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Updated: Sep 18, 2025

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Published on: June 14, 2016
The Role of Cardiac Fibroblast Heterogeneity in Myocardial Fibrosis and Its Novel Therapeutic Potential
Isotta Chimenti1,2, Francesca Pagano3, Claudia Cozzolino1
1Department of Medical and Surgical Sciences and Biotechnologies, Sapienza University of Rome, 00185 Latina, Italy.
Insights
Cardiac fibroblasts are diverse cells, not a single type. Understanding their subtypes is key to developing targeted therapies for heart conditions like fibrosis and heart failure.
Area of Science:
- Cardiovascular Biology
- Fibrosis Research
- Cellular Heterogeneity
Background:
- Cardiac fibrosis is a major driver of heart disease progression.
- Cardiac fibroblasts were previously considered a uniform cell population.
- Recent research reveals significant fibroblast heterogeneity and plasticity.
Purpose of the Study:
- To review current knowledge on cardiac fibroblast diversity.
- To explore the origins and distribution of cardiac fibroblast subtypes.
- To discuss precision anti-fibrotic therapeutic strategies based on fibroblast heterogeneity.
Main Methods:
- Synthesis of current scientific literature.
- Analysis of single-cell transcriptomics, lineage tracing, and epigenetic profiling data.
- Review of emerging therapeutic strategies targeting fibroblast subpopulations and signaling pathways.
Main Results:
- Cardiac fibroblasts comprise distinct subpopulations (e.g., myofibroblasts, matrifibrocytes, inflammatory, senescent).
- These subpopulations have specialized roles in extracellular matrix remodeling and intercellular communication.
- Fibroblast plasticity and phenotypic transitions are evident in physiological and pathological states.
Conclusions:
- Cardiac fibroblast heterogeneity is crucial for understanding and treating cardiac fibrosis.
- Targeting specific fibroblast subtypes and pathways offers potential for precision anti-fibrotic therapies.
- Personalized treatments for cardiac fibrosis can be developed by leveraging insights into fibroblast diversity.
Abstract:
Cardiac fibrosis is a key physiopathological process underlying the progression of virtually all heart diseases and related conditions, including myocardial infarction, pressure overload, and heart failure. Once regarded as a homogeneous and passive population, cardiac fibroblasts are now recognized as highly heterogeneous and dynamic, comprising distinct subpopulations with specialized molecular and functional identities. These subpopulations include resident fibroblasts, activated myofibroblasts, matrifibrocytes, inflammatory fibroblasts, and senescent fibroblasts, each contributing uniquely to extracellular matrix (ECM) remodeling, cytokine secretion, and intercellular crosstalk. Recent advances in single-cell transcriptomics, lineage tracing, and epigenetic profiling have revealed the plasticity and phenotypic transitions of cardiac fibroblasts in both physiological and pathological contexts. This review synthesizes current knowledge on fibroblast diversity in the adult heart, including their embryological origins and anatomical distribution, and explores how these insights could guide the development of precision anti-fibrotic therapies. We discuss a selection of emerging therapeutic strategies, including subtype-specific targeting (e.g., anti-POSTN, anti-IL1β), modulation of key signaling pathways (e.g., TGF-β, Wnt, Notch), with a brief mention also of novel approaches based on non-coding RNAs and epigenetic regulators. A better understanding of cardiac fibroblast heterogeneity holds significant potential for the design of more specific cell-type and context-tailored interventions, moving toward more effective and personalized treatments for cardiac fibrosis and its sequelae.
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