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Updated: Feb 4, 2026

Isolation of Murine Coronary Vascular Smooth Muscle Cells
Published on: May 30, 2016
Coronary artery disease genes SMAD3 and TCF21 promote opposing interactive genetic programs that regulate smooth
Dharini Iyer1, Quanyi Zhao1, Robert Wirka1
1Department of Medicine and Cardiovascular Institute, Stanford University School of Medicine, Stanford, CA, United States of America.
Abstract:
Although numerous genetic loci have been associated with coronary artery disease (CAD) with genome wide association studies, efforts are needed to identify the causal genes in these loci and link them into fundamental signaling pathways. Recent studies have investigated the disease mechanism of CAD associated gene SMAD3, a central transcription factor (TF) in the TGFβ pathway, investigating its role in smooth muscle biology. In vitro studies in human coronary artery smooth muscle cells (HCASMC) revealed that SMAD3 modulates cellular phenotype, promoting expression of differentiation marker genes while inhibiting proliferation. RNA sequencing and chromatin immunoprecipitation sequencing studies in HCASMC identified downstream genes that reside in pathways which mediate vascular development and atherosclerosis processes in this cell type. HCASMC phenotype, and gene expression patterns promoted by SMAD3 were noted to have opposing direction of effect compared to another CAD associated TF, TCF21. At sites of SMAD3 and TCF21 colocalization on DNA, SMAD3 binding was inversely correlated with TCF21 binding, due in part to TCF21 locally blocking chromatin accessibility at the SMAD3 binding site. Further, TCF21 was able to directly inhibit SMAD3 activation of gene expression in transfection reporter gene studies. In contrast to TCF21 which is protective toward CAD, SMAD3 expression in HCASMC was shown to be directly correlated with disease risk. We propose that the pro-differentiation action of SMAD3 inhibits dedifferentiation that is required for HCASMC to expand and stabilize disease plaque as they respond to vascular stresses, counteracting the protective dedifferentiating activity of TCF21 and promoting disease risk.
Insights
SMAD3, a gene linked to coronary artery disease (CAD), promotes smooth muscle cell differentiation, increasing CAD risk. It counteracts TCF21, a protective factor, by inhibiting dedifferentiation crucial for plaque stabilization.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
Background:
- Genome-wide association studies have identified numerous genetic loci for coronary artery disease (CAD).
- Identifying causal genes and their signaling pathways is crucial for understanding CAD pathogenesis.
- SMAD3, a transcription factor in the TGFβ pathway, is implicated in CAD and vascular smooth muscle cell biology.
Purpose of the Study:
- To investigate the role of SMAD3 in human coronary artery smooth muscle cells (HCASMC) and its relationship with CAD.
- To compare the function of SMAD3 with TCF21, another CAD-associated transcription factor.
Main Methods:
- In vitro studies using HCASMC.
- RNA sequencing and chromatin immunoprecipitation sequencing.
- Transfection reporter gene assays.
Main Results:
- SMAD3 promotes HCASMC differentiation and inhibits proliferation.
- SMAD3 and TCF21 exhibit opposing effects on HCASMC phenotype and gene expression.
- TCF21 binding inversely correlates with SMAD3 binding and can inhibit SMAD3's transcriptional activity.
- SMAD3 expression in HCASMC correlates with increased CAD risk, while TCF21 is protective.
Conclusions:
- SMAD3 promotes HCASMC differentiation, which may hinder the dedifferentiation needed for plaque stabilization.
- SMAD3's pro-differentiation action counteracts TCF21's protective role, thereby increasing CAD risk.
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