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Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy

The histopathological findings of the glomeruli from whole slide images (WSIs) of a renal biopsy play an important role in diagnosing and grading kidney disease. This study aimed to develop an automated computational pipeline to detect glomeruli and to segment the histopathological regions inside of...

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Autores principales: Kawazoe, Yoshimasa, Shimamoto, Kiminori, Yamaguchi, Ryohei, Nakamura, Issei, Yoneda, Kota, Shinohara, Emiko, Shintani-Domoto, Yukako, Ushiku, Tetsuo, Tsukamoto, Tatsuo, Ohe, Kazuhiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9776670/
https://www.ncbi.nlm.nih.gov/pubmed/36552963
http://dx.doi.org/10.3390/diagnostics12122955
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author Kawazoe, Yoshimasa
Shimamoto, Kiminori
Yamaguchi, Ryohei
Nakamura, Issei
Yoneda, Kota
Shinohara, Emiko
Shintani-Domoto, Yukako
Ushiku, Tetsuo
Tsukamoto, Tatsuo
Ohe, Kazuhiko
author_facet Kawazoe, Yoshimasa
Shimamoto, Kiminori
Yamaguchi, Ryohei
Nakamura, Issei
Yoneda, Kota
Shinohara, Emiko
Shintani-Domoto, Yukako
Ushiku, Tetsuo
Tsukamoto, Tatsuo
Ohe, Kazuhiko
author_sort Kawazoe, Yoshimasa
collection PubMed
description The histopathological findings of the glomeruli from whole slide images (WSIs) of a renal biopsy play an important role in diagnosing and grading kidney disease. This study aimed to develop an automated computational pipeline to detect glomeruli and to segment the histopathological regions inside of the glomerulus in a WSI. In order to assess the significance of this pipeline, we conducted a multivariate regression analysis to determine whether the quantified regions were associated with the prognosis of kidney function in 46 cases of immunoglobulin A nephropathy (IgAN). The developed pipelines showed a mean intersection over union (IoU) of 0.670 and 0.693 for five classes (i.e., background, Bowman’s space, glomerular tuft, crescentic, and sclerotic regions) against the WSI of its facility, and 0.678 and 0.609 against the WSI of the external facility. The multivariate analysis revealed that the predicted sclerotic regions, even those that were predicted by the external model, had a significant negative impact on the slope of the estimated glomerular filtration rate after biopsy. This is the first study to demonstrate that the quantified sclerotic regions that are predicted by an automated computational pipeline for the segmentation of the histopathological glomerular components on WSIs impact the prognosis of kidney function in patients with IgAN.
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spelling pubmed-97766702022-12-23 Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy Kawazoe, Yoshimasa Shimamoto, Kiminori Yamaguchi, Ryohei Nakamura, Issei Yoneda, Kota Shinohara, Emiko Shintani-Domoto, Yukako Ushiku, Tetsuo Tsukamoto, Tatsuo Ohe, Kazuhiko Diagnostics (Basel) Article The histopathological findings of the glomeruli from whole slide images (WSIs) of a renal biopsy play an important role in diagnosing and grading kidney disease. This study aimed to develop an automated computational pipeline to detect glomeruli and to segment the histopathological regions inside of the glomerulus in a WSI. In order to assess the significance of this pipeline, we conducted a multivariate regression analysis to determine whether the quantified regions were associated with the prognosis of kidney function in 46 cases of immunoglobulin A nephropathy (IgAN). The developed pipelines showed a mean intersection over union (IoU) of 0.670 and 0.693 for five classes (i.e., background, Bowman’s space, glomerular tuft, crescentic, and sclerotic regions) against the WSI of its facility, and 0.678 and 0.609 against the WSI of the external facility. The multivariate analysis revealed that the predicted sclerotic regions, even those that were predicted by the external model, had a significant negative impact on the slope of the estimated glomerular filtration rate after biopsy. This is the first study to demonstrate that the quantified sclerotic regions that are predicted by an automated computational pipeline for the segmentation of the histopathological glomerular components on WSIs impact the prognosis of kidney function in patients with IgAN. MDPI 2022-11-25 /pmc/articles/PMC9776670/ /pubmed/36552963 http://dx.doi.org/10.3390/diagnostics12122955 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kawazoe, Yoshimasa
Shimamoto, Kiminori
Yamaguchi, Ryohei
Nakamura, Issei
Yoneda, Kota
Shinohara, Emiko
Shintani-Domoto, Yukako
Ushiku, Tetsuo
Tsukamoto, Tatsuo
Ohe, Kazuhiko
Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title_full Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title_fullStr Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title_full_unstemmed Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title_short Computational Pipeline for Glomerular Segmentation and Association of the Quantified Regions with Prognosis of Kidney Function in IgA Nephropathy
title_sort computational pipeline for glomerular segmentation and association of the quantified regions with prognosis of kidney function in iga nephropathy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9776670/
https://www.ncbi.nlm.nih.gov/pubmed/36552963
http://dx.doi.org/10.3390/diagnostics12122955
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