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Epigenetics meets metabolomics: an epigenome-wide association study with blood serum metabolic traits

机译:表观遗传学与代谢组学:一项涉及血清代谢特征的表观基因组范围的关联研究

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摘要

Previously, we reported strong influences of genetic variants on metabolic phenotypes, some of them with clinical relevance. Here, we hypothesize that DNA methylation may have an important and potentially independent effect on human metabolism. To test this hypothesis, we conducted what is to the best of our knowledge the first epigenome-wide association study (EWAS) between DNA methylation and metabolic traits (metabotypes) in human blood. We assess 649 blood metabolic traits from 1814 participants of the Kooperative Gesundheitsforschung in der Region Augsburg (KORA) population study for association with methylation of 457 004 CpG sites, determined on the Infinium HumanMethylation450 BeadChip platform. Using the EWAS approach, we identified two types of methylome–metabotype associations. One type is driven by an underlying genetic effect; the other type is independent of genetic variation and potentially driven by common environmental and life-style-dependent factors. We report eight CpG loci at genome-wide significance that have a genetic variant as confounder (P = 3.9 × 10−20 to 2.0 × 10−108, r2 = 0.036 to 0.221). Seven loci display CpG site-specific associations to metabotypes, but do not exhibit any underlying genetic signals (P = 9.2 × 10−14 to 2.7 × 10−27, r2 = 0.008 to 0.107). We further identify several groups of CpG loci that associate with a same metabotype, such as 4-vinylphenol sulfate and 4-androsten-3-beta,17-beta-diol disulfate. In these cases, the association between CpG-methylation and metabotype is likely the result of a common external environmental factor, including smoking. Our study shows that analysis of EWAS with large numbers of metabolic traits in large population cohorts are, in principle, feasible. Taken together, our data suggest that DNA methylation plays an important role in regulating human metabolism.
机译:以前,我们报道了遗传变异对代谢表型的强烈影响,其中一些与临床相关。在这里,我们假设DNA甲基化可能对人类新陈代谢具有重要且潜在的独立影响。为了验证这一假设,我们进行了首次知识范围的全基因组关联研究(EWAS),该研究涉及人类血液中DNA甲基化与代谢特征(代谢型)之间的关系。我们在Infinium HumanMethylation450 BeadChip平台上评估了来自奥格斯堡地区合作研究基金会(KORA)的1814名参与者的649种血液代谢特征,以研究其与457 004 CpG位点甲基化的相关性。使用EWAS方法,我们确定了两种类型的甲基化组-代谢型关联。一种类型是由潜在的遗传效应驱动的。另一种类型与遗传变异无关,并且可能由常见的环境和生活方式相关因素驱动。我们报告了八个具有全基因组变异意义的CpG基因座,它们具有混杂因素(P = 3.9×10 -20 至2.0×10 -108 ,r 2 = 0.036至0.221)。七个基因座显示CpG位点与代谢型的特定关联,但不显示任何潜在的遗传信号(P = 9.2×10 −14 至2.7×10 −27 ,r < sup> 2 = 0.008至0.107)。我们进一步确定与相同的代谢型,例如4-乙烯基苯酚硫酸盐和4-androsten-3-beta,17-beta-二醇二硫酸盐相关联的CpG基因座的几组。在这些情况下,CpG甲基化与代谢型之间的关联可能是常见外部环境因素(包括吸烟)的结果。我们的研究表明,在大量人群中分析具有大量代谢性状的EWAS原则上是可行的。综上所述,我们的数据表明DNA甲基化在调节人类代谢中起着重要作用。

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