Ki-67 immunohistochemical staining. Histopathology. 2013;63(6):810-816. 21. Kurbel S, Dmitrovic B, Marjanovic K, Vrbanec D, Juretic A. Distribution of Ki-67 values within HER2 & ER / PgR expression variants of ductal breast cancers as a potential link between IHC features and breast cancer biology. BMC Cancer. 2017;17(1):231. 22. Regan MM, Francis PA, Pagani O, et al. Absolute benefit of adjuvant endocrine therapies for premenopausal women with hormone receptor-positive, human epidermal growth factor receptor 2-negative early breast cancer: TEXT and SOFT trials. J Clin Oncol. 2016;34(19):2221-2231. 23. Allison KH, Hammond MEH, Dowsett M, et al. Estrogen and progesterone receptor testing in breast cancer: American Society of Clinical Oncology / College of American Pathologists Guideline Update. Arch Pathol Lab Med. 2020;144(5):545-563. 24. Wolff AC, Hammond MEH, Allison KH, et al. Human epidermal growth factor receptor 2 testing in breast cancer: American Society of Clinical Oncology / College of American Pathologists Clinical Practice Guideline Focused Update. Arch Pathol Lab Med. 2018;142(11):1364-1382. 25. Leung SCY, Nielsen TO, Zabaglo L, et al. Analytical validation of a standardized scoring protocol for Ki67: phase 3 of an international multicenter collaboration. NPJ Breast Cancer. 2016;2:16014. 26. Harris LN, Ismaila N, McShane LM, Hayes DF. Use of biomarkers to guide decisions on adjuvant systemic therapy for women with early-stage invasive breast cancer: American Society of Clinical Oncology Clinical Practice Guideline Summary. J Oncol Pract. 2016;12(4):384-389. 27. Polley MY, Leung SC, McShane LM, et al. An international Ki67 reproducibility study. J Natl Cancer Inst. 18 2013;105(24):1897-1906. 28. Polley MY, Leung SC, Gao D, et al. An international study to increase concordance in Ki67 scoring. Mod Pathol. 2015;28(6):778-786. 29. Gerdes J, Schwab U, Lemke H, Stein H. Production of a mouse monoclonal antibody reactive with a human nuclear antigen associated with cell proliferation. Int J Cancer. 15 1983;31(1):13-20. 30. Denkert C, Budczies J, von Minckwitz G, Wienert S, Loibl S, Klauschen F. Strategies for developing Ki67 as a useful biomarker in breast cancer. Breast.2015;24 Suppl 2:S67-72. 31. Tramm T, Kyndi M, Sorensen FB, Overgaard J, Alsner J. Influence of intra-tumoral heterogeneity on the evaluation of BCL2, E-cadherin, EGFR, EMMPRIN, and Ki-67 expression in tissue microarrays from breast cancer. Acta Oncol. 2018;57(1):102-106. 32. Nassar A, Radhakrishnan A, Cabrero IA, Cotsonis GA, Cohen C. Intratumoral heterogeneity of immunohistochemical marker expression in breast carcinoma: a tissue microarray-based study. Appl Immunohistochem Mol Morphol. 2010;18(5):433-441. 33. Acs B, Pelekanou V, Bai Y, et al. Ki67 reproducibility using digital image analysis: an inter-platform and inter-operator study. Lab Invest. 2019;99(1):107-117.

[0237] Several embodiments of the present invention are described. Nevertheless, it can be understood that various modifications can be made without departing from the spirit and scope of the invention. Accordingly, other embodiments are within the scope of the following claims.

Claims

1. (a) staining a tissue sample with an antibody that specifically binds to Ki-67; and (b) A step of determining the total number of Ki-67 stained surviving invasive tumor cells or cancer cells in at least a portion of the tissue sample, and the total number of stained and unstained surviving invasive tumor cells or cancer cells. Here, tumor cells or cancer cells having only cytoplasmic or membrane staining; non-invasive neoplasms or carcinoma cells in situ, necrotic tumor cells or cancer cells, apoptotic nuclei or nuclear debris, tumor cells or cancer cells in poorly preserved tissue areas, benign epithelial cells, non-neoplastic cells and / or lymphocytes with nuclear staining, apoptotic cells, necrotic cells, cells that do not exhibit the intended color, cells in which staining reflecting the binding of the antibody to Ki-67 is not present throughout the chromatin distribution in the nucleus, cells exhibiting membrane staining, cells exhibiting cytoplasmic staining, lymphocytes, and stromal cells are excluded, and, Cells that (i) exhibit a clearly intended color staining signal, (ii) have staining that coincides with the nucleus, and (iii) have staining that covers the entire chromatin distribution within the nucleus are counted as viable invasive tumor cells or cancer cells for Ki-67 staining. ; and (c) Step to determine the Ki-67 score (%), Here, the Ki-67 score (%) is the number of Ki-67 stained surviving invasive tumor cells or cancer cells found in the tissue sample divided by the total number of stained and unstained surviving invasive tumor cells or cancer cells, multiplied by 100. A method for assessing the degree of Ki-67 expression in tumors or cancer, including the following.

