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Updated: Jan 21, 2026

Isolation and Characterization of Adult Cardiac Fibroblasts and Myofibroblasts
Published on: March 12, 2020
Dynamic Chromatin Targeting of BRD4 Stimulates Cardiac Fibroblast Activation
Matthew S Stratton1,2, Rushita A Bagchi1,2, Marina B Felisbino1,2
1From the Department of Medicine, Division of Cardiology (M.S.S., R.A.B., M.B.F., A.S.R., B.Y.E., K.A.K., M.A.C., K.S., M.P.Y.L., T.A.M.), University of Colorado Anschutz Medical Campus, Aurora.
Insights
Bromodomain-containing protein 4 (BRD4) regulates cardiac fibroblast activation and extracellular matrix production, crucial for treating heart failure. This study reveals BRD4
Area of Science:
- Epigenetics and Molecular Biology
- Cardiovascular Research
- Fibrosis Mechanisms
Background:
- Small molecule inhibitors of BRD4 show promise in blocking cardiac fibrosis.
- The cell-specific roles and molecular mechanisms of BRD4 in myocardial fibrosis are not fully understood.
Purpose of the Study:
- To investigate the cell-autonomous and signal-responsive function of BRD4 in cardiac fibroblast activation.
- To elucidate the molecular mechanisms by which BRD4 drives the transcriptional program of cardiac fibrosis.
Main Methods:
- RNA-sequencing, mass spectrometry, and cell-based assays on primary rat ventricular fibroblasts.
- In vivo validation using mouse models of transverse aortic constriction treated with BRD4 inhibitor JQ1.
- Chromatin immunoprecipitation-sequencing (ChIP-seq) to analyze BRD4 genome-wide redistribution and target gene activation.
Main Results:
- BRD4 acts as an effector of transforming growth factor-β (TGF-β) signaling, promoting quiescent fibroblast to Periostin-positive, matrix-producing cells.
- BRD4 redistribution to enhancers and super-enhancers drives RNA polymerase II activation and gene expression.
- Sertad4 (SERTA domain-containing protein 4) is identified as a critical mediator in TGF-β-induced fibroblast activation, partly regulated by p38 MAPK.
Conclusions:
- BRD4 is a key regulator of the pro-fibrotic cardiac fibroblast phenotype.
- A p38-dependent signaling circuit for epigenetic reprogramming in heart failure is established.
- The study uncovers a novel role for Sertad4 and provides a mechanistic basis for BRD4 inhibitors in treating cardiac fibrosis.
Rationale:
Small molecule inhibitors of the acetyl-histone binding protein BRD4 have been shown to block cardiac fibrosis in preclinical models of heart failure (HF). However, since the inhibitors target BRD4 ubiquitously, it is unclear whether this chromatin reader protein functions in cell type-specific manner to control pathological myocardial fibrosis. Furthermore, the molecular mechanisms by which BRD4 stimulates the transcriptional program for cardiac fibrosis remain unknown.
Objective:
We sought to test the hypothesis that BRD4 functions in a cell-autonomous and signal-responsive manner to control activation of cardiac fibroblasts, which are the major extracellular matrix-producing cells of the heart.
Methods And Results:
RNA-sequencing, mass spectrometry, and cell-based assays employing primary adult rat ventricular fibroblasts demonstrated that BRD4 functions as an effector of TGF-β (transforming growth factor-β) signaling to stimulate conversion of quiescent cardiac fibroblasts into Periostin (Postn)-positive cells that express high levels of extracellular matrix. These findings were confirmed in vivo through whole-transcriptome analysis of cardiac fibroblasts from mice subjected to transverse aortic constriction and treated with the small molecule BRD4 inhibitor, JQ1. Chromatin immunoprecipitation-sequencing revealed that BRD4 undergoes stimulus-dependent, genome-wide redistribution in cardiac fibroblasts, becoming enriched on a subset of enhancers and super-enhancers, and leading to RNA polymerase II activation and expression of downstream target genes. Employing the Sertad4 (SERTA domain-containing protein 4) locus as a prototype, we demonstrate that dynamic chromatin targeting of BRD4 is controlled, in part, by p38 MAPK (mitogen-activated protein kinase) and provide evidence of a critical function for Sertad4 in TGF-β-mediated cardiac fibroblast activation.
Conclusions:
These findings define BRD4 as a central regulator of the pro-fibrotic cardiac fibroblast phenotype, establish a p38-dependent signaling circuit for epigenetic reprogramming in heart failure, and uncover a novel role for Sertad4. The work provides a mechanistic foundation for the development of BRD4 inhibitors as targeted anti-fibrotic therapies for the heart.
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