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A Statistical Approach to Fine Mapping for the Identification of Potential Causal Variants Related to Bone Mineral Density

机译:精细映射的统计方法用于识别与骨矿物质密度相关的潜在因果变异

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摘要

Although GWAS have been able to successfully identify dozens of genetic loci associated with bone mineral density (BMD) and osteoporosis related traits, very few of these loci have been confirmed to be causal. This is due to the fact that in a given genetic region there may exist many trait-associated SNPs that are highly correlated. While this correlation is useful for discovering novel associations, the high degree of linkage disequilibrium that persists throughout the genome presents a major challenge to discern which among these correlated variants has a direct effect on the trait. In this study we apply a recently developed Bayesian fine mapping method, PAINTOR, to determine the SNPs that have the highest probability of causality for Femoral Neck (FNK) BMD and Lumbar Spine (LS) BMD. The advantage of this method is that it allows for the incorporation of information about GWAS summary statistics, linkage disequilibrium, and functional annotations to calculate a posterior probability of causality for SNPs across all loci of interest. We present a list of the top ten candidate SNPs for each BMD trait to be followed up in future functional validation experiments. The SNPs rs2566752 (WLS) and rs436792 (ZNF621 and CTNNB1) are particularly noteworthy as they have more than 90% probability to be causal for both FNK and LS BMD. Using this statistical fine mapping approach we expect to gain a better understanding of the genetic determinants contributing to BMD at multiple skeletal sites.
机译:尽管GWAS能够成功鉴定出数十个与骨矿物质密度(BMD)和骨质疏松症相关性状相关的遗传基因座,但这些基因座中很少有人被证实是有因果关系的。这是由于在给定的遗传区域中可能存在许多高度相关的性状相关SNP。虽然这种相关性对于发现新的关联有用,但是在整个基因组中持续存在的高度连锁不平衡给识别这些相关变体中的哪些对性状有直接影响提出了重大挑战。在这项研究中,我们使用一种最新开发的贝叶斯精细映射方法PAINTOR来确定股骨颈(FNK)BMD和腰椎(LS)BMD因果关系可能性最高的SNP。此方法的优点是,它允许合并有关GWAS摘要统计信息,连锁不平衡和功能注释的信息,以计算所有感兴趣位点上SNP的因果关系的后验概率。我们提出了每个BMD性状的十大候选SNP列表,这些功能将在以后的功能验证实验中进行跟踪。特别值得注意的是SNP rs2566752(WLS)和rs436792(ZNF621和CTNNB1),因为它们有超过90%的概率成为FNK和LS BMD的原因。我们希望使用这种统计精细作图方法,可以更好地了解在多个骨骼部位导致BMD的遗传决定因素。

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