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Published on: February 13, 2019
Cardiac Metabolism in Healthy, Senescent and Diseased States
Uma Bapat1, Shahem Albean2, Lei Hao2
1Department of Biological Sciences, New Jersey Institute of Technology, Newark, NJ 07102, USA.
Insights
Cardiovascular disease involves metabolic changes impacting heart function. Understanding these metabolic shifts in human-induced pluripotent stem-cell-derived cardiomyocytes (hiPSC-CMs) is key for disease modeling and heart repair.
Area of Science:
- Cardiovascular biology
- Metabolic research
- Stem cell science
Background:
- Cardiovascular disease (CVD) is a leading global cause of death.
- Cardiac health relies on flexible energy metabolism; disease impairs this flexibility.
- Human-induced pluripotent stem-cell-derived cardiomyocytes (hiPSC-CMs) are vital for studying cardiac disease but lack metabolic maturity.
Purpose of the Study:
- To review dynamic shifts in cardiac metabolic states throughout life and in disease.
- To delineate metabolic signatures of healthy versus diseased hearts.
- To explore strategies for maturing hiPSC-CMs and enhancing their metabolic profiles.
Main Methods:
- Comprehensive review of cardiac metabolic reprogramming from fetal development to senescence.
- Analysis of metabolic crosstalk between cardiomyocytes (CMs) and non-cardiomyocytes (non-CMs).
- Summary of methods to improve hiPSC-CM metabolic maturity.
Main Results:
- Cardiac metabolism undergoes dynamic shifts influenced by substrate availability, post-translational modifications, and transcriptional networks.
- Metabolic reprogramming is central to cardiac dysfunction and impaired CM maturation in disease.
- Intercellular metabolic communication between CMs and non-CMs is crucial for cardiac function.
Conclusions:
- Understanding cardiac metabolic shifts is essential for bridging developmental biology, stem cell biology, and regenerative cardiology.
- Metabolic insights are critical for improving hiPSC-CMs for disease modeling, drug discovery, and cardiac repair.
- Energy metabolism fundamentally governs cellular identity, maturation, and regenerative potential in the heart.
Abstract:
Cardiovascular disease (CVD) is the leading cause of mortality worldwide. The healthy adult heart depends on flexible energy use, but a diseased or injured heart is associated with a loss of flexibility and metabolic remodeling. Since metabolism plays a central role in cardiac health and disease, there is a growing need to understand how metabolic reprogramming contributes to cardiac dysfunction and impaired CM maturation. Human-induced pluripotent stem-cell-derived cardiomyocytes (hiPSC-CMs) are widely used as a platform to study human cardiac development and disease mechanisms. However, current models are limited by metabolic and structural immaturity. This review provides an overview of the dynamic shifts in cardiac metabolic states from fetal development to senescence, while delineating the metabolic signatures of healthy versus disease states. These metabolic switches are orchestrated by a complex interplay of upstream signals driven by variations in substrate availability, post-translational modifications and key transcriptional regulatory networks, which ultimately regulate downstream cardiac remodeling and pathological cascades. As cardiac metabolic function is affected by a coordinated multicellular network, this review also includes the metabolic crosstalk between CMs and non-CMs, including fibroblasts, endothelial cells and immune cells. In addition, various strategies to further mature hiPSC-CMs are summarized to enhance their metabolic profiles. Investigating cardiac metabolic shifts bridges developmental biology, stem cell biology, and regenerative cardiology by revealing how energy metabolism governs cellular identity, maturation, and regenerative potential. These insights are essential for improving stem-cell-derived CMs for disease modeling, drug discovery, and heart repair.
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