Related Experiment Video
Updated: Aug 21, 2026

Isolation and Characterization of Adult Cardiac Fibroblasts and Myofibroblasts
Published on: March 12, 2020
Cardiac fibroblast diversity in HFpEF: states, niches, interorgan drivers and targets
Muhammed Kiyar1,2,3, Alexander R Pinto3,4,5, John F O'Sullivan6,7,8
1Heart Failure Research Group, Baker Heart and Diabetes Institute, Melbourne, Victoria, Australia.
Insights
Cardiac fibrosis in heart failure with preserved ejection fraction (HFpEF) involves diverse fibroblast activation, not just myofibroblasts. Targeting these fibroblasts offers new antifibrotic strategies for HFpEF.
Area of Science:
- Cardiology
- Fibrosis Research
- Cell Biology
Background:
- Myocardial fibrosis is a critical adverse feature in heart failure with preserved ejection fraction (HFpEF).
- The cellular and molecular drivers of HFpEF fibrosis are not fully understood and lack targeted therapies.
- Cardiac fibroblasts are now recognized as key regulators of extracellular matrix remodeling, integrating various cellular signals.
Purpose of the Study:
- To review HFpEF-specific cardiac fibroblast alterations.
- To integrate cross-organ signaling networks influencing cardiac stroma in HFpEF.
- To evaluate fibroblast-directed therapies for HFpEF.
Main Methods:
- Single-cell and spatial transcriptomic analyses to resolve fibroblast states.
- Review of existing literature on cardiac fibrosis and HFpEF.
- Analysis of intercellular and interorgan communication impacting cardiac fibroblasts.
Main Results:
- HFpEF fibrosis arises from profibrotic gene programs in diverse fibroblast states, not solely myofibroblast expansion.
- Key fibroblast alterations include increased nitrosative stress, lipid handling dysregulation, and altered inflammatory signaling.
- Fibroblast changes are influenced by cardiac and systemic interorgan communication, integrating cardiometabolic stress.
Conclusions:
- Cardiac fibroblasts act as integrators of systemic cardiometabolic stress in HFpEF.
- Modulating fibroblast-specific targets in preclinical models attenuates fibrosis and improves cardiac function.
- Fibroblast-directed therapies represent a promising next-generation antifibrotic strategy for HFpEF.
Abstract:
Myocardial fibrosis is a key structural and prognostically adverse feature of heart failure with preserved ejection fraction (HFpEF), but its cellular and molecular drivers remain incompletely understood and are not specifically addressed by current therapies. Cardiac fibroblasts, previously considered to be largely structural, collagen-producing cells, are now recognized as being a heterogeneous family of trophic cells that integrate vascular, immune and metabolic cues to coordinate extracellular matrix remodelling. Single-cell and spatial transcriptomic analyses have resolved fibroblast states in the healthy and diseased myocardium, revealing that cardiac fibrosis in HFpEF (unlike in post-infarction scarring) results from the activation of profibrotic gene programmes across various fibroblast states, rather than the expansion of classic myofibroblasts. Hallmark programmes include increased nitrosative stress, dysregulated lipid handling and altered inflammatory signalling. These cardiac fibroblast-intrinsic alterations are further shaped by cardiac intercellular cues and by interorgan communication to the heart from the adipose tissue, bone marrow, gut, liver, lymphatic system and nervous system, positioning fibroblasts as myocardial integrators of systemic cardiometabolic stress. Emerging proof-of-concept studies in animal models of HFpEF demonstrate that selectively modulating fibroblast-specific targets can attenuate cardiac fibrosis, improve diastolic function and reduce susceptibility to arrhythmia. In this Review, we delineate HFpEF-specific fibroblast alterations, integrate cross-organ signalling networks that condition the cardiac stroma, and evaluate opportunities for fibroblast-directed therapies as next-generation antifibrotic strategies.
Related Concept Videos
Pathophysiology of Heart Failure
Introduction to Fibroblasts
Heart Failure II: Pathophysiology
Regulation of Angiogenesis and Blood Supply

