Mitochondrial depolarization promotes calcium alternans: Mechanistic insights from a ventricular myocyte model

Vikas Pandey1, Lai-Hua Xie2, Zhilin Qu1,3

  • 1Department of Medicine, David Geffen School of Medicine, University of California, Los Angeles, California, United States of America.

Insights

Mitochondrial depolarization causes cardiac alternans via reactive oxygen species (ROS) and ATP reduction. Chronic effects involve Ca2+/calmodulin-dependent protein kinase II, impacting cardiac function.

Area of Science:

  • Cardiovascular Physiology
  • Mitochondrial Biology
  • Computational Biology

Background:

  • Mitochondria influence intracellular calcium (Ca2+) dynamics and cellular energy (ATP) production.
  • Mitochondrial depolarization is linked to arrhythmogenic Ca2+ alternans in cardiac cells.
  • Complex mitochondrial-cytosolic Ca2+ interactions obscure alternans mechanisms.

Purpose of the Study:

  • Investigate Ca2+ alternans mechanisms during mitochondrial depolarization.
  • Utilize a novel ventricular myocyte computer model integrating mitochondrial Ca2+ cycling.
  • Elucidate the roles of reactive oxygen species (ROS) and ATP in alternans.

Main Methods:

  • Developed a spatiotemporal ventricular myocyte computer model.
  • Integrated mitochondrial Ca2+ cycling and complex signaling pathways.
  • Simulated mitochondrial depolarization and analyzed Ca2+ dynamics.

Main Results:

  • Elevated ROS critically promotes Ca2+ alternans post-depolarization.
  • ROS redox effects on ryanodine receptors and SERCA synergistically enhance alternans.
  • Upregulation of mitochondrial Ca2+ uniporter promotes alternans via mPTP opening.

Conclusions:

  • Mitochondrial depolarization acutely promotes Ca2+ alternans via ROS redox effects.
  • Chronically, ATP reduction contributes to alternans, while CaMKII activation suppresses it.
  • The study clarifies mitochondrial roles in cardiac alternans.

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