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Leveraging epigenomics and contactomics data to investigate SNP pairs in GWAS

机译:利用表观态组和大学学数据来调查GWAS中的SNP对

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摘要

Although Genome Wide Association Studies (GWAS) have led to many valuable insights into the genetic bases of common diseases over the past decade, the issue of missing heritability has surfaced, as the discovered main effect genetic variants found to date do not account for much of a trait's predicted genetic component. We present a workflow, integrating epigenomics and topologically associating domain data, aimed at discovering trait-associated SNP pairs from GWAS where neither SNP achieved independent genome-wide significance. Each analyzed SNP pair consists of one SNP in a putative active enhancer and another SNP in a putative physically interacting gene promoter in a trait-relevant tissue. As a proof-of-principle case study, we used this approach to identify focused collections of SNP pairs that we analyzed in three independent Type 2 diabetes (T2D) GWAS. This approach led us to discover 35 significant SNP pairs, encompassing both novel signals and signals for which we have found orthogonal support from other sources. Nine of these pairs are consistent with eQTL results, two are consistent with our own capture C experiments, and seven involve signals supported by recent T2D literature.
机译:尽管全基因组关联研究(GWAS)在过去十年中为常见疾病的遗传基础提供了许多有价值的见解,但遗传力缺失的问题已经浮出水面,因为迄今为止发现的主要效应遗传变异并不能解释性状预测的遗传成分。我们提出了一个整合表观基因组学和拓扑关联域数据的工作流程,旨在从GWAS中发现与性状相关的SNP对,其中两个SNP均未达到独立的全基因组意义。每个分析的SNP对由一个假定的活性增强子中的一个SNP和一个特性相关组织中假定的物理相互作用基因启动子中的另一个SNP组成。作为一个原则性的案例研究,我们使用这种方法来确定我们在三个独立的2型糖尿病(T2D)GWA中分析的SNP对的集中集合。这种方法使我们发现了35个重要的SNP对,包括新的信号和我们从其他来源获得正交支持的信号。其中九对与eQTL结果一致,两对与我们自己的捕获C实验一致,七对涉及最近T2D文献支持的信号。

著录项

  • 来源
    《Human Genetics》 |2018年第5期|共13页
  • 作者单位

    Univ Penn Dept Biostat Epidemiol &

    Informat Philadelphia PA 19104 USA;

    Case Western Reserve Univ Dept Populat &

    Quantitat Hlth Sci Cleveland OH 44106 USA;

    Childrens Hosp Philadelphia Div Human Genet Philadelphia PA 19104 USA;

    Childrens Hosp Philadelphia Div Human Genet Philadelphia PA 19104 USA;

    Childrens Hosp Philadelphia Ctr Spatial &

    Funct Genom Philadelphia PA 19104 USA;

    Childrens Hosp Philadelphia Div Human Genet Philadelphia PA 19104 USA;

    Univ Penn Dept Biostat Epidemiol &

    Informat Philadelphia PA 19104 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医学遗传学;
  • 关键词

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