Three-dimensional facial-image analysis to predict heterogeneity of the human ageing rate and the impact of lifestyle

老化 健康老龄化 人口 推论 相关性 转录组 面部表情 人工智能 生物 人口学 计算机科学 基因表达 基因 数学 遗传学 几何学 社会学
作者
Xian Xia,Xingwei Chen,Gang Wu,Fang Li,Yiyang Wang,Yang Chen,Mingxu Chen,Xinyu Wang,Weiyang Chen,Bo Xian,Weizhong Chen,Yaqiang Cao,Xu Chi,W. X. Gong,Guoyu Chen,Donghong Cai,Wenxin Wei,Yizhen Yan,Kangping Liu,Nan Qiao
出处
期刊:Nature metabolism [Nature Portfolio]
卷期号:2 (9): 946-957 被引量:90
标识
DOI:10.1038/s42255-020-00270-x
摘要

Not all individuals age at the same rate. Methods such as the 'methylation clock' are invasive, rely on expensive assays of tissue samples and infer the ageing rate by training on chronological age, which is used as a reference for prediction errors. Here, we develop models based on convoluted neural networks through training on non-invasive three-dimensional (3D) facial images of approximately 5,000 Han Chinese individuals that achieve an average difference between chronological or perceived age and predicted age of ±2.8 and 2.9 yr, respectively. We further profile blood transcriptomes from 280 individuals and infer the molecular regulators mediating the impact of lifestyle on the facial-ageing rate through a causal-inference model. These relationships have been deposited and visualized in the Human Blood Gene Expression-3D Facial Image (HuB-Fi) database. Overall, we find that humans age at different rates both in the blood and in the face, but do so coherently and with heterogeneity peaking at middle age. Our study provides an example of how artificial intelligence can be leveraged to determine the perceived age of humans as a marker of biological age, while no longer relying on prediction errors of chronological age, and to estimate the heterogeneity of ageing rates within a population.
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