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基因变异与基因表达的整合分析确定了心血管疾病表型的网络。

Integromic analysis of genetic variation and gene expression identifies networks for cardiovascular disease phenotypes.

作者信息

Yao Chen, Chen Brian H, Joehanes Roby, Otlu Burcak, Zhang Xiaoling, Liu Chunyu, Huan Tianxiao, Tastan Oznur, Cupples L Adrienne, Meigs James B, Fox Caroline S, Freedman Jane E, Courchesne Paul, O'Donnell Christopher J, Munson Peter J, Keles Sunduz, Levy Daniel

机构信息

From the National Heart, Lung, and Blood Institute's Framingham Heart Study, National Institutes of Health, Bethesda, MD (C.Y., B.H.C., R.J., X.Z., C.L., T.H., L.A.C., C.S.F., P.C., C.J.O'D., D.L.); Population Sciences Branch, National Institutes of Health, National Heart, Lung, and Blood Institute, Bethesda, MD (C.Y., B.H.C., R.J., X.Z., C.L., T.H., P.C., D.L.); Mathematical and Statistical Computing Laboratory, Center for Information Technology, National Institutes of Health, Bethesda, MD (R.J., P.J.M.); Department of Computer Engineering, Middle East Technical University, Ankara, Turkey (B.O.); Department of Computer Engineering, Bilkent University, Ankara, Turkey (O.T.); Department of Biostatistics, Boston University School of Public Health, Boston, MA (L.A.C.); Harvard Medical School, Boston, MA (J.B.M.); Division of Endocrinology, Metabolism, and Diabetes, Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, MA (C.S.F.); Department of Medicine, University of Massachusetts Medical School, Worchester (J.E.F.); Division of Cardiology, Massachusetts General Hospital, Boston, MA (C.J.O'D.); and Departments of Statistics and of Biostatistics and Medical Informatics, University of Wisconsin-Madison (S.K.).

出版信息

Circulation. 2015 Feb 10;131(6):536-49. doi: 10.1161/CIRCULATIONAHA.114.010696. Epub 2014 Dec 22.

Abstract

BACKGROUND

Cardiovascular disease (CVD) reflects a highly coordinated complex of traits. Although genome-wide association studies have reported numerous single nucleotide polymorphisms (SNPs) to be associated with CVD, the role of most of these variants in disease processes remains unknown.

METHODS AND RESULTS

We built a CVD network using 1512 SNPs associated with 21 CVD traits in genome-wide association studies (at P≤5×10(-8)) and cross-linked different traits by virtue of their shared SNP associations. We then explored whole blood gene expression in relation to these SNPs in 5257 participants in the Framingham Heart Study. At a false discovery rate <0.05, we identified 370 cis-expression quantitative trait loci (eQTLs; SNPs associated with altered expression of nearby genes) and 44 trans-eQTLs (SNPs associated with altered expression of remote genes). The eQTL network revealed 13 CVD-related modules. Searching for association of eQTL genes with CVD risk factors (lipids, blood pressure, fasting blood glucose, and body mass index) in the same individuals, we found examples in which the expression of eQTL genes was significantly associated with these CVD phenotypes. In addition, mediation tests suggested that a subset of SNPs previously associated with CVD phenotypes in genome-wide association studies may exert their function by altering expression of eQTL genes (eg, LDLR and PCSK7), which in turn may promote interindividual variation in phenotypes.

CONCLUSIONS

Using a network approach to analyze CVD traits, we identified complex networks of SNP-phenotype and SNP-transcript connections. Integrating the CVD network with phenotypic data, we identified biological pathways that may provide insights into potential drug targets for treatment or prevention of CVD.

摘要

背景

心血管疾病(CVD)反映了一系列高度协调的复杂性状。尽管全基因组关联研究已经报道了许多与心血管疾病相关的单核苷酸多态性(SNP),但这些变异中的大多数在疾病过程中的作用仍然未知。

方法与结果

我们利用全基因组关联研究中与21种心血管疾病性状相关的1512个SNP(P≤5×10⁻⁸)构建了一个心血管疾病网络,并通过共享的SNP关联将不同性状相互关联起来。然后,我们在弗雷明汉心脏研究的5257名参与者中,探索了与这些SNP相关的全血基因表达情况。在错误发现率<0.05的情况下,我们鉴定出370个顺式表达定量性状位点(eQTL,即与附近基因表达改变相关的SNP)和44个反式eQTL(与远端基因表达改变相关的SNP)。eQTL网络揭示了13个与心血管疾病相关的模块。在同一批个体中,研究eQTL基因与心血管疾病危险因素(血脂、血压、空腹血糖和体重指数)之间的关联,我们发现了一些例子,其中eQTL基因的表达与这些心血管疾病表型显著相关。此外,中介检验表明,在全基因组关联研究中先前与心血管疾病表型相关的一部分SNP,可能通过改变eQTL基因(如LDLR和PCSK7)的表达来发挥其功能,这反过来可能促进个体间表型的差异。

结论

我们采用网络方法分析心血管疾病性状,鉴定出了SNP-表型和SNP-转录本连接的复杂网络。将心血管疾病网络与表型数据相结合,我们确定了一些生物学途径,这些途径可能为治疗或预防心血管疾病的潜在药物靶点提供见解。

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