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Updated: Jun 8, 2026

Voltage-Dependent Potassium Current Recording on H9c2 Cardiomyocytes via the Whole-Cell Patch-Clamp Technique
Published on: November 11, 2022
Na+ currents are required for efficient excitation-contraction coupling in rabbit ventricular myocytes: a possible
Natalia S Torres1, Robert Larbig, Alex Rock
1Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, UT 84112-5000, USA.
Abstract:
Ca2+ transients were activated in rabbit ventricular cells by a sequence of action potential shaped voltage clamps. After activating a series of control transients, Na+ currents (INa) were inactivated with a ramp from -80 to -40 mV (1.5 s) prior to the action potential clamp. The transients were detected with the calcium indicator Fluo-4 and an epifluorescence system. With zero Na+ in the pipette INa inactivation produced a decline in the SR Ca2+ release flux (measured as the maximum rate of rise of the transient) of 27 ± 4% (n = 9, P < 0.001) and a peak amplitude reduction of 10 ± 3% (n = 9, P < 0.05). With 5 mm Na+ in the pipette the reduction in release flux was greater (34 ± 4%, n = 4, P < 0.05). The ramp effectively inactivates INa without changing ICa, and there was no significant change in the transmembrane Ca2+ flux after the inactivation of INa. We next evoked action potentials under current clamp. TTX at 100 nm, which selectively blocks neuronal isoforms of Na+ channels, produced a decline in SR Ca2+ release flux of 35 ± 3% (n = 6, P < 0.001) and transient amplitude of 12 ± 2% (n = 6, P < 0.05). This effect was similar to the effect of INa inactivation on release flux. We conclude that a TTX-sensitive INa is essential for efficient triggering of SR Ca2+ release. We propose that neuronal Na+ channels residing within couplons activate sufficient reverse Na+-Ca2+ exchanger (NCX) to prime the junctional cleft with Ca2+. The results can be explained if non-linearities in excitation-contraction coupling mechanisms modify the coupling fidelity of ICa, which is known to be low at positive potentials.
Insights
Sodium currents (INa) are crucial for triggering calcium release in heart cells. Blocking these currents reduces calcium release flux and transient amplitude, highlighting their essential role in cardiac function.
Area of Science:
- Cardiovascular Physiology
- Cellular Electrophysiology
Background:
- Excitation-contraction coupling in cardiomyocytes relies on calcium (Ca2+) transients.
- Sodium currents (INa) and their role in modulating Ca2+ handling are not fully understood.
Purpose of the Study:
- To investigate the role of sodium currents (INa) in triggering sarcoplasmic reticulum (SR) Ca2+ release in rabbit ventricular cells.
- To determine if TTX-sensitive Na+ channels influence Ca2+ transients.
Main Methods:
- Action potential voltage clamps were used to activate Ca2+ transients in rabbit ventricular cells.
- Sodium currents (INa) were inactivated using a voltage ramp, and subsequent Ca2+ transients were measured.
- Tetrodotoxin (TTX) was used to selectively block neuronal Na+ channels.
Main Results:
- Inactivation of INa led to a significant decline in SR Ca2+ release flux (27%) and peak transient amplitude (10%).
- A greater reduction in release flux was observed with 5 mM Na+ in the pipette during INa inactivation.
- TTX application caused a similar reduction in SR Ca2+ release flux (35%) and transient amplitude (12%).
Conclusions:
- A TTX-sensitive INa is essential for the efficient triggering of SR Ca2+ release.
- Neuronal Na+ channels within couplons may activate reverse Na+-Ca2+ exchanger (NCX), priming the junctional cleft with Ca2+.
- Non-linearities in excitation-contraction coupling may affect the fidelity of Ca2+ current (ICa) at positive potentials.
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