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i-GSEA4GWAS: a web server for identification of pathways/gene sets associated with traits by applying an improved gene set enrichment analysis to genome-wide association study

机译:i-GSEA4GWAS:一种网络服务器,可通过将改进的基因集富集分析应用于全基因组关联研究来鉴定与性状相关的途径/基因集

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Genome-wide association study (GWAS) is nowadays widely used to identify genes involved in human complex disease. The standard GWAS analysis examines SNPs/genes independently and identifies only a number of the most significant SNPs. It ignores the combined effect of weaker SNPs/genes, which leads to difficulties to explore biological function and mechanism from a systems point of view. Although gene set enrichment analysis (GSEA) has been introduced to GWAS to overcome these limitations by identifying the correlation between pathways/gene sets and traits, the heavy dependence on genotype data, which is not easily available for most published GWAS investigations, has led to limited application of it. In order to perform GSEA on a simple list of GWAS SNP P-values, we implemented GSEA by using SNP label permutation. We further improved GSEA (i-GSEA) by focusing on pathways/gene sets with high proportion of significant genes. To provide researchers an open platform to analyze GWAS data, we developed the i-GSEA4GWAS (improved GSEA for GWAS) web server. i-GSEA4GWAS implements the i-GSEA approach and aims to provide new insights in complex disease studies. i-GSEA4GWAS is freely available at http://gsea4gwas.psych.ac.cn/.
机译:如今,全基因组关联研究(GWAS)被广泛用于鉴定与人类复杂疾病有关的基因。标准GWAS分析独立检查SNP /基因,并仅识别出一些最重要的SNP。它忽略了较弱的SNP /基因的综合作用,这导致从系统的角度探索生物学功能和机制变得困难。尽管已将基因组富集分析(GSEA)引入GWAS,以通过鉴定途径/基因组与性状之间的相关性来克服这些局限性,但对基因型数据的严重依赖性(对于大多数已发表的GWAS研究而言并不容易获得)导致有限的应用。为了对GWAS SNP P值的简单列表执行GSEA,我们通过使用SNP标签置换实现了GSEA。我们通过关注具有高比例重要基因的途径/基因组,进一步改善了GSEA(i-GSEA)。为了为研究人员提供一个分析GWAS数据的开放平台,我们开发了i-GSEA4GWAS(为GWAS改进的GSEA)Web服务器。 i-GSEA4GWAS实施i-GSEA方法,旨在为复杂疾病研究提供新见解。 i-GSEA4GWAS可从http://gsea4gwas.psych.ac.cn/免费获得。

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