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全基因组范围内循环代谢生物标志物的特征分析。

Genome-wide characterization of circulating metabolic biomarkers.

机构信息

Systems Epidemiology, Faculty of Medicine, University of Oulu and Biocenter Oulu, Oulu, Finland.

Research Unit of Population Health, Faculty of Medicine, University of Oulu, Oulu, Finland.

出版信息

Nature. 2024 Apr;628(8006):130-138. doi: 10.1038/s41586-024-07148-y. Epub 2024 Mar 6.

Abstract

Genome-wide association analyses using high-throughput metabolomics platforms have led to novel insights into the biology of human metabolism. This detailed knowledge of the genetic determinants of systemic metabolism has been pivotal for uncovering how genetic pathways influence biological mechanisms and complex diseases. Here we present a genome-wide association study for 233 circulating metabolic traits quantified by nuclear magnetic resonance spectroscopy in up to 136,016 participants from 33 cohorts. We identify more than 400 independent loci and assign probable causal genes at two-thirds of these using manual curation of plausible biological candidates. We highlight the importance of sample and participant characteristics that can have significant effects on genetic associations. We use detailed metabolic profiling of lipoprotein- and lipid-associated variants to better characterize how known lipid loci and novel loci affect lipoprotein metabolism at a granular level. We demonstrate the translational utility of comprehensively phenotyped molecular data, characterizing the metabolic associations of intrahepatic cholestasis of pregnancy. Finally, we observe substantial genetic pleiotropy for multiple metabolic pathways and illustrate the importance of careful instrument selection in Mendelian randomization analysis, revealing a putative causal relationship between acetone and hypertension. Our publicly available results provide a foundational resource for the community to examine the role of metabolism across diverse diseases.

摘要

基于高通量代谢组学平台的全基因组关联分析为人类代谢生物学提供了新的见解。这种对系统性代谢遗传决定因素的详细了解,对于揭示遗传途径如何影响生物机制和复杂疾病至关重要。在这里,我们对 33 个队列中多达 136016 名参与者进行了核磁共振光谱定量的 233 种循环代谢特征的全基因组关联研究。我们鉴定了 400 多个独立的位点,并使用可能的生物学候选物的人工策展,确定了三分之二这些位点的可能因果基因。我们强调了样本和参与者特征的重要性,这些特征可能对遗传关联有显著影响。我们使用脂蛋白和脂质相关变异的详细代谢特征来更好地描述已知的脂质基因座和新的基因座如何在颗粒水平上影响脂蛋白代谢。我们展示了综合表型分子数据的转化实用性,对妊娠肝内胆汁淤积症的代谢相关性进行了特征描述。最后,我们观察到多个代谢途径的遗传多效性,说明了在孟德尔随机化分析中仔细选择仪器的重要性,这表明丙酮和高血压之间可能存在因果关系。我们公开提供的结果为社区提供了一个基础性资源,用于研究代谢在多种疾病中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d674/10990933/649e4aa91557/41586_2024_7148_Fig1_HTML.jpg

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