生命银行
萧条(经济学)
遗传力
大脑发育
认知
临床心理学
心理学
精神科
幼儿
多基因风险评分
发展心理学
重性抑郁障碍
医学
毒物控制
儿童发展
认知技能
认知发展
人为因素与人体工程学
自杀预防
基因-环境相互作用
人类遗传学
童年不良经历
伤害预防
作者
Yue Hu,Jeffrey R. Gruen,Heping Zhang
标识
DOI:10.1073/pnas.2527955123
摘要
Depression is shaped by both genetic and environmental factors, but genome-wide interaction studies (GWIS) often lack power to detect complex gene-environment (G × E) interactions. We applied a forest-based machine learning approach to 38,018 UK Biobank (UKB) participants, examining interactions between 285,677 single-nucleotide polymorphisms (SNPs) and three trauma types (childhood, adult, and catastrophic trauma). While GWIS detected no significant interactions, we identified 8,225 potentially important SNP-environment pairs across 1,732 genes, with childhood trauma contributing most prominently. Stratified heritability was higher among childhood trauma-exposed individuals (13.3%) versus those unexposed (6.0%). Many identified genes overlapped with known psychiatric risk loci and accounted for most of the SNP-based heritability. Thirteen top genes were replicated in the Adolescent Brain Cognitive Development Study. Our findings highlight the polygenic G × E nature of depression and the critical role of childhood trauma in modulating genetic risk, demonstrating the value of forest-based methods in detecting complex gene-environment interactions.
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