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author Sun, Yaoting
Selvarajan, Sathiyamoorthy
Zang, Zelin
Liu, Wei
Zhu, Yi
Zhang, Hao
Chen, Wanyuan
Chen, Hao
Li, Lu
Cai, Xue
Gao, Huanhuan
Wu, Zhicheng
Zhao, Yongfu
Chen, Lirong
Teng, Xiaodong
Mantoo, Sangeeta
Lim, Tony Kiat-Hon
Hariraman, Bhuvaneswari
Yeow, Serene
Alkaff, Syed Muhammad Fahmy
Lee, Sze Sing
Ruan, Guan
Zhang, Qiushi
Zhu, Tiansheng
Hu, Yifan
Dong, Zhen
Ge, Weigang
Xiao, Qi
Wang, Weibin
Wang, Guangzhi
Xiao, Junhong
He, Yi
Wang, Zhihong
Sun, Wei
Qin, Yuan
Zhu, Jiang
Zheng, Xu
Wang, Linyan
Zheng, Xi
Xu, Kailun
Shao, Yingkuan
Zheng, Shu
Liu, Kexin
Aebersold, Ruedi
Guan, Haixia
Wu, Xiaohong
Luo, Dingcun
Tian, Wen
Li, Stan Ziqing
Kon, Oi Lian
Iyer, Narayanan Gopalakrishna
Guo, Tiannan
author_facet Sun, Yaoting
Selvarajan, Sathiyamoorthy
Zang, Zelin
Liu, Wei
Zhu, Yi
Zhang, Hao
Chen, Wanyuan
Chen, Hao
Li, Lu
Cai, Xue
Gao, Huanhuan
Wu, Zhicheng
Zhao, Yongfu
Chen, Lirong
Teng, Xiaodong
Mantoo, Sangeeta
Lim, Tony Kiat-Hon
Hariraman, Bhuvaneswari
Yeow, Serene
Alkaff, Syed Muhammad Fahmy
Lee, Sze Sing
Ruan, Guan
Zhang, Qiushi
Zhu, Tiansheng
Hu, Yifan
Dong, Zhen
Ge, Weigang
Xiao, Qi
Wang, Weibin
Wang, Guangzhi
Xiao, Junhong
He, Yi
Wang, Zhihong
Sun, Wei
Qin, Yuan
Zhu, Jiang
Zheng, Xu
Wang, Linyan
Zheng, Xi
Xu, Kailun
Shao, Yingkuan
Zheng, Shu
Liu, Kexin
Aebersold, Ruedi
Guan, Haixia
Wu, Xiaohong
Luo, Dingcun
Tian, Wen
Li, Stan Ziqing
Kon, Oi Lian
Iyer, Narayanan Gopalakrishna
Guo, Tiannan
author_sort Sun, Yaoting
collection PubMed
description Determination of malignancy in thyroid nodules remains a major diagnostic challenge. Here we report the feasibility and clinical utility of developing an AI-defined protein-based biomarker panel for diagnostic classification of thyroid nodules: based initially on formalin-fixed paraffin-embedded (FFPE), and further refined for fine-needle aspiration (FNA) tissue specimens of minute amounts which pose technical challenges for other methods. We first developed a neural network model of 19 protein biomarkers based on the proteomes of 1724 FFPE thyroid tissue samples from a retrospective cohort. This classifier achieved over 91% accuracy in the discovery set for classifying malignant thyroid nodules. The classifier was externally validated by blinded analyses in a retrospective cohort of 288 nodules (89% accuracy; FFPE) and a prospective cohort of 294 FNA biopsies (85% accuracy) from twelve independent clinical centers. This study shows that integrating high-throughput proteomics and AI technology in multi-center retrospective and prospective clinical cohorts facilitates precise disease diagnosis which is otherwise difficult to achieve by other methods.
