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SECA: SNP effect concordance analysis using genome-wide association summary results

机译:SECA:使用全基因组关联汇总结果进行SNP效应一致性分析

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.Summary: The genomics era provides opportunities to assess the genetic overlap across phenotypes at the measured genotype level; however, current approaches require individual-level genome-wide association (GWA) single nucleotide polymorphism (SNP) genotype data in one or both of a pair of GWA samples. To facilitate the discovery of pleiotropic effects and examine genetic overlap across two phenotypes, I have developed a user-friendly web-based application called SECA to perform SNP effect concordance analysis using GWA summary results. The method is validated using publicly available summary data from the Psychiatric Genomics Consortium
机译:摘要:基因组学时代提供了机会,可以在测得的基因型水平上评估表型之间的遗传重叠;但是,当前的方法需要一对GWA样本中的一个或两个都具有个体水平的全基因组关联(GWA)单核苷酸多态性(SNP)基因型数据。为了促进多效性效应的发现并检查两个表型之间的遗传重叠,我开发了一个基于用户友好的基于Web的应用程序,称为SECA,可以使用GWA摘要结果执行SNP效应一致性分析。该方法已使用Psychiatric Genomics Consortium的公开可用摘要数据进行了验证

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