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Updated: Nov 19, 2025

Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
GRK5 is a regulator of fibroblast activation and cardiac fibrosis
Akito Eguchi1, Ryan Coleman1, Kenneth Gresham1
1Center for Translational Medicine, Lewis Katz School of Medicine at Temple University, Philadelphia, PA 19140.
Insights
G protein-coupled receptor kinase 5 (GRK5) promotes heart disease by activating cardiac fibroblasts. Inhibiting GRK5 in mice reduced cardiac fibrosis and hypertrophy, suggesting GRK5 as a therapeutic target for heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Fibrosis Research
Background:
- Pathological cardiac remodeling drives chronic heart failure (HF).
- Cardiac fibroblasts are key in maintaining heart structure and activate into myofibroblasts under stress.
- G protein-coupled receptor kinase 5 (GRK5) influences cardiovascular homeostasis and is upregulated in human HF.
Purpose of the Study:
- To investigate the role of GRK5 in cardiac fibroblast activation and its contribution to cardiac fibrosis and hypertrophy.
- To determine if GRK5 nuclear translocation is involved in fibroblast activation.
Main Methods:
- Genetic deletion of GRK5 in adult cardiac fibroblasts in vitro.
- Fibroblast-specific GRK5 knockout mice subjected to chronic Angiotensin II infusion or ischemic injury.
- Assessment of fibroblast activation, cardiac fibrosis, and hypertrophy.
Main Results:
- Genetic deletion of GRK5 inhibited angiotensin II-mediated fibroblast activation in vitro.
- Fibroblast-specific GRK5 deletion in mice significantly reduced cardiac fibrosis and hypertrophy following Angiotensin II infusion or ischemic injury.
- Nuclear translocation of GRK5 was implicated in fibroblast activation.
Conclusions:
- GRK5 is a critical regulator of cardiac fibroblast activation and cardiac fibrosis in vivo.
- These findings support targeting GRK5 for potential therapeutic benefits in cardiac disease and heart failure.
Abstract:
Pathological remodeling of the heart is a hallmark of chronic heart failure (HF) and these structural changes further perpetuate the disease. Cardiac fibroblasts are the critical cell type that is responsible for maintaining the structural integrity of the heart. Stress conditions, such as a myocardial infarction (MI), can activate quiescent fibroblasts into synthetic and contractile myofibroblasts. G protein-coupled receptor kinase 5 (GRK5) is an important mediator of cardiovascular homeostasis through dampening of GPCR signaling, and is expressed in the heart and up-regulated in human HF. Of note, GRK5 has been demonstrated to translocate to the nucleus in cardiomyocytes in a calcium-calmodulin (Ca2+-CAM)-dependent manner, promoting hypertrophic gene transcription through activation of nuclear factor of activated T cells (NFAT). Interestingly, NFAT is also involved in fibroblast activation. GRK5 is highly expressed and active in cardiac fibroblasts; however, its pathophysiological role in these crucial cardiac cells is unknown. We demonstrate using adult cardiac fibroblasts that genetic deletion of GRK5 inhibits angiotensin II (AngII)-mediated fibroblast activation. Fibroblast-specific deletion of GRK5 in mice led to decreased fibrosis and cardiac hypertrophy after chronic AngII infusion or after ischemic injury compared to nontransgenic littermate controls (NLCs). Mechanistically, we show that nuclear translocation of GRK5 is involved in fibroblast activation. These data demonstrate that GRK5 is a regulator of fibroblast activation in vitro and cardiac fibrosis in vivo. This adds to previously published data which demonstrate the potential beneficial effects of GRK5 inhibition in the context of cardiac disease.
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