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Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study

BACKGROUND: Tongue images (the colour, size and shape of the tongue and the colour, thickness and moisture content of the tongue coating), reflecting the health state of the whole body according to the theory of traditional Chinese medicine (TCM), have been widely used in China for thousands of year...

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Autores principales: Yuan, Li, Yang, Lin, Zhang, Shichuan, Xu, Zhiyuan, Qin, Jiangjiang, Shi, Yunfu, Yu, Pengcheng, Wang, Yi, Bao, Zhehan, Xia, Yuhang, Sun, Jiancheng, He, Weiyang, Chen, Tianhui, Chen, Xiaolei, Hu, Can, Zhang, Yunlong, Dong, Changwu, Zhao, Ping, Wang, Yanan, Jiang, Nan, Lv, Bin, Xue, Yingwei, Jiao, Baoping, Gao, Hongyu, Chai, Kequn, Li, Jun, Wang, Hao, Wang, Xibo, Guan, Xiaoqing, Liu, Xu, Zhao, Gang, Zheng, Zhichao, Yan, Jie, Yu, Haiyue, Chen, Luchuan, Ye, Zaisheng, You, Huaqiang, Bao, Yu, Cheng, Xi, Zhao, Peizheng, Wang, Liang, Zeng, Wenting, Tian, Yanfei, Chen, Ming, You, You, Yuan, Guihong, Ruan, Hua, Gao, Xiaole, Xu, Jingli, Xu, Handong, Du, Lingbin, Zhang, Shengjie, Fu, Huanying, Cheng, Xiangdong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9941057/
https://www.ncbi.nlm.nih.gov/pubmed/36825238
http://dx.doi.org/10.1016/j.eclinm.2023.101834
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author Yuan, Li
Yang, Lin
Zhang, Shichuan
Xu, Zhiyuan
Qin, Jiangjiang
Shi, Yunfu
Yu, Pengcheng
Wang, Yi
Bao, Zhehan
Xia, Yuhang
Sun, Jiancheng
He, Weiyang
Chen, Tianhui
Chen, Xiaolei
Hu, Can
Zhang, Yunlong
Dong, Changwu
Zhao, Ping
Wang, Yanan
Jiang, Nan
Lv, Bin
Xue, Yingwei
Jiao, Baoping
Gao, Hongyu
Chai, Kequn
Li, Jun
Wang, Hao
Wang, Xibo
Guan, Xiaoqing
Liu, Xu
Zhao, Gang
Zheng, Zhichao
Yan, Jie
Yu, Haiyue
Chen, Luchuan
Ye, Zaisheng
You, Huaqiang
Bao, Yu
Cheng, Xi
Zhao, Peizheng
Wang, Liang
Zeng, Wenting
Tian, Yanfei
Chen, Ming
You, You
Yuan, Guihong
Ruan, Hua
Gao, Xiaole
Xu, Jingli
Xu, Handong
Du, Lingbin
Zhang, Shengjie
Fu, Huanying
Cheng, Xiangdong
author_facet Yuan, Li
Yang, Lin
Zhang, Shichuan
Xu, Zhiyuan
Qin, Jiangjiang
Shi, Yunfu
Yu, Pengcheng
Wang, Yi
Bao, Zhehan
Xia, Yuhang
Sun, Jiancheng
He, Weiyang
Chen, Tianhui
Chen, Xiaolei
Hu, Can
Zhang, Yunlong
Dong, Changwu
Zhao, Ping
Wang, Yanan
Jiang, Nan
Lv, Bin
Xue, Yingwei
Jiao, Baoping
Gao, Hongyu
Chai, Kequn
Li, Jun
Wang, Hao
Wang, Xibo
Guan, Xiaoqing
Liu, Xu
Zhao, Gang
Zheng, Zhichao
Yan, Jie
Yu, Haiyue
Chen, Luchuan
Ye, Zaisheng
You, Huaqiang
Bao, Yu
Cheng, Xi
Zhao, Peizheng
Wang, Liang
Zeng, Wenting
Tian, Yanfei
Chen, Ming
You, You
Yuan, Guihong
Ruan, Hua
Gao, Xiaole
Xu, Jingli
Xu, Handong
Du, Lingbin
Zhang, Shengjie
Fu, Huanying
Cheng, Xiangdong
author_sort Yuan, Li
collection PubMed
description BACKGROUND: Tongue images (the colour, size and shape of the tongue and the colour, thickness and moisture content of the tongue coating), reflecting the health state of the whole body according to the theory of traditional Chinese medicine (TCM), have been widely used in China for thousands of years. Herein, we investigated the value of tongue images and the tongue coating microbiome in the diagnosis of gastric cancer (GC). METHODS: From May 2020 to January 2021, we simultaneously collected tongue images and tongue coating samples from 328 patients with GC (all newly diagnosed with GC) and 304 non-gastric cancer (NGC) participants in China, and 16 S rDNA was used to characterize the microbiome of the tongue coating samples. Then, artificial intelligence (AI) deep learning models were established to evaluate the value of tongue images and the tongue coating microbiome in the diagnosis of GC. Considering that tongue imaging is more convenient and economical as a diagnostic tool, we further conducted a prospective multicentre clinical study from May 2020 to