Exposure to Maternal Diabetes in Utero and DNA Methylation Patterns in the Offspring.

Nancy A West, Katerina Kechris, Dana Dabelea
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引用次数: 62

Abstract

Perturbations in early life environments, including intrauterine exposure to maternal gestational diabetes (GDM), are hypothesized to lead to metabolic imprinting resulting in increased risk of cardiometabolic outcomes later in life. We aimed to 1) identify candidate genes and biological pathways associated with differentially methylated regions (DMRs) in relation to exposure to GDM in utero and, 2) using mediation analysis, more definitively investigate the potential for mediation of the effect of exposure to maternal diabetes in utero on cardiometabolic traits in childhood risk through our identified DMRs. Genome-wide methylation analysis of peripheral blood mononuclear cell's DNA was conducted in 21 healthy children, ages 8-12 years. P-values from multiple linear regression analyses for >27,000 CpG sites were ranked to identify DMRs between the exposure groups. Among the top 10 ranked DMRs, we identified several genes, including NPR1, PANK1, SCAND1, and GJA4, which are known to be associated with cardiometabolic traits. Gene enrichment analysis of the top 84 genes, each with p<=0.005, identified the ubiquitin proteasome system (UPS) as the most enriched biological pathway (p = 0.07). The UPS pathway reflects biological processes known to be associated with endothelial function, inflammation, lipid metabolism, insulin resistance and β-cell apoptosis, whose derangements are central to the pathogenesis of cardiometabolic diseases. Increased methylation of PYGO1 and CLN8 had the greatest relative mediation effect (RME = 87%, p=0.005 and RME=50%, p=0.01) on the impact of exposure to maternal diabetes in utero on VCAM-1 levels in the offspring. Multiple candidate genes and the UPS were identified for future study as possible links between exposure to maternal gestational diabetes in utero and adverse cardiometabolic traits in the offspring. In particular, increased methylation of PYGO1 and CLN8 may be biological links between intrauterine exposure to maternal diabetes and significantly increased VCAM-1 levels in the offspring.

母体子宫内糖尿病暴露与后代DNA甲基化模式。
早期生活环境的扰动,包括宫内暴露于母体妊娠糖尿病(GDM),被假设会导致代谢印记,从而增加生命后期心脏代谢结局的风险。我们的目标是:1)确定与子宫内GDM暴露相关的差异甲基化区(DMRs)相关的候选基因和生物学途径;2)使用中介分析,更明确地研究母体子宫内糖尿病暴露对儿童风险中心脏代谢特征的中介作用。对21名8-12岁的健康儿童外周血单个核细胞DNA进行了全基因组甲基化分析。对超过27,000个CpG位点的多元线性回归分析的p值进行排序,以确定暴露组之间的dmr。在排名前10位的DMRs中,我们确定了几个基因,包括NPR1、PANK1、SCAND1和GJA4,这些基因已知与心脏代谢性状相关。基因富集分析前84个基因中,pPYGO1和CLN8基因对子宫内母体糖尿病暴露对子代VCAM-1水平影响的相对中介作用最大(RME = 87%, p=0.005, RME=50%, p=0.01)。多个候选基因和UPS被确定为未来的研究,作为子宫内暴露于母体妊娠糖尿病与后代不良心脏代谢特征之间的可能联系。特别是,PYGO1和CLN8甲基化的增加可能是宫内暴露于母体糖尿病和后代VCAM-1水平显著升高之间的生物学联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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