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Discovery of shared genomic loci using the conditional false discovery rate approach

机译:使用条件虚假发现率探测共享基因组基因座的发现

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摘要

In recent years, genome-wide association study (GWAS) sample sizes have become larger, the statistical power has improved and thousands of trait-associated variants have been uncovered, offering new insights into the genetic etiology of complex human traits and disorders. However, a large fraction of the polygenic architecture underlying most complex phenotypes still remains undetected. We here review the conditional false discovery rate (condFDR) method, a model-free strategy for analysis of GWAS summary data, which has improved yield of existing GWAS and provided novel findings of genetic overlap between a wide range of complex human phenotypes, including psychiatric, cardiovascular, and neurological disorders, as well as psychological and cognitive traits. The condFDR method was inspired by Empirical Bayes approaches and leverages auxiliary genetic information to improve statistical power for discovery of single-nucleotide polymorphisms (SNPs). The cross-trait condFDR strategy analyses separate GWAS data, and leverages overlapping SNP associations, i.e., cross-trait enrichment, to increase discovery of trait-associated SNPs. The extension of the condFDR approach to conjunctional FDR (conjFDR) identifies shared genomic loci between two phenotypes. The conjFDR approach allows for detection of shared genomic associations irrespective of the genetic correlation between the phenotypes, often revealing a mixture of antagonistic and agonistic directional effects among the shared loci. This review provides a methodological comparison between condFDR and other relevant cross-trait analytical tools and demonstrates how condFDR analysis may provide novel insights into the genetic relationship between complex phenotypes.
机译:近年来,基因组 - 范围协会研究(GWAS)样本尺寸变得更大,统计电力有所改善,已经发现了数千个特性相关的变体,为复杂人类特征和疾病的遗传病因提供了新的见解。然而,大部分多基于大部分表型的多基因架构仍然未被发现。我们在这里审查了条件虚假发现率(Condfdr)方法,一种无模型策略,用于分析GWAS概要数据,这具有提高了现有GWA的产量,并在包括精神缺点的广泛复杂的人类表型之间提供了新的遗传重叠的研究结果,心血管和神经疾病,以及心理和认知性状。 CONDFDR方法受到经验贝叶斯方法的启发,利用辅助遗传信息来改善发现单核苷酸多态性(SNPS)的统计学力量。交叉特性Condfdr战略分析了单独的GWAS数据,利用重叠的SNP关联,即交叉特质富集,增加特征相关的SNP的发现。 CONDFR方法的扩展到联合FDR(连友联合)识别两种表型之间的共享基因组基因座。连词方法允许检测共享基因组关联,而不管表型之间的遗传相关性,通常都揭示共用基因座之间的拮抗和激动定向效应的混合物。该审查提供了Condfdr和其他相关交叉特征分析工具之间的方法论比较,并展示了Condfdr分析如何在复杂表型之间的遗传关系中提供新的洞察。

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  • 来源
    《Human Genetics》 |2020年第1期|共10页
  • 作者单位

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

    Univ Calif San Diego Dept Cognit Sci La Jolla San Diego CA 92093 USA;

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

    Univ Calif San Diego Dept Radiol La Jolla San Diego CA 92093 USA;

    Oslo Univ Hosp Dept Med Genet Oslo Oslo Norway;

    Univ Calif San Diego Dept Family Med Publ Hlth La Jolla San Diego CA 92093 USA;

    Univ Calif San Diego Dept Cognit Sci La Jolla San Diego CA 92093 USA;

    Oslo Univ Hosp Univ Oslo Inst Clin Med NORMENT Centre Div Mental Hlth Addict Kirkeveien 166 N;

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