March 2022 in China and recruited 937 patients with GC and 1911 participants with NGC from 10 centres across China to further evaluate the role of tongue images in the diagnosis of GC. Moreover, we verified this approach in another independent external validation cohort that included 294 patients with GC and 521 participants with NGC from 7 centres. This study is registered at ClinicalTrials.gov, NCT01090362. FINDINGS: For the first time, we found that both tongue images and the tongue coating microbiome can be used as tools for the diagnosis of GC, and the area under the curve (AUC) value of the tongue image-based diagnostic model was 0.89. The AUC values of the tongue coating microbiome-based model reached 0.94 using genus data and 0.95 using species data. The results of the prospective multicentre clinical study showed that the AUC values of the three tongue image-based models for GCs reached 0.88–0.92 in the internal verification and 0.83–0.88 in the independent external verification, which were significantly superior to the combination of eight blood biomarkers. INTERPRETATION: Our results suggest that tongue images can be used as a stable method for GC diagnosis and are significantly superior to conventional blood biomarkers. The three kinds of tongue image-based AI deep learning diagnostic models that we developed can be used to adequately distinguish patients with GC from participants with NGC, even early GC and precancerous lesions, such as atrophic gastritis (AG). FUNDING: The 10.13039/501100012166National Key R&D Program of China (2021YFA0910100), Program of Zhejiang Provincial TCM Sci-tech Plan (2018ZY006), 10.13039/501100017594Medical Science and Technology Project of Zhejiang Province (2022KY114, WKJ-ZJ-2104), Zhejiang Provincial Research Center for Upper Gastrointestinal Tract Cancer (JBZX-202006), 10.13039/501100004731Natural Science Foundation of Zhejiang Province (HDMY22H160008), Science and Technology Projects of Zhejiang Province (2019C03049), 10.13039/501100001809National Natural Science Foundation of China (82074245, 81973634, 82204828), and Chinese Postdoctoral Science Foundation (2022M713203).
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spelling pubmed-99410572023-02-22 Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study Yuan, Li Yang, Lin Zhang, Shichuan Xu, Zhiyuan Qin, Jiangjiang Shi, Yunfu Yu, Pengcheng Wang, Yi Bao, Zhehan Xia, Yuhang Sun, Jiancheng He, Weiyang Chen, Tianhui Chen, Xiaolei Hu, Can Zhang, Yunlong Dong, Changwu Zhao, Ping Wang, Yanan Jiang, Nan Lv, Bin Xue, Yingwei Jiao, Baoping Gao, Hongyu Chai, Kequn Li, Jun Wang, Hao Wang, Xibo Guan, Xiaoqing Liu, Xu Zhao, Gang Zheng, Zhichao Yan, Jie Yu, Haiyue Chen, Luchuan Ye, Zaisheng You, Huaqiang Bao, Yu Cheng, Xi Zhao, Peizheng Wang, Liang Zeng, Wenting Tian, Yanfei Chen, Ming You, You Yuan, Guihong Ruan, Hua Gao, Xiaole Xu, Jingli Xu, Handong Du, Lingbin Zhang, Shengjie Fu, Huanying Cheng, Xiangdong eClinicalMedicine Articles BACKGROUND: Tongue images (the colour, size and shape of the tongue and the colour, thickness and moisture content of the tongue coating), reflecting the health state of the whole body according to the theory of traditional Chinese medicine (TCM), have been widely used in China for thousands of years. Herein, we investigated the value of tongue images and the tongue coating microbiome in the diagnosis of gastric cancer (GC). METHODS: From May 2020 to January 2021, we simultaneously collected tongue images and tongue coating samples from 328 patients with GC (all newly diagnosed with GC) and 304 non-gastric cancer (NGC) participants in China, and 16 S rDNA was used to characterize the microbiome of the tongue coating samples. Then, artificial intelligence (AI) deep learning models were established to evaluate the value of tongue images and the tongue coating microbiome