Prediction of Causal Candidate Genes in Coronary Artery Disease Loci

Author:

Brænne Ingrid1,Civelek Mete1,Vilne Baiba1,Di Narzo Antonio1,Johnson Andrew D.1,Zhao Yuqi1,Reiz Benedikt1,Codoni Veronica1,Webb Thomas R.1,Foroughi Asl Hassan1,Hamby Stephen E.1,Zeng Lingyao1,Trégouët David-Alexandre1,Hao Ke1,Topol Eric J.1,Schadt Eric E.1,Yang Xia1,Samani Nilesh J.1,Björkegren Johan L.M.1,Erdmann Jeanette1,Schunkert Heribert1,Lusis Aldons J.1

Affiliation:

1. From the Institut für Integrative und Experimentelle Genomik, Universität zu Lübeck, Lübeck, Germany (I.B., B.R., J.E.); DZHK (German Research Centre for Cardiovascular Research), Partner Site Hamburg/Lübeck/Kiel, Lübeck, Germany (I.B., B.R., J.E.); University Heart Center Lübeck, Lübeck, Germany (I.B., B.R., J.E.); Departments of Medicine (M.C., A.J.L.) and Integrative Biology and Physiology (Y.Z., X.Y.), University of California, Los Angeles; Deutsches Herzzentrum München, Klinik für Herz-und...

Abstract

Objective— Genome-wide association studies have to date identified 159 significant and suggestive loci for coronary artery disease (CAD). We now report comprehensive bioinformatics analyses of sequence variation in these loci to predict candidate causal genes. Approach and Results— All annotated genes in the loci were evaluated with respect to protein-coding single-nucleotide polymorphism and gene expression parameters. The latter included expression quantitative trait loci, tissue specificity, and miRNA binding. High priority candidate genes were further identified based on literature searches and our experimental data. We conclude that the great majority of causal variations affecting CAD risk occur in noncoding regions, with 41% affecting gene expression robustly versus 6% leading to amino acid changes. Many of these genes differed from the traditionally annotated genes, which was usually based on proximity to the lead single-nucleotide polymorphism. Indeed, we obtained evidence that genetic variants at CAD loci affect 98 genes which had not been linked to CAD previously. Conclusions— Our results substantially revise the list of likely candidates for CAD and suggest that genome-wide association studies efforts in other diseases may benefit from similar bioinformatics analyses.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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