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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.
Abstract:
Mitochondria are vital organelles inside the cell and contribute to intracellular calcium (Ca2+) dynamics directly and indirectly via calcium exchange, ATP generation, and production of reactive oxygen species (ROS). Arrhythmogenic Ca2+ alternans in cardiac myocytes has been observed in experiments under abnormal mitochondrial depolarization. However, complex signaling pathways and Ca2+ cycling between mitochondria and cytosol make it difficult in experiments to reveal the underlying mechanisms of Ca2+ alternans under abnormal mitochondrial depolarization. In this study, we use a newly developed spatiotemporal ventricular myocyte computer model that integrates mitochondrial Ca2+ cycling and complex signaling pathways to investigate the mechanisms of Ca2+ alternans during mitochondrial depolarization. We find that elevation of ROS in response to mitochondrial depolarization plays a critical role in promoting Ca2+ alternans. Further examination reveals that the redox effect of ROS on ryanodine receptors and sarco/endoplasmic reticulum Ca2+-ATPase synergistically promote alternans. Upregulation of mitochondrial Ca2+ uniporter promotes Ca2+ alternans via Ca2+-dependent mitochondrial permeability transition pore opening. Due to their relatively slow kinetics, oxidized Ca2+/calmodulin-dependent protein kinase II activation and ATP do not play significant roles acutely in the genesis of Ca2+ alternans after mitochondrial depolarization, but their roles can be significant in the long term, mainly through their effects on sarco/endoplasmic reticulum Ca2+-ATPase activity. In conclusion, mitochondrial depolarization promotes Ca2+ alternans acutely via the redox effect of ROS and chronically by ATP reduction. It suppresses Ca2+ alternans chronically through oxidized Ca2+/calmodulin-dependent protein kinase II activation.
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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