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Published on: February 22, 2018
Genetics and epigenetics of arrhythmia and heart failure
Burcu Duygu1, Ella M Poels, Paula A da Costa Martins
1Department of Cardiology, CARIM School for Cardiovascular Diseases, Maastricht University Maastricht, Netherlands.
Insights
Heart failure (HF) involves gene expression changes and epigenetic modifications. Understanding these molecular mechanisms is key to developing new treatments for HF and cardiac arrhythmias.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Heart failure (HF) is a critical stage of cardiac diseases like myocardial infarction and hypertension.
- HF involves significant alterations in cardiac gene expression, including downregulation of key contractile protein genes and reactivation of fetal genes.
- Cardiac arrhythmias stem from disrupted heart conduction, influenced by factors like ischemia, inflammation, aging, and genetics.
Purpose of the Study:
- To review genetic mutations linked to heart failure onset and progression.
- To introduce epigenetic mechanisms, including DNA methylation and histone modifications, in the context of cardiac disease.
- To explore the interplay between epigenetics, arrhythmogenesis, and heart failure.
Main Methods:
- Literature review of genetic and epigenetic studies in heart failure.
- Analysis of molecular and cellular mechanisms underlying HF development.
- Examination of the relationship between gene transcription, epigenetics, and cardiac function.
Main Results:
- Identified specific genetic mutations contributing to HF.
- Highlighted DNA methylation patterns in HF patients.
- Introduced epigenomic concepts and their role in cardiac pathology.
- Demonstrated the link between epigenetic modifications, arrhythmias, and HF.
Conclusions:
- Genetic and epigenetic factors play crucial roles in the development and progression of heart failure.
- Understanding these molecular pathways is essential for advancing HF treatment strategies.
- Epigenetic modifications are implicated in both HF and cardiac arrhythmias, suggesting potential therapeutic targets.
Abstract:
Heart failure (HF) is the end stage of several pathological cardiac conditions including myocardial infarction, cardiac hypertrophy and hypertension. Various molecular and cellular mechanisms are involved in the development of HF. At the molecular level, the onset of HF is associated with reprogramming of gene expression, including downregulation of the alpha-myosin heavy chain (α-MHC) gene and sarcoplasmic reticulum Ca (2+) ATPase genes and reactivation of specific fetal cardiac genes such as atrial natriuretic factor and brain natriuretic peptide. These deviations in gene expression result in structural and electrophysiological changes, which eventually progress to HF. Cardiac arrhythmia is caused by altered conduction properties of the heart, which may arise in response to ischemia, inflammation, fibrosis, aging or from genetic factors. Because changes in the gene transcription program may have crucial consequences as deteriorated cardiac function, understanding the molecular mechanisms involved in the process has become a priority in the field. In this context, various studies besides having identified different DNA methylation patterns in HF patients, have also focused on specific disease processes and their underlying mechanisms, also introducing new concepts such as epigenomics. This review highlights specific genetic mutations associated with the onset and progression of HF, also providing an introduction to epigenetic mechanisms such as histone modifications, DNA methylation and RNA-based modification, and highlights the relation between epigenetics, arrhythmogenesis and HF.
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