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.

Cells
|July 13, 2026
PubMed

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.

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