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Updated: May 18, 2026

Isolation, Transfection, and Long-Term Culture of Adult Mouse and Rat Cardiomyocytes
Published on: October 10, 2020
Small and long non-coding RNAs in cardiac homeostasis and regeneration
Samir Ounzain1, Stefania Crippa, Thierry Pedrazzini
1Department of Medicine, University of Lausanne Medical School, Lausanne, Switzerland.
Insights
Regulatory non-coding RNAs, including microRNAs and long non-coding RNAs, are key to heart regeneration. Manipulating these molecules may unlock the heart's potential for repair and improve cardiac repair strategies.
Area of Science:
- Cardiovascular biology
- Molecular genetics
- Regenerative medicine
Background:
- Cardiovascular diseases, especially heart failure, are significant causes of death.
- Cardiac regeneration aims to replace damaged cardiomyocytes using cellular therapies.
- Gene regulatory networks control cell fate transitions crucial for cardiomyocyte replenishment.
Purpose of the Study:
- To review the biological roles of regulatory non-coding RNAs in cardiac homeostasis and regeneration.
- To highlight the potential of microRNAs and long non-coding RNAs in cardiac repair.
- To explore how non-coding RNA networks can be manipulated for therapeutic benefit.
Main Methods:
- Review of current literature on non-coding RNAs in cardiac biology.
- Analysis of the roles of microRNAs and long non-coding RNAs in gene regulation.
- Discussion of potential therapeutic strategies targeting non-coding RNA networks.
Main Results:
- Non-coding RNAs are central orchestrators of regenerative gene regulatory networks.
- MicroRNAs and long non-coding RNAs play critical roles in maintaining heart function.
- These regulatory RNAs are implicated in the processes of cardiac regeneration.
Conclusions:
- Non-coding RNA-mediated networks offer promising targets for enhancing cardiac regeneration.
- Understanding these networks can lead to novel therapeutic avenues for heart repair.
- Targeting non-coding RNAs may unlock the mammalian heart's regenerative potential.
Abstract:
Cardiovascular diseases and in particular heart failure are major causes of morbidity and mortality in the Western world. Recently, the notion of promoting cardiac regeneration as a means to replace lost cardiomyocytes in the damaged heart has engendered considerable research interest. These studies envisage the utilization of both endogenous and exogenous cellular populations, which undergo highly specialized cell fate transitions to promote cardiomyocyte replenishment. Such transitions are under the control of regenerative gene regulatory networks, which are enacted by the integrated execution of specific transcriptional programs. In this context, it is emerging that the non-coding portion of the genome is dynamically transcribed generating thousands of regulatory small and long non-coding RNAs, which are central orchestrators of these networks. In this review, we discuss more particularly the biological roles of two classes of regulatory non-coding RNAs, i.e. microRNAs and long non-coding RNAs, with a particular emphasis on their known and putative roles in cardiac homeostasis and regeneration. Indeed, manipulating non-coding RNA-mediated regulatory networks could provide keys to unlock the dormant potential of the mammalian heart to regenerate. This should ultimately improve the effectiveness of current regenerative strategies and discover new avenues for repair. This article is part of a Special Issue entitled: Cardiomyocyte Biology: Cardiac Pathways of Differentiation, Metabolism and Contraction.
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