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spelling pubmed-94488202022-09-08 Artificial intelligence defines protein-based classification of thyroid nodules Sun, Yaoting Selvarajan, Sathiyamoorthy Zang, Zelin Liu, Wei Zhu, Yi Zhang, Hao Chen, Wanyuan Chen, Hao Li, Lu Cai, Xue Gao, Huanhuan Wu, Zhicheng Zhao, Yongfu Chen, Lirong Teng, Xiaodong Mantoo, Sangeeta Lim, Tony Kiat-Hon Hariraman, Bhuvaneswari Yeow, Serene Alkaff, Syed Muhammad Fahmy Lee, Sze Sing Ruan, Guan Zhang, Qiushi Zhu, Tiansheng Hu, Yifan Dong, Zhen Ge, Weigang Xiao, Qi Wang, Weibin Wang, Guangzhi Xiao, Junhong He, Yi Wang, Zhihong Sun, Wei Qin, Yuan Zhu, Jiang Zheng, Xu Wang, Linyan Zheng, Xi Xu, Kailun Shao, Yingkuan Zheng, Shu Liu, Kexin Aebersold, Ruedi Guan, Haixia Wu, Xiaohong Luo, Dingcun Tian, Wen Li, Stan Ziqing Kon, Oi Lian Iyer, Narayanan Gopalakrishna Guo, Tiannan Cell Discov Article Determination of malignancy in thyroid nodules remains a major diagnostic challenge. Here we report the feasibility and clinical utility of developing an AI-defined protein-based biomarker panel for diagnostic classification of thyroid nodules: based initially on formalin-fixed paraffin-embedded (FFPE), and further refined for fine-needle aspiration (FNA) tissue specimens of minute amounts which pose technical challenges for other methods. We first developed a neural network model of 19 protein biomarkers based on the proteomes of 1724 FFPE thyroid tissue samples from a retrospective cohort. This classifier achieved over 91% accuracy in the discovery set for classifying malignant thyroid nodules. The classifier was externally validated by blinded analyses in a retrospective cohort of 288 nodules (89% accuracy; FFPE) and a prospective cohort of 294 FNA biopsies (85% accuracy) from twelve independent clinical centers. This study shows that integrating high-throughput proteomics and AI technology in multi-center retrospective and prospective clinical cohorts facilitates precise disease diagnosis which is otherwise difficult to achieve by other methods. Springer Nature Singapore 2022-09-06 /pmc/articles/PMC9448820/ /pubmed/36068205 http://dx.doi.org/10.1038/s41421-022-00442-x Text en © The Author(s) 2022, corrected publication 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Sun, Yaoting
Selvarajan, Sathiyamoorthy
Zang, Zelin
Liu, Wei
Zhu, Yi
Zhang, Hao
Chen, Wanyuan
Chen, Hao
Li, Lu
Cai, Xue
Gao, Huanhuan
Wu, Zhicheng
Zhao, Yongfu
Chen, Lirong
Teng, Xiaodong
Mantoo, Sangeeta
Lim, Tony Kiat-Hon
Hariraman, Bhuvaneswari
Yeow, Serene
Alkaff, Syed Muhammad Fahmy
Lee, Sze Sing
Ruan, Guan
Zhang, Qiushi
Zhu, Tiansheng
Hu, Yifan
Dong, Zhen
Ge, Weigang
Xiao, Qi
Wang, Weibin
Wang, Guangzhi
Xiao, Junhong
He, Yi
Wang, Zhihong
Sun, Wei
Qin, Yuan
Zhu, Jiang
Zheng, Xu
Wang, Linyan
Zheng, Xi
Xu, Kailun
Shao, Yingkuan
Zheng, Shu
Liu, Kexin
Aebersold, Ruedi
Guan, Haixia
Wu, Xiaohong
Luo, Dingcun
Tian, Wen
Li, Stan Ziqing
Kon, Oi Lian
Iyer, Narayanan Gopalakrishna
Guo, Tiannan
Artificial intelligence defines protein-based classification of thyroid nodules
title Artificial intelligence defines protein-based classification of thyroid nodules
title_full Artificial intelligence defines protein-based classification of thyroid nodules
title_fullStr Artificial intelligence defines protein-based classification of thyroid nodules
title_full_unstemmed Artificial intelligence defines protein-based classification of thyroid nodules
title_short Artificial intelligence defines protein-based classification of thyroid nodules
title_sort artificial intelligence defines protein-based classification of thyroid nodules
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9448820/
https://www.ncbi.nlm.nih.gov/pubmed/36068205
http://dx.doi.org/10.1038/s41421-022-00442-x
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