in the diagnosis of GC. Considering that tongue imaging is more convenient and economical as a diagnostic tool, we further conducted a prospective multicentre clinical study from May 2020 to March 2022 in China and recruited 937 patients with GC and 1911 participants with NGC from 10 centres across China to further evaluate the role of tongue images in the diagnosis of GC. Moreover, we verified this approach in another independent external validation cohort that included 294 patients with GC and 521 participants with NGC from 7 centres. This study is registered at ClinicalTrials.gov, NCT01090362. FINDINGS: For the first time, we found that both tongue images and the tongue coating microbiome can be used as tools for the diagnosis of GC, and the area under the curve (AUC) value of the tongue image-based diagnostic model was 0.89. The AUC values of the tongue coating microbiome-based model reached 0.94 using genus data and 0.95 using species data. The results of the prospective multicentre clinical study showed that the AUC values of the three tongue image-based models for GCs reached 0.88–0.92 in the internal verification and 0.83–0.88 in the independent external verification, which were significantly superior to the combination of eight blood biomarkers. INTERPRETATION: Our results suggest that tongue images can be used as a stable method for GC diagnosis and are significantly superior to conventional blood biomarkers. The three kinds of tongue image-based AI deep learning diagnostic models that we developed can be used to adequately distinguish patients with GC from participants with NGC, even early GC and precancerous lesions, such as atrophic gastritis (AG). FUNDING: The 10.13039/501100012166National Key R&D Program of China (2021YFA0910100), Program of Zhejiang Provincial TCM Sci-tech Plan (2018ZY006), 10.13039/501100017594Medical Science and Technology Project of Zhejiang Province (2022KY114, WKJ-ZJ-2104), Zhejiang Provincial Research Center for Upper Gastrointestinal Tract Cancer (JBZX-202006), 10.13039/501100004731Natural Science Foundation of Zhejiang Province (HDMY22H160008), Science and Technology Projects of Zhejiang Province (2019C03049), 10.13039/501100001809National Natural Science Foundation of China (82074245, 81973634, 82204828), and Chinese Postdoctoral Science Foundation (2022M713203). Elsevier 2023-02-06 /pmc/articles/PMC9941057/ /pubmed/36825238 http://dx.doi.org/10.1016/j.eclinm.2023.101834 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Yuan, Li
Yang, Lin
Zhang, Shichuan
Xu, Zhiyuan
Qin, Jiangjiang
Shi, Yunfu
Yu, Pengcheng
Wang, Yi
Bao, Zhehan
Xia, Yuhang
Sun, Jiancheng
He, Weiyang
Chen, Tianhui
Chen, Xiaolei
Hu, Can
Zhang, Yunlong
Dong, Changwu
Zhao, Ping
Wang, Yanan
Jiang, Nan
Lv, Bin
Xue, Yingwei
Jiao, Baoping
Gao, Hongyu
Chai, Kequn
Li, Jun
Wang, Hao
Wang, Xibo
Guan, Xiaoqing
Liu, Xu
Zhao, Gang
Zheng, Zhichao
Yan, Jie
Yu, Haiyue
Chen, Luchuan
Ye, Zaisheng
You, Huaqiang
Bao, Yu
Cheng, Xi
Zhao, Peizheng
Wang, Liang
Zeng, Wenting
Tian, Yanfei
Chen, Ming
You, You
Yuan, Guihong
Ruan, Hua
Gao, Xiaole
Xu, Jingli
Xu, Handong
Du, Lingbin
Zhang, Shengjie
Fu, Huanying
Cheng, Xiangdong
Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title_full Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title_fullStr Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title_full_unstemmed Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title_short Development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
title_sort development of a tongue image-based machine learning tool for the diagnosis of gastric cancer: a prospective multicentre clinical cohort study
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9941057/
https://www.ncbi.nlm.nih.gov/pubmed/36825238
http://dx.doi.org/10.1016/j.eclinm.2023.101834
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