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JEPEG: a summary statistics based tool for gene-level joint testing of functional variants

机译:JPG:基于摘要统计的工具用于功能变异的基因级联合测试

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摘要

>Motivation: Gene expression is influenced by variants commonly known as expression quantitative trait loci (eQTL). On the basis of this fact, researchers proposed to use eQTL/functional information univariately for prioritizing single nucleotide polymorphisms (SNPs) signals from genome-wide association studies (GWAS). However, most genes are influenced by multiple eQTLs which, thus, jointly affect any downstream phenotype. Therefore, when compared with the univariate prioritization approach, a joint modeling of eQTL action on phenotypes has the potential to substantially increase signal detection power. Nonetheless, a joint eQTL analysis is impeded by (i) not measuring all eQTLs in a gene and/or (ii) lack of access to individual genotypes.>Results: We propose joint effect on phenotype of eQTL/functional SNPs associated with a gene (JEPEG), a novel software tool which uses only GWAS summary statistics to (i) impute the summary statistics at unmeasured eQTLs and (ii) test for the joint effect of all measured and imputed eQTLs in a gene. We illustrate the behavior/performance of the developed tool by analysing the GWAS meta-analysis summary statistics from the Psychiatric Genomics Consortium Stage 1 and the Genetic Consortium for Anorexia Nervosa.>Conclusions: Applied analyses results suggest that JEPEG complements commonly used univariate GWAS tools by: (i) increasing signal detection power via uncovering (a) novel genes or (b) known associated genes in smaller cohorts and (ii) assisting in fine-mapping of challenging regions, e.g. major histocompatibility complex for schizophrenia.>Availability and implementation: JEPEG, its associated database of eQTL SNPs and usage examples are publicly available at .>Contact: >Supplementary information: are available at Bioinformatics online.
机译:>动机:基因表达受通常称为表达数量性状基因座(eQTL)的变体影响。基于这一事实,研究人员建议单变量使用eQTL /功能信息对来自全基因组关联研究(GWAS)的单核苷酸多态性(SNPs)信号进行优先排序。但是,大多数基因受多个eQTL的影响,因此共同影响任何下游表型。因此,与单变量优先级排序方法相比,eQTL对表型作用的联合建模具有显着提高信号检测能力的潜力。但是,由于(i)无法测量基因中的所有eQTL和/或(ii)无法获得个体基因型而阻碍了联合eQTL分析。>结果:我们建议对eQTL /与基因相关的功能性SNP(JEPEG),这是一种新颖的软件工具,仅使用GWAS摘要统计信息来(i)估算未测量eQTL的摘要统计信息,以及(ii)测试基因中所有测量和估算eQTL的联合效应。我们通过分析来自精神病学基因组联合会第一阶段和遗传性厌食症的遗传联合会的GWAS荟萃分析摘要统计数据来说明该开发工具的行为/性能。>结论:应用分析结果表明,JEPEG补体通常使用的单变量GWAS工具,方法是:(i)通过发现较小的队列中的(a)新基因或(b)已知相关基因来增强信号检测能力,以及(ii)协助对具有挑战性的区域进行精细映射>可用性和实施​​: JEPEG及其相关的eQTL SNP数据库和用法示例可在以下网站上公开获得。>联系方式: >补充信息:可在生物信息学在线获得。

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