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MesoGraph: Automatic profiling of mesothelioma subtypes from histological images

Mesothelioma is classified into three histological subtypes, epithelioid, sarcomatoid, and biphasic, according to the relative proportions of epithelioid and sarcomatoid tumor cells present. Current guidelines recommend that the sarcomatoid component of each mesothelioma is quantified, as a higher p...

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Autores principales: Eastwood, Mark, Sailem, Heba, Marc, Silviu Tudor, Gao, Xiaohong, Offman, Judith, Karteris, Emmanouil, Fernandez, Angeles Montero, Jonigk, Danny, Cookson, William, Moffatt, Miriam, Popat, Sanjay, Minhas, Fayyaz, Robertus, Jan Lukas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10591053/
https://www.ncbi.nlm.nih.gov/pubmed/37816348
http://dx.doi.org/10.1016/j.xcrm.2023.101226
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author Eastwood, Mark
Sailem, Heba
Marc, Silviu Tudor
Gao, Xiaohong
Offman, Judith
Karteris, Emmanouil
Fernandez, Angeles Montero
Jonigk, Danny
Cookson, William
Moffatt, Miriam
Popat, Sanjay
Minhas, Fayyaz
Robertus, Jan Lukas
author_facet Eastwood, Mark
Sailem, Heba
Marc, Silviu Tudor
Gao, Xiaohong
Offman, Judith
Karteris, Emmanouil
Fernandez, Angeles Montero
Jonigk, Danny
Cookson, William
Moffatt, Miriam
Popat, Sanjay
Minhas, Fayyaz
Robertus, Jan Lukas
author_sort Eastwood, Mark
collection PubMed
description Mesothelioma is classified into three histological subtypes, epithelioid, sarcomatoid, and biphasic, according to the relative proportions of epithelioid and sarcomatoid tumor cells present. Current guidelines recommend that the sarcomatoid component of each mesothelioma is quantified, as a higher percentage of sarcomatoid pattern in biphasic mesothelioma shows poorer prognosis. In this work, we develop a dual-task graph neural network (GNN) architecture with ranking loss to learn a model capable of scoring regions of tissue down to cellular resolution. This allows quantitative profiling of a tumor sample according to the aggregate sarcomatoid association score. Tissue is represented by a cell graph with both cell-level morphological and regional features. We use an external multicentric test set from Mesobank, on which we demonstrate the predictive performance of our model. We additionally validate our model predictions through an analysis of the typical morphological features of cells according to their predicted score.
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spelling pubmed-105910532023-10-24 MesoGraph: Automatic profiling of mesothelioma subtypes from histological images Eastwood, Mark Sailem, Heba Marc, Silviu Tudor Gao, Xiaohong Offman, Judith Karteris, Emmanouil Fernandez, Angeles Montero Jonigk, Danny Cookson, William Moffatt, Miriam Popat, Sanjay Minhas, Fayyaz Robertus, Jan Lukas Cell Rep Med Article Mesothelioma is classified into three histological subtypes, epithelioid, sarcomatoid, and biphasic, according to the relative proportions of epithelioid and sarcomatoid tumor cells present. Current guidelines recommend that the sarcomatoid component of each mesothelioma is quantified, as a higher percentage of sarcomatoid pattern in biphasic mesothelioma shows poorer prognosis. In this work, we develop a dual-task graph neural network (GNN) architecture with ranking loss to learn a model capable of scoring regions of tissue down to cellular resolution. This allows quantitative profiling of a tumor sample according to the aggregate sarcomatoid association score. Tissue is represented by a cell graph with both cell-level morphological and regional features. We use an external multicentric test set from Mesobank, on which we demonstrate the predictive performance of our model. We additionally validate our model predictions through an analysis of the typical morphological features of cells according to their predicted score. Elsevier 2023-10-09 /pmc/articles/PMC10591053/ /pubmed/37816348 http://dx.doi.org/10.1016/j.xcrm.2023.101226 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Eastwood, Mark
Sailem, Heba
Marc, Silviu Tudor
Gao, Xiaohong
Offman, Judith
Karteris, Emmanouil
Fernandez, Angeles Montero
Jonigk, Danny
Cookson, William
Moffatt, Miriam
Popat, Sanjay
Minhas, Fayyaz
Robertus, Jan Lukas
MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title_full MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title_fullStr MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title_full_unstemmed MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title_short MesoGraph: Automatic profiling of mesothelioma subtypes from histological images
title_sort mesograph: automatic profiling of mesothelioma subtypes from histological images
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10591053/
https://www.ncbi.nlm.nih.gov/pubmed/37816348
http://dx.doi.org/10.1016/j.xcrm.2023.101226
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