Modulation of intracellular calcium waves and triggered activities by mitochondrial ca flux in mouse cardiomyocytes

Z Zhao, R Gordan, H Wen, N Fefelova, WJ Zang… - PloS one, 2013 - journals.plos.org
Z Zhao, R Gordan, H Wen, N Fefelova, WJ Zang, LH Xie
PloS one, 2013journals.plos.org
Recent studies have suggested that mitochondria may play important roles in the Ca2+
homeostasis of cardiac myocytes. However, it is still unclear if mitochondrial Ca2+ flux can
regulate the generation of Ca2+ waves (CaWs) and triggered activities in cardiac myocytes.
In the present study, intracellular/cytosolic Ca2+ (Cai2+) was imaged in Fluo-4-AM loaded
mouse ventricular myocytes. Spontaneous sarcoplasmic reticulum (SR) Ca2+ release and
CaWs were induced in the presence of high (4 mM) external Ca2+ (Cao2+). The …
Recent studies have suggested that mitochondria may play important roles in the Ca2+ homeostasis of cardiac myocytes. However, it is still unclear if mitochondrial Ca2+ flux can regulate the generation of Ca2+ waves (CaWs) and triggered activities in cardiac myocytes. In the present study, intracellular/cytosolic Ca2+ (Cai2+) was imaged in Fluo-4-AM loaded mouse ventricular myocytes. Spontaneous sarcoplasmic reticulum (SR) Ca2+ release and CaWs were induced in the presence of high (4 mM) external Ca2+ (Cao2+). The protonophore carbonyl cyanide p-(trifluoromethoxy)phenylhydrazone (FCCP) reversibly raised basal Cai2+ levels even after depletion of SR Ca2+ in the absence of Cao2+ , suggesting Ca2+ release from mitochondria. FCCP at 0.01 - 0.1 µM partially depolarized the mitochondrial membrane potential (Δψm) and increased the frequency and amplitude of CaWs in a dose-dependent manner. Simultaneous recording of cell membrane potentials showed the augmentation of delayed afterdepolarization amplitudes and frequencies, and induction of triggered action potentials. The effect of FCCP on CaWs was mimicked by antimycin A (an electron transport chain inhibitor disrupting Δψm) or Ru360 (a mitochondrial Ca2+ uniporter inhibitor), but not by oligomycin (an ATP synthase inhibitor) or iodoacetic acid (a glycolytic inhibitor), excluding the contribution of intracellular ATP levels. The effects of FCCP on CaWs were counteracted by the mitochondrial permeability transition pore blocker cyclosporine A, or the mitochondrial Ca2+ uniporter activator kaempferol. Our results suggest that mitochondrial Ca2+ release and uptake exquisitely control the local Ca2+ level in the micro-domain near SR ryanodine receptors and play an important role in regulation of intracellular CaWs and arrhythmogenesis.
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