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对生物库和祖源中的人类疾病进行罕见编码变异分析。

Rare coding variant analysis for human diseases across biobanks and ancestries.

机构信息

Cardiovascular Disease Initiative, The Broad Institute of MIT and Harvard, Cambridge, MA, USA.

Department of Experimental Cardiology, Heart Center, Amsterdam Cardiovascular Sciences, Heart Failure and Arrhythmias, Amsterdam UMC location University of Amsterdam, Amsterdam, The Netherlands.

出版信息

Nat Genet. 2024 Sep;56(9):1811-1820. doi: 10.1038/s41588-024-01894-5. Epub 2024 Aug 29.

Abstract

Large-scale sequencing has enabled unparalleled opportunities to investigate the role of rare coding variation in human phenotypic variability. Here, we present a pan-ancestry analysis of sequencing data from three large biobanks, including the All of Us research program. Using mixed-effects models, we performed gene-based rare variant testing for 601 diseases across 748,879 individuals, including 155,236 with ancestry dissimilar to European. We identified 363 significant associations, which highlighted core genes for the human disease phenome and identified potential novel associations, including UBR3 for cardiometabolic disease and YLPM1 for psychiatric disease. Pan-ancestry burden testing represented an inclusive and useful approach for discovery in diverse datasets, although we also highlight the importance of ancestry-specific sensitivity analyses in this setting. Finally, we found that effect sizes for rare protein-disrupting variants were concordant between samples similar to European ancestry and other genetic ancestries (β = 0.7-1.0). Our results have implications for multi-ancestry and cross-biobank approaches in sequencing association studies for human disease.

摘要

大规模测序为研究罕见编码变异在人类表型变异性中的作用提供了前所未有的机会。在这里,我们对来自三个大型生物库(包括 All of Us 研究计划)的测序数据进行了泛血统分析。我们使用混合效应模型,对 748,879 名个体中的 601 种疾病进行了基于基因的罕见变异检测,其中包括 155,236 名与欧洲血统不同的个体。我们确定了 363 个显著关联,突出了人类疾病表型的核心基因,并确定了潜在的新关联,包括 UBR3 与心血管代谢疾病和 YLPM1 与精神疾病相关。泛血统负担测试代表了在不同数据集发现中的一种包容性和有用的方法,尽管我们也强调了在这种情况下进行特定血统敏感性分析的重要性。最后,我们发现,在类似于欧洲血统和其他遗传血统的样本中,罕见蛋白破坏变异的效应大小是一致的(β=0.7-1.0)。我们的研究结果对人类疾病测序关联研究中的多血统和跨生物库方法具有重要意义。

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