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Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy

BACKGROUND: Immunoglobulin A nephropathy (IgAN) and idiopathic membranous nephropathy (IMN) are the most common glomerular diseases. Immunofluorescence (IF) tests of renal tissues are crucial for the diagnosis. We developed a multiple convolutional neural network (CNN)-facilitated diagnostic program...

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Autores principales: Xia, Peng, Lv, Zhilong, Wen, Yubing, Zhang, Baichuan, Zhao, Xuesong, Zhang, Boyao, Wang, Ying, Cui, Haoyuan, Wang, Chuanpeng, Zheng, Hua, Qin, Yan, Sun, Lijun, Ye, Nan, Cheng, Hong, Yao, Li, Zhou, Hua, Zhen, Junhui, Hu, Zhao, Zhu, Weiguo, Zhang, Fa, Li, Xuemei, Ren, Fei, Chen, Limeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10689194/
https://www.ncbi.nlm.nih.gov/pubmed/38046020
http://dx.doi.org/10.1093/ckj/sfad153
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author Xia, Peng
Lv, Zhilong
Wen, Yubing
Zhang, Baichuan
Zhao, Xuesong
Zhang, Boyao
Wang, Ying
Cui, Haoyuan
Wang, Chuanpeng
Zheng, Hua
Qin, Yan
Sun, Lijun
Ye, Nan
Cheng, Hong
Yao, Li
Zhou, Hua
Zhen, Junhui
Hu, Zhao
Zhu, Weiguo
Zhang, Fa
Li, Xuemei
Ren, Fei
Chen, Limeng
author_facet Xia, Peng
Lv, Zhilong
Wen, Yubing
Zhang, Baichuan
Zhao, Xuesong
Zhang, Boyao
Wang, Ying
Cui, Haoyuan
Wang, Chuanpeng
Zheng, Hua
Qin, Yan
Sun, Lijun
Ye, Nan
Cheng, Hong
Yao, Li
Zhou, Hua
Zhen, Junhui
Hu, Zhao
Zhu, Weiguo
Zhang, Fa
Li, Xuemei
Ren, Fei
Chen, Limeng
author_sort Xia, Peng
collection PubMed
description BACKGROUND: Immunoglobulin A nephropathy (IgAN) and idiopathic membranous nephropathy (IMN) are the most common glomerular diseases. Immunofluorescence (IF) tests of renal tissues are crucial for the diagnosis. We developed a multiple convolutional neural network (CNN)-facilitated diagnostic program to assist the IF diagnosis of IgAN and IMN. METHODS: The diagnostic program consisted of four parts: a CNN trained as a glomeruli detection module, an IF intensity comparator, dual-CNN (D-CNN) trained as a deposition appearance and location classifier and a post-processing module. A total of 1573 glomerular IF images from 1009 patients with glomerular diseases were used for the training and validation of the diagnostic program. A total of 1610 images of 426 patients from different hospitals were used as test datasets. The performance of the diagnostic program was compared with nephropathologists. RESULTS: In >90% of the tested images, the glomerulus location module achieved an intersection over union >0.8. The accuracy of the D-CNN in recognizing irregular granular mesangial deposition and fine granular deposition along the glomerular basement membrane was 96.1% and 93.3%, respectively. As for the diagnostic program, the accuracy, sensitivity and specificity of diagnosing suspected IgAN were 97.6%, 94.4% and 96.0%, respectively. The accuracy, sensitivity and specificity of diagnosing suspected IMN were 91.7%, 88.9% and 95.8%, respectively. The corresponding areas under the curve (AUCs) were 0.983 and 0.935. When tested with images from the outside hospital, the diagnostic program showed stable performance. The AUCs for diagnosing suspected IgAN and IMN were 0.972 and 0.948, respectively. Compared with inexperienced nephropathologists, the program showed better performance. CONCLUSION: The proposed diagnostic program could assist the IF diagnosis of IgAN and IMN.
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spelling pubmed-106891942023-12-02 Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy Xia, Peng Lv, Zhilong Wen, Yubing Zhang, Baichuan Zhao, Xuesong Zhang, Boyao Wang, Ying Cui, Haoyuan Wang, Chuanpeng Zheng, Hua Qin, Yan Sun, Lijun Ye, Nan Cheng, Hong Yao, Li Zhou, Hua Zhen, Junhui Hu, Zhao Zhu, Weiguo Zhang, Fa Li, Xuemei Ren, Fei Chen, Limeng Clin Kidney J Original Article BACKGROUND: Immunoglobulin A nephropathy (IgAN) and idiopathic membranous nephropathy (IMN) are the most common glomerular diseases. Immunofluorescence (IF) tests of renal tissues are crucial for the diagnosis. We developed a multiple convolutional neural network (CNN)-facilitated diagnostic program to assist the IF diagnosis of IgAN and IMN. METHODS: The diagnostic program consisted of four parts: a CNN trained as a glomeruli detection module, an IF intensity comparator, dual-CNN (D-CNN) trained as a deposition appearance and location classifier and a post-processing module. A total of 1573 glomerular IF images from 1009 patients with glomerular diseases were used for the training and validation of the diagnostic program. A total of 1610 images of 426 patients from different hospitals were used as test datasets. The performance of the diagnostic program was compared with nephropathologists. RESULTS: In >90% of the tested images, the glomerulus location module achieved an intersection over union >0.8. The accuracy of the D-CNN in recognizing irregular granular mesangial deposition and fine granular deposition along the glomerular basement membrane was 96.1% and 93.3%, respectively. As for the diagnostic program, the accuracy, sensitivity and specificity of diagnosing suspected IgAN were 97.6%, 94.4% and 96.0%, respectively. The accuracy, sensitivity and specificity of diagnosing suspected IMN were 91.7%, 88.9% and 95.8%, respectively. The corresponding areas under the curve (AUCs) were 0.983 and 0.935. When tested with images from the outside hospital, the diagnostic program showed stable performance. The AUCs for diagnosing suspected IgAN and IMN were 0.972 and 0.948, respectively. Compared with inexperienced nephropathologists, the program showed better performance. CONCLUSION: The proposed diagnostic program could assist the IF diagnosis of IgAN and IMN. Oxford University Press 2023-07-18 /pmc/articles/PMC10689194/ /pubmed/38046020 http://dx.doi.org/10.1093/ckj/sfad153 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the ERA. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Article
Xia, Peng
Lv, Zhilong
Wen, Yubing
Zhang, Baichuan
Zhao, Xuesong
Zhang, Boyao
Wang, Ying
Cui, Haoyuan
Wang, Chuanpeng
Zheng, Hua
Qin, Yan
Sun, Lijun
Ye, Nan
Cheng, Hong
Yao, Li
Zhou, Hua
Zhen, Junhui
Hu, Zhao
Zhu, Weiguo
Zhang, Fa
Li, Xuemei
Ren, Fei
Chen, Limeng
Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title_full Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title_fullStr Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title_full_unstemmed Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title_short Development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of IgA nephropathy and idiopathic membranous nephropathy
title_sort development of a multiple convolutional neural network–facilitated diagnostic screening program for immunofluorescence images of iga nephropathy and idiopathic membranous nephropathy
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10689194/
https://www.ncbi.nlm.nih.gov/pubmed/38046020
http://dx.doi.org/10.1093/ckj/sfad153
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