TY - JOUR
T1 - A systems biology framework identifies molecular underpinnings of coronary heart disease
AU - Huan, Tianxiao
AU - Zhang, Bin
AU - Wang, Zhi
AU - Joehanes, Roby
AU - Zhu, Jun
AU - Johnson, Andrew D.
AU - Ying, Saixia
AU - Munson, Peter J.
AU - Raghavachari, Nalini
AU - Wang, Richard
AU - Liu, Poching
AU - Courchesne, Paul
AU - Hwang, Shih Jen
AU - Assimes, Themistocles L.
AU - McPherson, Ruth
AU - Samani, Nilesh J.
AU - Schunkert, Heribert
AU - Meng, Qingying
AU - Suver, Christine
AU - O'Donnell, Christopher J.
AU - Derry, Jonathan
AU - Yang, Xia
AU - Levy, Daniel
PY - 2013/6
Y1 - 2013/6
N2 - Objective-Genetic approaches have identified numerous loci associated with coronary heart disease (CHD). The molecular mechanisms underlying CHD gene-disease associations, however, remain unclear. We hypothesized that genetic variants with both strong and subtle effects drive gene subnetworks that in turn affect CHD. Approach and Results-We surveyed CHD-Associated molecular interactions by constructing coexpression networks using whole blood gene expression profiles from 188 CHD cases and 188 age- and sex-matched controls. Twenty-four coexpression modules were identified, including 1 case-specific and 1 control-specific differential module (DM). The DMs were enriched for genes involved in B-cell activation, immune response, and ion transport. By integrating the DMs with gene expression-Associated single-nucleotide polymorphisms and with results of genome-wide association studies of CHD and its risk factors, the control-specific DM was implicated as CHD causal based on its significant enrichment for both CHD and lipid expression-Associated single-nucleotide polymorphisms. This causal DM was further integrated with tissue-specific Bayesian networks and protein-protein interaction networks to identify regulatory key driver genes. Multitissue key drivers (SPIB and TNFRSF13C) and tissue-specific key drivers (eg, EBF1) were identified. Conclusions-Our network-driven integrative analysis not only identified CHD-related genes, but also defined network structure that sheds light on the molecular interactions of genes associated with CHD risk.
AB - Objective-Genetic approaches have identified numerous loci associated with coronary heart disease (CHD). The molecular mechanisms underlying CHD gene-disease associations, however, remain unclear. We hypothesized that genetic variants with both strong and subtle effects drive gene subnetworks that in turn affect CHD. Approach and Results-We surveyed CHD-Associated molecular interactions by constructing coexpression networks using whole blood gene expression profiles from 188 CHD cases and 188 age- and sex-matched controls. Twenty-four coexpression modules were identified, including 1 case-specific and 1 control-specific differential module (DM). The DMs were enriched for genes involved in B-cell activation, immune response, and ion transport. By integrating the DMs with gene expression-Associated single-nucleotide polymorphisms and with results of genome-wide association studies of CHD and its risk factors, the control-specific DM was implicated as CHD causal based on its significant enrichment for both CHD and lipid expression-Associated single-nucleotide polymorphisms. This causal DM was further integrated with tissue-specific Bayesian networks and protein-protein interaction networks to identify regulatory key driver genes. Multitissue key drivers (SPIB and TNFRSF13C) and tissue-specific key drivers (eg, EBF1) were identified. Conclusions-Our network-driven integrative analysis not only identified CHD-related genes, but also defined network structure that sheds light on the molecular interactions of genes associated with CHD risk.
KW - Coexpression network
KW - Coronary heart disease
KW - Gene expression
KW - Systems biology
UR - http://www.scopus.com/inward/record.url?scp=84879121298&partnerID=8YFLogxK
U2 - 10.1161/ATVBAHA.112.300112
DO - 10.1161/ATVBAHA.112.300112
M3 - Article
C2 - 23539213
AN - SCOPUS:84879121298
SN - 1079-5642
VL - 33
SP - 1427
EP - 1434
JO - Arteriosclerosis, Thrombosis, and Vascular Biology
JF - Arteriosclerosis, Thrombosis, and Vascular Biology
IS - 6
ER -