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Updated: Jul 1, 2025

Coronary Progenitor Cells and Soluble Biomarkers in Cardiovascular Prognosis after Coronary Angioplasty
Published on: January 28, 2020
An update on the cell-free DNA-derived methylome as a non-invasive biomarker for coronary artery disease
Manoswini Dash1, Bhawna Mahajan2, Ghulam Mehdi Dar3
1Central Molecular Laboratory, Govind Ballabh Pant Institute of Postgraduate Medical Education and Research (GIPMER), New Delhi, India; School of Medicine, Center for Aging, Tulane University, LA, United States.
Insights
Epigenetic modifications, like DNA methylation, play a key role in coronary artery disease (CAD) development. Studying cell-free DNA offers a promising, minimally invasive approach for CAD biomarkers.
Area of Science:
- Cardiovascular Epigenetics
- Molecular Cardiology
- Genomics
Background:
- Cardiovascular diseases (CVDs) are a leading cause of global mortality.
- Coronary artery disease (CAD), marked by atherosclerotic plaque, presents major health and economic challenges.
- Epigenetic factors, including DNA methylation, significantly influence CAD pathogenesis.
Purpose of the Study:
- To review the role of epigenetic regulation in CAD development and progression.
- To explore the potential of cell-free DNA as a minimally invasive biomarker for CAD.
- To discuss methodologies for studying methylome and hydroxy-methylome landscapes in CAD.
Main Methods:
- Review of current literature on epigenetics and CAD.
- Analysis of DNA methylation patterns in relation to CAD risk factors.
- Evaluation of cell-free DNA analysis for detecting tissue-specific epigenetic alterations.
Main Results:
- Abnormal DNA methylation is linked to altered gene expression in lipid metabolism, inflammation, and vascular function in CAD.
- Cell-free DNA released during myocardial infarction (MI) offers a potential source for epigenetic biomarker discovery.
- Various methodologies exist for methylome and hydroxy-methylome analysis, each with advantages and limitations.
Conclusions:
- Epigenetic alterations are integral to CAD pathogenesis, offering therapeutic and diagnostic targets.
- MI-derived cell-free DNA holds promise for developing minimally invasive CAD biomarkers.
- Further research is needed to overcome challenges in utilizing cell-free DNA for CAD diagnostics.
Abstract:
Cardiovascular diseases are the foremost contributor to global mortality, presenting a complex etiology and an expanding array of risk factors. Coronary artery disease characterized by atherosclerotic plaque build-up in the coronary arteries, imposes significant mortality and financial burdens, especially in low- and middle-income nations. The pathogenesis of coronary artery disease involves a multifaceted interplay of genetic, environmental, and epigenetic factors. Epigenetic regulation contributes to the dynamic control of gene expression without altering the underlying DNA sequence. The mounting evidence that highlights the pivotal role of epigenetic regulation in coronary artery disease development and progression, offering potential avenues for the development of novel diagnostic biomarkers and therapeutic targets. Abnormal DNA methylation patterns are linked to the modulation of gene expression involved in crucial processes like lipid metabolism, inflammation, and vascular function in the context of coronary artery disease. Cell-free DNA has become invaluable in tumor biology as a liquid biopsy, while its applications in coronary artery disease are limited, but intriguing. Atherosclerotic plaque rupture causes myocardial infarction, by depriving heart muscles of oxygen, releasing cell-free DNA from dead cardiac cells, and providing a minimally invasive source to explore tissue-specific epigenetic alterations. We discussed the methodologies for studying the global methylome and hydroxy-methylome landscape, their advantages, and limitations. It explores methylome alterations in coronary artery disease, considering risk factors and their relevance in coronary artery disease genesis. The review also details the implications of MI-derived cell-free DNA for developing minimally invasive biomarkers and associated challenges.
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