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Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Cardiomyocytes generating spontaneous Ca2+-transients as tools for precise estimation of sarcoplasmic reticulum Ca2+
Alexander V Maltsev1, Yury M Kokoz2
1Institute of Theoretical and Experimental Biophysics, Russian Academy of Sciences, Moscow Region, Pushchino, Institutskaya, 3, 142290, Russia; Institute of Higher Nervous Activity and Neurophysiology, Russian Academy of Sciences, Moscow, Butlerova 5А, 117485, Russia.
Abstract:
Spontaneous Ca2+-transient (wave) generation in isolated cardiomyocytes is well established phenomenon which poses a lot of questions about myocardial excitability. Current studies of spontaneous Ca2+-activity in cardiac cells mainly relate to the kinetic characteristics, classification and simulation of Ca2+-events through ryanodine receptor (RyR) activity modeling. Here, for the first time we pay attention to the Ca2+-transients having stationary kinetics for correct estimation of the sarcoplasmic reticulum Ca2+ transport. In cardiomyocytes generating such type of Ca2+-transients, the averaged intracellular calcium ([Ca2+]in) fluorescence practically does not change in time. Stationary Ca2+-transients are observed in different animal models (Wistar, SHR, ground squirrels) revealing a common cardiomyocyte phenomenon. They somewhat depend on external Ca2+ ([Ca2+]ex) because the [Ca2+]ex lowering to 1 μM in the presence of EGTA disrupts Ca2+-wave propagation. At the same time, spontaneous Ca2+-transients do not associated with the forward or reverse mode of Na+/Ca2+ exchanger (NCX), but partially modulated by the L-type Ca2+-channels. Among the sarcoplasmic reticulum targets, RyR and SERCA are crucial for Ca2+-wave generation and sustained self-oscillation activity. Analysis of the spontaneous wave kinetics reveals that both slopes of the rising wave front and the wave front decline are gradually changed during propagation, which well correlates with the RyR and SERCA activity, respectively. On the contrary, in the electrical field-stimulated myocytes, both slope factors are sharply changed corresponding to 'all-or-nothing' rule, which is fundamental principle for action potential in cardiomyocytes. Furthermore, stimulation of single cardiomyocyte using local electrode appears the deterioration in the [Ca2+]in utilization from the cytosol, which limits the time of observation during the protocol. Obtained data suggest that stationary spontaneous Ca2+-transients occurring without actual myocellular excitation represent useful and precise tools for estimation of the sarcoplasmic reticulum Ca2+-transport.
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