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An Immunohistochemical Algorithm for Ovarian Carcinoma Typing

There are 5 major histotypes of ovarian carcinomas. Diagnostic typing criteria have evolved over time, and past cohorts may be misclassified by current standards. Our objective was to reclassify the recently assembled Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type...

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Autores principales: Köbel, Martin, Rahimi, Kurosh, Rambau, Peter F., Naugler, Christopher, Le Page, Cécile, Meunier, Liliane, de Ladurantaye, Manon, Lee, Sandra, Leung, Samuel, Goode, Ellen L., Ramus, Susan J., Carlson, Joseph W., Li, Xiaodong, Ewanowich, Carol A., Kelemen, Linda E., Vanderhyden, Barbara, Provencher, Diane, Huntsman, David, Lee, Cheng-Han, Gilks, C. Blake, Mes Masson, Anne-Marie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4978603/
https://www.ncbi.nlm.nih.gov/pubmed/26974996
http://dx.doi.org/10.1097/PGP.0000000000000274
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author Köbel, Martin
Rahimi, Kurosh
Rambau, Peter F.
Naugler, Christopher
Le Page, Cécile
Meunier, Liliane
de Ladurantaye, Manon
Lee, Sandra
Leung, Samuel
Goode, Ellen L.
Ramus, Susan J.
Carlson, Joseph W.
Li, Xiaodong
Ewanowich, Carol A.
Kelemen, Linda E.
Vanderhyden, Barbara
Provencher, Diane
Huntsman, David
Lee, Cheng-Han
Gilks, C. Blake
Mes Masson, Anne-Marie
author_facet Köbel, Martin
Rahimi, Kurosh
Rambau, Peter F.
Naugler, Christopher
Le Page, Cécile
Meunier, Liliane
de Ladurantaye, Manon
Lee, Sandra
Leung, Samuel
Goode, Ellen L.
Ramus, Susan J.
Carlson, Joseph W.
Li, Xiaodong
Ewanowich, Carol A.
Kelemen, Linda E.
Vanderhyden, Barbara
Provencher, Diane
Huntsman, David
Lee, Cheng-Han
Gilks, C. Blake
Mes Masson, Anne-Marie
author_sort Köbel, Martin
collection PubMed
description There are 5 major histotypes of ovarian carcinomas. Diagnostic typing criteria have evolved over time, and past cohorts may be misclassified by current standards. Our objective was to reclassify the recently assembled Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type cohorts using immunohistochemical (IHC) biomarkers and to develop an IHC algorithm for ovarian carcinoma histotyping. A total of 1626 ovarian carcinoma samples from the Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type were subjected to a reclassification by comparing the original with the predicted histotype. Histotype prediction was derived from a nominal logistic regression modeling using a previously reclassified cohort (N=784) with the binary input of 8 IHC markers. Cases with discordant original or predicted histotypes were subjected to arbitration. After reclassification, 1762 cases from all cohorts were subjected to prediction models (χ(2) Automatic Interaction Detection, recursive partitioning, and nominal logistic regression) with a variable IHC marker input. The histologic type was confirmed in 1521/1626 (93.5%) cases of the Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type cohorts. The highest misclassification occurred in the endometrioid type, where most of the changes involved reclassification from endometrioid to high-grade serous carcinoma, which was additionally supported by mutational data and outcome. Using the reclassified histotype as the endpoint, a 4-marker prediction model correctly classified 88%, a 6-marker 91%, and an 8-marker 93% of the 1762 cases. This study provides statistically validated, inexpensive IHC algorithms, which have versatile applications in research, clinical practice, and clinical trials.
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spelling pubmed-49786032016-08-26 An Immunohistochemical Algorithm for Ovarian Carcinoma Typing Köbel, Martin Rahimi, Kurosh Rambau, Peter F. Naugler, Christopher Le Page, Cécile Meunier, Liliane de Ladurantaye, Manon Lee, Sandra Leung, Samuel Goode, Ellen L. Ramus, Susan J. Carlson, Joseph W. Li, Xiaodong Ewanowich, Carol A. Kelemen, Linda E. Vanderhyden, Barbara Provencher, Diane Huntsman, David Lee, Cheng-Han Gilks, C. Blake Mes Masson, Anne-Marie Int J Gynecol Pathol Pathology of the Upper Genital Tract: Original Articles There are 5 major histotypes of ovarian carcinomas. Diagnostic typing criteria have evolved over time, and past cohorts may be misclassified by current standards. Our objective was to reclassify the recently assembled Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type cohorts using immunohistochemical (IHC) biomarkers and to develop an IHC algorithm for ovarian carcinoma histotyping. A total of 1626 ovarian carcinoma samples from the Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type were subjected to a reclassification by comparing the original with the predicted histotype. Histotype prediction was derived from a nominal logistic regression modeling using a previously reclassified cohort (N=784) with the binary input of 8 IHC markers. Cases with discordant original or predicted histotypes were subjected to arbitration. After reclassification, 1762 cases from all cohorts were subjected to prediction models (χ(2) Automatic Interaction Detection, recursive partitioning, and nominal logistic regression) with a variable IHC marker input. The histologic type was confirmed in 1521/1626 (93.5%) cases of the Canadian Ovarian Experimental Unified Resource and the Alberta Ovarian Tumor Type cohorts. The highest misclassification occurred in the endometrioid type, where most of the changes involved reclassification from endometrioid to high-grade serous carcinoma, which was additionally supported by mutational data and outcome. Using the reclassified histotype as the endpoint, a 4-marker prediction model correctly classified 88%, a 6-marker 91%, and an 8-marker 93% of the 1762 cases. This study provides statistically validated, inexpensive IHC algorithms, which have versatile applications in research, clinical practice, and clinical trials. Lippincott Williams & Wilkins 2016-09 2016-04-07 /pmc/articles/PMC4978603/ /pubmed/26974996 http://dx.doi.org/10.1097/PGP.0000000000000274 Text en © 2016 International Society of Gynecological Pathologists This is an open-access article distributed under the terms of the Creative Commons Attribution-Non Commercial-No Derivatives License 4.0 (CCBY-NC-ND), where it is permissible to download and share the work provided it is properly cited. The work cannot be changed in any way or used commercially. http://creativecommons.org/licenses/by-nc-nd/4.0.
spellingShingle Pathology of the Upper Genital Tract: Original Articles
Köbel, Martin
Rahimi, Kurosh
Rambau, Peter F.
Naugler, Christopher
Le Page, Cécile
Meunier, Liliane
de Ladurantaye, Manon
Lee, Sandra
Leung, Samuel
Goode, Ellen L.
Ramus, Susan J.
Carlson, Joseph W.
Li, Xiaodong
Ewanowich, Carol A.
Kelemen, Linda E.
Vanderhyden, Barbara
Provencher, Diane
Huntsman, David
Lee, Cheng-Han
Gilks, C. Blake
Mes Masson, Anne-Marie
An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title_full An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title_fullStr An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title_full_unstemmed An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title_short An Immunohistochemical Algorithm for Ovarian Carcinoma Typing
title_sort immunohistochemical algorithm for ovarian carcinoma typing
topic Pathology of the Upper Genital Tract: Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4978603/
https://www.ncbi.nlm.nih.gov/pubmed/26974996
http://dx.doi.org/10.1097/PGP.0000000000000274
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