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利用与心血管疾病风险因素的多效性提高与精神分裂症相关的常见变异的检测。

Improved detection of common variants associated with schizophrenia by leveraging pleiotropy with cardiovascular-disease risk factors.

机构信息

K.G. Jebsen Centre for Psychosis Research, Institute of Clinical Medicine, University of Oslo, Oslo 0407, Norway.

出版信息

Am J Hum Genet. 2013 Feb 7;92(2):197-209. doi: 10.1016/j.ajhg.2013.01.001. Epub 2013 Jan 31.

Abstract

Several lines of evidence suggest that genome-wide association studies (GWASs) have the potential to explain more of the "missing heritability" of common complex phenotypes. However, reliable methods for identifying a larger proportion of SNPs are currently lacking. Here, we present a genetic-pleiotropy-informed method for improving gene discovery with the use of GWAS summary-statistics data. We applied this methodology to identify additional loci associated with schizophrenia (SCZ), a highly heritable disorder with significant missing heritability. Epidemiological and clinical studies suggest comorbidity between SCZ and cardiovascular-disease (CVD) risk factors, including systolic blood pressure, triglycerides, low- and high-density lipoprotein, body mass index, waist-to-hip ratio, and type 2 diabetes. Using stratified quantile-quantile plots, we show enrichment of SNPs associated with SCZ as a function of the association with several CVD risk factors and a corresponding reduction in false discovery rate (FDR). We validate this "pleiotropic enrichment" by demonstrating increased replication rate across independent SCZ substudies. Applying the stratified FDR method, we identified 25 loci associated with SCZ at a conditional FDR level of 0.01. Of these, ten loci are associated with both SCZ and CVD risk factors, mainly triglycerides and low- and high-density lipoproteins but also waist-to-hip ratio, systolic blood pressure, and body mass index. Together, these findings suggest the feasibility of using genetic-pleiotropy-informed methods for improving gene discovery in SCZ and identifying potential mechanistic relationships with various CVD risk factors.

摘要

有几条证据表明,全基因组关联研究(GWAS)有可能解释更多常见复杂表型的“缺失遗传力”。然而,目前缺乏可靠的方法来识别更多的 SNP。在这里,我们提出了一种基于遗传多效性的方法,利用 GWAS 汇总统计数据来提高基因发现。我们应用这种方法来识别与精神分裂症(SCZ)相关的额外基因座,精神分裂症是一种遗传力很高的疾病,具有显著的遗传缺失。流行病学和临床研究表明,精神分裂症与心血管疾病(CVD)风险因素之间存在共病,包括收缩压、甘油三酯、低和高密度脂蛋白、体重指数、腰臀比和 2 型糖尿病。使用分层分位数-分位数图,我们显示了与 SCZ 相关的 SNP 与多个 CVD 风险因素的相关性呈富集趋势,并且假发现率(FDR)相应降低。我们通过证明在独立的 SCZ 子研究中复制率增加来验证这种“多效性富集”。应用分层 FDR 方法,我们在条件 FDR 水平为 0.01 时确定了 25 个与 SCZ 相关的基因座。其中,十个基因座与 SCZ 和 CVD 风险因素均相关,主要与甘油三酯和低和高密度脂蛋白相关,但也与腰臀比、收缩压和体重指数相关。总之,这些发现表明,使用基于遗传多效性的方法来改善 SCZ 中的基因发现并识别与各种 CVD 风险因素的潜在机制关系是可行的。

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