Related Experiment Video
Updated: Nov 3, 2025

Epigenetic Regulation of Cardiac Differentiation of Embryonic Stem Cells and Tissues
Published on: June 3, 2016
The role of demethylases in cardiac development and disease
Kathryn Davis1, Presley Azarcon2, Samuel Hickenlooper1
1Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, UT, United States of America.
Insights
Demethylases regulate gene expression in the heart. This review analyzes their roles in heart development and disease, identifying key targets for potential new heart failure treatments.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Medicine
Background:
- Heart failure involves cardiac remodeling driven by altered gene expression.
- Epigenetic modifications, like histone methylation, regulate these gene expression changes.
- Demethylases, enzymes that remove methyl marks, are crucial for development and disease but their cardiac roles are unclear.
Purpose of the Study:
- To review the expression and function of mammalian demethylases in the fetal and adult heart.
- To identify demethylases with altered expression in failing hearts.
- To highlight potential therapeutic targets for heart disease.
Main Methods:
- Analysis of publicly available RNA-sequencing and proteomic datasets.
- Evaluation of demethylase expression in normal fetal, adult, and failing human hearts.
- Literature review of demethylase function in cardiac contexts.
Main Results:
- 14 demethylases expressed in the fetal heart; 5 in the adult heart.
- 8 demethylases showed differential expression in diseased human hearts.
- Phenotypic data available for 13 demethylases interrogated in the heart.
Conclusions:
- Demethylases play significant roles in cardiac development and pathophysiology.
- Specific demethylases are dysregulated in heart failure, representing potential therapeutic targets.
- Pharmacological inhibition of certain demethylases may offer new treatment strategies for heart disease.
Abstract:
Heart failure is a worldwide health condition that currently has limited noninvasive treatments. Heart disease includes both structural and molecular remodeling of the heart which is driven by alterations in gene expression in the cardiomyocyte. Therefore, understanding the regulatory mechanisms which instigate these changes in gene expression and constitute the foundation for pathological remodeling may be beneficial for developing new treatments for heart disease. These gene expression changes are largely preceded by epigenetic alterations to chromatin, including the post-translational modification of histones such as methylation, which alters chromatin to be more or less accessible for transcription factors or regulatory proteins to bind and modify gene expression. Methylation was once thought to be a permanent mark placed on histone or non-histone targets by methyltransferases, but is now understood to be a reversible process after the discovery of the first demethylase, KDM1A/LSD1. Since this time, it has been shown that demethylases play key roles in embryonic development, in maintaining cellular homeostasis and disease progression. However, the role of demethylases in the fetal and adult heart remains largely unknown. In this review, we have compiled data on the 33 mammalian demethylases that have been identified to date and evaluate their expression in the embryonic and adult heart as well as changes in expression in the failing myocardium using publicly available RNA-sequencing and proteomic datasets. Our analysis detected expression of 14 demethylases in the normal fetal heart, and 5 demethylases in the normal adult heart. Moreover, 8 demethylases displayed differential expression in the diseased human heart compared to healthy hearts. We then examined the literature regarding these demethylases and provide phenotypic information of 13 demethylases that have been functionally interrogated in some way in the heart. Lastly, we describe the 6 arginine and lysine residues on histones which have been shown to be methylated but have no corresponding demethylase identified which removes these methyl marks. Overall, this review highlights our current knowledge on the role of demethylases, their importance in cardiac development and pathophysiology and provides evidence for the use of pharmacological inhibitors to combat disease.
Related Concept Videos
Cardiomyopathy II: Dilated Cardiomyopathy
Cardiomyopathy III: Hypertrophic Cardiomyopathy

