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Updated: Dec 7, 2025

Epigenetic Regulation of Cardiac Differentiation of Embryonic Stem Cells and Tissues
Published on: June 3, 2016
Disentangling the epigenetic landscape in cardiovascular patients: a path toward personalized medicine
Samuele Ambrosini1, Shafeeq A Mohammed1, Sarah Costantino1
1Center for Molecular Cardiology, University of Zürich, Zurich, Switzerland.
Insights
Epigenetic changes, influenced by environment, are crucial in cardiovascular disease. Integrating genetic and epigenetic data can personalize treatments for conditions like atherosclerosis and heart failure.
Area of Science:
- Cardiovascular Medicine
- Epigenetics
- Genomics
Background:
- Cardiovascular disease (CVD) remains a leading cause of death globally, with current therapies showing variable efficacy.
- Inter-individual genetic diversity influences treatment response, but only accounts for a limited part of cardiovascular risk.
- Epigenetic modifications, dynamic changes not altering DNA sequence, are increasingly recognized as key players in CVD pathophysiology.
Purpose of the Study:
- To review the role of epigenetic information in cardiovascular disease.
- To discuss the implications of epigenetics for cardiovascular precision medicine.
- To highlight the potential of integrating genetic and epigenetic data for personalized risk assessment and treatment.
Main Methods:
- Review of recent scientific literature on epigenetics and cardiovascular disease.
- Analysis of epigenetic mechanisms including DNA methylation, histone modifications, and non-coding RNAs.
- Discussion of environmental factors influencing the epigenome and their link to CVD phenotypes.
Main Results:
- Epigenetic changes cooperate to modulate gene expression and chromatin accessibility, influencing CVD risk trajectories.
- Environmental factors like pollution, smoking, and diet significantly alter the epigenome, contributing to CVD.
- Epigenetic modifications are critical in the pathophysiology of coronary atherosclerosis and heart failure.
Conclusions:
- Epigenetic information is vital for understanding individual cardiovascular risk.
- Integrating genetic and epigenetic data offers a powerful approach for personalized cardiovascular medicine.
- Customized diagnostic and therapeutic strategies can be developed by leveraging epigenetic insights for CVD.
Abstract:
Despite significant advances in our understanding of cardiovascular disease (CVD) we are still far from having developed breakthrough strategies to combat coronary atherosclerosis and heart failure, which account for most of CV deaths worldwide. Available cardiovascular therapies have failed to show to be equally effective in all patients, suggesting that inter-individual diversity is an important factor when it comes to conceive and deliver effective personalized treatments. Genome mapping has proved useful in identifying patients who could benefit more from specific drugs depending on genetic variances; however, our genetic make-up determines only a limited part of an individual's risk profile. Recent studies have demonstrated that epigenetic changes - defined as dynamic changes of DNA and histones which do not affect DNA sequence - are key players in the pathophysiology of cardiovascular disease and may participate to delineate cardiovascular risk trajectories over the lifetime. Epigenetic modifications include changes in DNA methylation, histone modifications and non-coding RNAs and these epigenetic signals have shown to cooperate in modulating chromatin accessibility to transcription factors and gene expression. Environmental factors such as air pollution, smoking, psychosocial context, and unhealthy diet regimens have shown to significantly modify the epigenome thus leading to altered transcriptional programs and CVD phenotypes. Therefore, the integration of genetic and epigenetic information might be invaluable to build individual maps of cardiovascular risk and hence, could be employed for the design of customized diagnostic and therapeutic strategies. In the present review, we discuss the growing importance of epigenetic information and its putative implications in cardiovascular precision medicine.
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