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Updated: Sep 18, 2025

Epigenetic Regulation of Cardiac Differentiation of Embryonic Stem Cells and Tissues
Published on: June 3, 2016
Molecular Interplay of Gene Network Dynamics, Epigenetic Regulation, and Therapeutic Mapping in Cardiovascular
Md Rashedunnabi Akanda1, Md Shiblee Sadik Sabuj2, S M Abdus Salam3
1Department of Pharmacology and Toxicology, Sylhet Agricultural University, Sylhet, 3100, Bangladesh. akandamr.dph@sau.ac.bd.
Insights
Epigenetic mechanisms like DNA methylation and noncoding RNAs significantly impact cardiovascular diseases (CVDs). Understanding these epigenetic regulators offers new therapeutic targets for personalized CVD treatment.
Area of Science:
- Molecular Biology
- Genetics
- Cardiovascular Medicine
Background:
- Cardiovascular diseases (CVDs) are the leading global cause of death.
- Traditional risk factors do not fully explain individual CVD susceptibility.
- Genomics and epigenomics reveal crucial molecular mechanisms in cardiovascular function.
Purpose of the Study:
- To systematically review the roles of epigenetic modifications in cardiovascular gene expression and pathogenesis.
- To explore the therapeutic potential of targeting epigenetic pathways in CVDs.
Main Methods:
- Systematic literature review of the past decade from PubMed and Google Scholar.
- Compilation of data on DNA methylation, histone modifications, chromatin remodeling, and noncoding RNAs.
- Analysis of their impact on cardiovascular gene expression and disease.
Main Results:
- DNA methylation affects gene expression in atherosclerosis, myocardial infarction, and hypertension.
- Histone modifications and chromatin remodeling regulate cardiac hypertrophy, fibrosis, and regeneration.
- Noncoding RNAs are critical for angiogenesis, inflammation, and myocardial remodeling.
- Epigenetic drugs and gene-editing technologies show therapeutic promise for CVDs.
- Integrative multi-omics approaches advance personalized CVD treatment strategies.
Conclusions:
- Understanding epigenetic alterations in gene networks is key to combating CVDs.
- Targeted epigenetic therapies offer precision and efficacy in cardiovascular interventions.
Purpose:
Cardiovascular diseases (CVDs) continue to be the leading cause of death globally, driven by a complex interplay of genetic, epigenetic, and environmental factors. Traditional risk factors alone fail to explain the individual variability in disease susceptibility and progression. Recent advances in genomics and epigenomics have revealed key molecular mechanisms that regulate cardiovascular function, highlighting the importance of gene network dynamics and epigenetic regulation.
Methods:
This review systematically analyzes peer-reviewed literature from the past decade sourced from electronic databases including PubMed and Google Scholar. It compiles the multifaceted roles of DNA methylation, histone modifications, chromatin remodeling, and noncoding RNAs in regulating cardiovascular gene expression, cellular phenotypes, and disease pathogenesis.
Results:
DNA methylation influences the transcriptional activity of gene expression associated with atherosclerosis, myocardial infarction, and hypertension, while histone modifications and ATP-dependent chromatin remodeling regulate cardiac hypertrophy, fibrosis, and regeneration. Noncoding RNAs further act as critical regulators of angiogenesis, inflammation, and myocardial remodeling. Therapeutically, these findings have facilitated the development of epigenetic drugs and gene-editing technologies targeting specific molecular pathways involved in CVD progression. Emerging technologies such as CRISPR/Cas9, RNA-based therapies, and small-molecule inhibitors of epigenetic enzymes hold potential for correct abnormal gene expression patterns. Moreover, integrative multi-omics and systems biology approaches are advancing personalized treatment strategies, improving the accuracy and effectiveness of cardiovascular interventions.
Conclusion:
Collectively, unraveling the complex molecular interactions among gene networks, epigenetic alterations, and targeted therapeutic mapping aims to combat CVD with better precision and efficacy.
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