题名 | Accurate estimation of biological age and its application in disease prediction using a multimodal image Transformer system |
作者 | |
通讯作者 | Zhang,Kang; Zhou,Yong |
发表日期 | 2024-01-16
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DOI | |
发表期刊 | |
ISSN | 0027-8424
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EISSN | 1091-6490
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卷号 | 121期号:3 |
摘要 | Aging in an individual refers to the temporal change, mostly decline, in the body's ability to meet physiological demands. Biological age (BA) is a biomarker of chronological aging and can be used to stratify populations to predict certain age-related chronic diseases. BA can be predicted from biomedical features such as brain MRI, retinal, or facial images, but the inherent heterogeneity in the aging process limits the usefulness of BA predicted from individual body systems. In this paper, we developed a multimodal Transformer-based architecture with cross-attention which was able to combine facial, tongue, and retinal images to estimate BA. We trained our model using facial, tongue, and retinal images from 11,223 healthy subjects and demonstrated that using a fusion of the three image modalities achieved the most accurate BA predictions. We validated our approach on a test population of 2,840 individuals with six chronic diseases and obtained significant difference between chronological age and BA (AgeDiff) than that of healthy subjects. We showed that AgeDiff has the potential to be utilized as a standalone biomarker or conjunctively alongside other known factors for risk stratification and progression prediction of chronic diseases. Our results therefore highlight the feasibility of using multimodal images to estimate and interrogate the aging process. |
关键词 | |
相关链接 | [Scopus记录] |
收录类别 | |
语种 | 英语
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学校署名 | 其他
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ESI学科分类 | AGRICULTURAL SCIENCES
; BIOLOGY & BIOCHEMISTRY
; CHEMISTRY
; CLINICAL MEDICINE
; ENGINEERING
; ENVIRONMENT/ECOLOGY
; GEOSCIENCES
; IMMUNOLOGY
; MATERIALS SCIENCE
; MATHEMATICS
; MICROBIOLOGY
; MOLECULAR BIOLOGY & GENETICS
; MULTIDISCIPLINARY
; NEUROSCIENCE & BEHAVIOR
; PHARMACOLOGY & TOXICOLOGY
; PHYSICS
; PLANT & ANIMAL SCIENCE
; PSYCHIATRY/PSYCHOLOGY
; SOCIAL SCIENCES, GENERAL
; SPACE SCIENCE
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Scopus记录号 | 2-s2.0-85181997748
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来源库 | Scopus
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引用统计 |
被引频次[WOS]:4
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成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/701907 |
专题 | 南方科技大学医学院_前沿生物技术研究院 生命科学学院 |
作者单位 | 1.Department of Big Data and Biomedical AI,College of Future Technology,Peking University,Beijing,100871,China 2.Macau Institute for AI in Medicine,Zhuhai People's Hospital,First Affiliated Hospital of Faculty of Medicine,Macau University of Science and Technology,999087,Macao 3.Guangzhou National Laboratory,Guangzhou,510005,China 4.Guangzhou Women and Children's Medical Center,Guangzhou Medical University,Guangzhou,510623,China 5.Dongguan People's Hospital,Southern Medical University,Dongguan,523059,China 6.National Clinical Research Center for Ocular Diseases,Eye Hospital,Wenzhou Medical University,Wenzhou,325027,China 7.Institute of Advanced Biotechnology,School of Life Sciences,Southern University of Science and Technology,Shenzhen,518055,China 8.National Clinical Research Center for Kidney Diseases,State Key Laboratory for Organ Failure Research,Nanfang Hospital,Southern Medical University,Guangzhou,510515,China 9.Clinical Research Institute,Shanghai General Hospital,Shanghai Jiao Tong University School of Medicine,Shanghai,201620,China |
推荐引用方式 GB/T 7714 |
Wang,Jinzhuo,Gao,Yuanxu,Wang,Fangfei,et al. Accurate estimation of biological age and its application in disease prediction using a multimodal image Transformer system[J]. Proceedings of the National Academy of Sciences of the United States of America,2024,121(3).
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APA |
Wang,Jinzhuo.,Gao,Yuanxu.,Wang,Fangfei.,Zeng,Simiao.,Li,Jiahui.,...&Zhou,Yong.(2024).Accurate estimation of biological age and its application in disease prediction using a multimodal image Transformer system.Proceedings of the National Academy of Sciences of the United States of America,121(3).
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MLA |
Wang,Jinzhuo,et al."Accurate estimation of biological age and its application in disease prediction using a multimodal image Transformer system".Proceedings of the National Academy of Sciences of the United States of America 121.3(2024).
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