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Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies

BACKGROUND: Epistasis describes how gene‐gene interactions affect phenotypes, and could have a profound impact on human diseases such as coronary artery disease (CAD). The goal of this study was to identify gene‐gene interactions in CAD using an easily generalizable multi‐stage approach. METHODS AND...

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Autores principales: Li, Yabo, Cho, Hyosuk, Wang, Fan, Canela‐Xandri, Oriol, Luo, Chunyan, Rawlik, Konrad, Archacki, Stephen, Xu, Chengqi, Tenesa, Albert, Chen, Qiuyun, Wang, Qing Kenneth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7428625/
https://www.ncbi.nlm.nih.gov/pubmed/32237974
http://dx.doi.org/10.1161/JAHA.119.014146
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author Li, Yabo
Cho, Hyosuk
Wang, Fan
Canela‐Xandri, Oriol
Luo, Chunyan
Rawlik, Konrad
Archacki, Stephen
Xu, Chengqi
Tenesa, Albert
Chen, Qiuyun
Wang, Qing Kenneth
author_facet Li, Yabo
Cho, Hyosuk
Wang, Fan
Canela‐Xandri, Oriol
Luo, Chunyan
Rawlik, Konrad
Archacki, Stephen
Xu, Chengqi
Tenesa, Albert
Chen, Qiuyun
Wang, Qing Kenneth
author_sort Li, Yabo
collection PubMed
description BACKGROUND: Epistasis describes how gene‐gene interactions affect phenotypes, and could have a profound impact on human diseases such as coronary artery disease (CAD). The goal of this study was to identify gene‐gene interactions in CAD using an easily generalizable multi‐stage approach. METHODS AND RESULTS: Our forward genetic approach consists of multiple steps that combine statistical and functional approaches, and analyze information from global gene expression profiling, functional interactions, and genetic interactions to robustly identify gene‐gene interactions. Global gene expression profiling shows that knockdown of ANRIL (DQ485454) at 9p21.3 GWAS (genome‐wide association studies) CAD locus upregulates TMEM100 and TMEM106B. Functional studies indicate that the increased monocyte adhesion to endothelial cells and transendothelial migration of monocytes, 2 critical processes in the initiation of CAD, by ANRIL knockdown are reversed by knockdown of TMEM106B, but not of TMEM100. Furthermore, the decreased monocyte adhesion to endothelial cells and transendothelial migration of monocytes induced by ANRIL overexpression was reversed by overexpressing TMEM106B. TMEM106B expression was upregulated by >2‐fold in CAD coronary arteries. A significant association was found between variants in TMEM106B (but not in TMEM100) and CAD (P=1.9×10(−8)). Significant gene‐gene interaction was detected between ANRIL variant rs2383207 and TMEM106B variant rs3807865 (P=0.009). A similar approach also identifies significant interaction between rs6903956 in ADTRP and rs17465637 in MIA3 (P=0.005). CONCLUSIONS: We demonstrate 2 pairs of epistatic interactions between GWAS loci for CAD and offer important insights into the genetic architecture and molecular mechanisms for the pathogenesis of CAD. Our strategy has broad applicability to the identification of epistasis in other human diseases.
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spelling pubmed-74286252020-08-17 Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies Li, Yabo Cho, Hyosuk Wang, Fan Canela‐Xandri, Oriol Luo, Chunyan Rawlik, Konrad Archacki, Stephen Xu, Chengqi Tenesa, Albert Chen, Qiuyun Wang, Qing Kenneth J Am Heart Assoc Original Research BACKGROUND: Epistasis describes how gene‐gene interactions affect phenotypes, and could have a profound impact on human diseases such as coronary artery disease (CAD). The goal of this study was to identify gene‐gene interactions in CAD using an easily generalizable multi‐stage approach. METHODS AND RESULTS: Our forward genetic approach consists of multiple steps that combine statistical and functional approaches, and analyze information from global gene expression profiling, functional interactions, and genetic interactions to robustly identify gene‐gene interactions. Global gene expression profiling shows that knockdown of ANRIL (DQ485454) at 9p21.3 GWAS (genome‐wide association studies) CAD locus upregulates TMEM100 and TMEM106B. Functional studies indicate that the increased monocyte adhesion to endothelial cells and transendothelial migration of monocytes, 2 critical processes in the initiation of CAD, by ANRIL knockdown are reversed by knockdown of TMEM106B, but not of TMEM100. Furthermore, the decreased monocyte adhesion to endothelial cells and transendothelial migration of monocytes induced by ANRIL overexpression was reversed by overexpressing TMEM106B. TMEM106B expression was upregulated by >2‐fold in CAD coronary arteries. A significant association was found between variants in TMEM106B (but not in TMEM100) and CAD (P=1.9×10(−8)). Significant gene‐gene interaction was detected between ANRIL variant rs2383207 and TMEM106B variant rs3807865 (P=0.009). A similar approach also identifies significant interaction between rs6903956 in ADTRP and rs17465637 in MIA3 (P=0.005). CONCLUSIONS: We demonstrate 2 pairs of epistatic interactions between GWAS loci for CAD and offer important insights into the genetic architecture and molecular mechanisms for the pathogenesis of CAD. Our strategy has broad applicability to the identification of epistasis in other human diseases. John Wiley and Sons Inc. 2020-04-02 /pmc/articles/PMC7428625/ /pubmed/32237974 http://dx.doi.org/10.1161/JAHA.119.014146 Text en © 2020 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Li, Yabo
Cho, Hyosuk
Wang, Fan
Canela‐Xandri, Oriol
Luo, Chunyan
Rawlik, Konrad
Archacki, Stephen
Xu, Chengqi
Tenesa, Albert
Chen, Qiuyun
Wang, Qing Kenneth
Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title_full Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title_fullStr Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title_full_unstemmed Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title_short Statistical and Functional Studies Identify Epistasis of Cardiovascular Risk Genomic Variants From Genome‐Wide Association Studies
title_sort statistical and functional studies identify epistasis of cardiovascular risk genomic variants from genome‐wide association studies
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7428625/
https://www.ncbi.nlm.nih.gov/pubmed/32237974
http://dx.doi.org/10.1161/JAHA.119.014146
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