2. The method according to claim 1, wherein the cancer cells or tumor cells are invasive breast carcinoma or breast cancer cells.

3. The method according to claim 1 or 2, further comprising the step of determining whether the Ki-67 score (%) is 10 or more; or the step of determining whether the Ki-67 score (%) is 20 or more.

4. The method according to any one of claims 1 to 3, wherein the intended color is brown, and brown is produced by staining with 3,3'-diaminobenzidine (DAB).

5. The method according to any one of claims 1 to 4, wherein the Ki-67 score (%) is calculated in a portion of the tissue sample containing at least 100 cells, or in a portion of the tissue sample containing at least 200 cells.

6. (a) The tissue sample is derived from a patient with lymph node-positive, early-stage, excised hormone receptor-positive (HR+), human epidermal growth factor receptor 2-negative (HER2-) breast cancer; or (b) The cancer is breast cancer or breast carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma, or the cancer is metastatic breast cancer. The method according to any one of claims 1 to 5.

7. The method according to any one of claims 1 to 6, wherein it is determined whether a tissue section is suitable for determining and scoring the amount of nuclear expression of the protein Ki-67, and if 100 or more Ki-67-stained viable invasive tumor cells or cancer cells are present, the tissue section is considered suitable for evaluation.

8. The method according to any one of claims 1 to 7, wherein a section or portion of the tissue sample is prepared on a slide or equivalent, and the section or portion of the tissue sample is stained on the slide.

9. The method according to any one of claims 1 to 8, wherein the antibody that specifically binds to Ki-67 comprises monoclonal mouse anti-Ki-67 antibody clone MIB-1.

10. The method according to any one of claims 1 to 9, wherein the total number of viable invasive tumor cells or cancer cells stained with Ki-67 is evaluated under high magnification.

11. The method according to any one of claims 1 to 10, wherein the tissue sample contains at least 200 surviving invasive tumor cells or cancer cells for determining the percentage of surviving invasive tumor cells or cancer cells stained with Ki-67.

12. (i) When the Ki-67 score (%) is less than 20% (<), the tissue sample is determined to have diagnostically negative Ki-67 expression. (ii) When the Ki-67 score (%) is greater than or equal to 20% (≧), the tissue sample is determined to have diagnostically positive Ki-67 expression. The method according to any one of claims 1 to 11.

13. The method according to any one of claims 1 to 12, wherein the tissue sample includes a formalin-fixed paraffin-embedded (FFPE) specimen.

14. The method according to any one of claims 1 to 13, wherein the tumor or cancer is breast cancer or mammary carcinoma, head and neck cancer, colorectal cancer, bladder cancer, lung cancer, gastrointestinal stromal tumor (GIST), prostate cancer, cervical cancer, or renal cell carcinoma.

15. The method according to claim 14, wherein the breast cancer or breast carcinoma is invasive or metastatic.

16. The method according to any one of claims 1 to 15, wherein the tissue sample is an isolated biopsy sample or an isolated needle biopsy sample, aspiration, cytological specimen or bone decalcification.

17. A kit comprising an antibody that specifically binds to Ki-67, and scoring guidelines comprising the method according to any one of claims 1 to 16.

Citation Information

Patent Citations

  • Genes and pathways regulated by miR-34 as targets for therapeutic interventions

    JP2010529966A

  • POSITIVE RATE MEASUREMENT METHOD USING DOUBLE DYEING METHOD FOR Ki-67 INDEX CALCULATION

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    JP2013508736A

  • Abemaciclib in combination with endocrine therapy for the adjuvant treatment of node-positive, early-stage hormone receptor-positive, human epidermal growth factor receptor 2-negative breast cancer

    JP2020517739A

  • Immunohistochemistry scoring methods and compositions

    US20170285029A1