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GRASP: analysis of genotype–phenotype results from 1390 genome-wideassociation studies and corresponding open access database

机译:GRASP:1390个全基因组的基因型-表型结果分析关联研究和相应的开放访问数据库

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摘要

>Summary: We created a deeply extracted and annotated database of genome-wide association studies (GWAS) results. GRASP v1.0 contains >6.2 million SNP-phenotype association from among 1390 GWAS studies. We re-annotated GWAS results with 16 annotation sources including some rarely compared to GWAS results (e.g. RNAediting sites, lincRNAs, PTMs).>Motivation: To create a high-quality resource to facilitate further use and interpretation of human GWAS results in order to address important scientific questions.>Results: GWAS have grown exponentially, with increases in sample sizes and markers tested, and continuing bias toward European ancestry samples. GRASP contains >100 000 phenotypes, roughly: eQTLs (71.5%), metabolite QTLs (21.2%), methylation QTLs (4.4%) and diseases, biomarkers and other traits (2.8%). cis-eQTLs, meQTLs, mQTLs and MHC region SNPs are highly enriched among significant results. After removing these categories, GRASP still contains a greater proportion of studies and results than comparable GWAS catalogs. Cardiovascular disease and related risk factors pre-dominate remaining GWAS results, followed by immunological, neurological and cancer traits. Significant results in GWAS display a highly gene-centric tendency. Sex chromosome X (OR = 0.18[0.16-0.20]) and Y (OR = 0.003[0.001-0.01]) genes are depleted for GWAS results. Gene length is correlated withGWAS results at nominal significance (P ≤ 0.05) levels. We show thisgene-length correlation decays at increasingly more stringent P-valuethresholds. Potential pleotropic genes and SNPs enriched for multi-phenotype associationin GWAS are identified. However, we note possible population stratification at some ofthese loci. Finally, via re-annotation we identify compelling functional hypotheses atGWAS loci, in some cases unrealized in studies to date.>Conclusion: Pooling summary-level GWAS results and re-annotating withbioinformatics predictions and molecular features provides a good platform for newinsights.>Availability: The GRASP database is available at .>Contact:
机译:>摘要:我们创建了一个深度提取并带有注释的全基因组关联研究(GWAS)结果数据库。 GRASP v1.0包含1390个GWAS研究中的> 620万个SNP表型关联。我们用16个注释源重新注释了GWAS结果,其中包括一些与GWAS结果相比很少使用的注释源(例如RNA编辑位点,lincRNA,PTM)。>动机:创建高质量的资源,以方便进一步使用和解释人类GWAS的结果是为了解决重要的科学问题。>结果: GWAS呈指数增长,随着样本量和测试标记的增加,以及对欧洲血统样本的持续偏见。 GRASP包含> 100,000种表型,大致为:eQTL(71.5%),代谢物QTL(21.2%),甲基化QTL(4.4%)以及疾病,生物标志物和其他特征(2.8%)。顺式-eQTL,meQTL,mQTL和MHC区域SNP在重要结果中高度富集。删除这些类别后,GRASP仍然比可比的GWAS目录包含更多的研究和结果。心血管疾病和相关危险因素占主导地位的其余GWAS结果,其次是免疫,神经和癌症特征。 GWAS中的重要结果显示出高度以基因为中心的趋势。 GWAS结果耗尽了性染色体X(OR = 0.18 [0.16-0.20])和Y(OR = 0.003 [0.001-0.01])基因。基因长度与GWAS结果在名义上具有显着意义(P≤0.05)。我们展示这个基因长度相关性随着P值越来越严格而衰减阈值。潜在多效性基因和SNPs丰富的多表型关联。在GWAS中被识别。但是,我们注意到某些地区可能存在人口分层这些基因座。最后,通过重新注释,我们确定了引人注目的功能假设GWAS基因座,在某些情况下迄今为止尚未在研究中实现。>结论:汇总汇总级别的GWAS结果并重新注释生物信息学的预测和分子特征为新的研究提供了良好的平台>可用性:可从访问GRASP数据库。>联系方式

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