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Updated: Dec 13, 2025

Epigenetic Regulation of Cardiac Differentiation of Embryonic Stem Cells and Tissues
Published on: June 3, 2016
Epigenetic Regulation of Endothelial Cell Function by Nucleic Acid Methylation in Cardiac Homeostasis and Disease
Adam Russell-Hallinan1, Chris J Watson1, Denis O'Dwyer1
1Wellcome-Wolfson Institute for Experimental Medicine, School of Medicine, Dentistry and Biomedical Sciences, Queen's University Belfast, Belfast, UK.
Insights
Endothelial cells (ECs) orchestrate heart failure (HF) progression through DNA and RNA methylation changes. Understanding these epigenetic mechanisms in ECs is key for developing targeted therapies for cardiac remodelling.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Medicine
Background:
- Pathological cardiac remodelling, including inflammation, fibrosis, and hypertrophy, drives heart failure (HF).
- Endothelial cells (ECs), crucial for cardiac homeostasis, are increasingly implicated in orchestrating HF pathogenesis.
- Epigenetic modifications, specifically DNA and RNA methylation, regulate gene expression and are altered in HF.
Purpose of the Study:
- To review the role of DNA and RNA methylation in the failing heart.
- To emphasize the influence of epigenetic mechanisms on endothelial cell (EC) function in heart failure.
- To highlight the potential of EC-targeted epigenetic therapies for heart failure.
Main Methods:
- Literature review focusing on nucleic acid methylation in heart failure.
- Analysis of current understanding of DNA and RNA methylation alterations in cardiac endothelial cells.
- Synthesis of evidence linking epigenetic changes in ECs to pathological cardiac remodelling.
Main Results:
- Altered DNA and RNA methylation patterns are observed at global and gene-specific levels in heart failure.
- Epigenetic modifications critically regulate endothelial cell (EC) function in response to cardiac stress.
- Dysfunctional ECs, influenced by epigenetic changes, play a significant role in heart failure development.
Conclusions:
- Endothelial cell (EC) epigenetic dysregulation, particularly nucleic acid methylation, is central to heart failure pathogenesis.
- Targeting EC function through epigenetic mechanisms offers a promising therapeutic strategy for heart failure.
- Further research into EC-specific epigenetic alterations can advance the development of novel heart failure treatments.
Abstract:
Pathological remodelling of the myocardium, including inflammation, fibrosis and hypertrophy, in response to acute or chronic injury is central in the development and progression of heart failure (HF). While both resident and infiltrating cardiac cells are implicated in these pathophysiological processes, recent evidence has suggested that endothelial cells (ECs) may be the principal cell type responsible for orchestrating pathological changes in the failing heart. Epigenetic modification of nucleic acids, including DNA, and more recently RNA, by methylation is essential for physiological development due to their critical regulation of cellular gene expression. As accumulating evidence has highlighted altered patterns of DNA and RNA methylation in HF at both the global and individual gene levels, much effort has been directed towards defining the precise role of such cell-specific epigenetic changes in the context of HF. Considering the increasingly apparent crucial role that ECs play in cardiac homeostasis and disease, this article will specifically focus on nucleic acid methylation (both DNA and RNA) in the failing heart, emphasising the key influence of these epigenetic mechanisms in governing EC function. This review summarises current understanding of DNA and RNA methylation alterations in HF, along with their specific role in regulating EC function in response to stress (e.g. hyperglycaemia, hypoxia). Improved appreciation of this important research area will aid in further implicating dysfunctional ECs in HF pathogenesis, whilst informing development of EC-targeted strategies and advancing potential translation of epigenetic-based therapies for specific targeting of pathological cardiac remodelling in HF.
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