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.

The Journal of Physiology
|September 15, 2010
PubMed

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.

Related Concept Videos

Excitation-Contraction Coupling in Skeletal Muscles01:20

Excitation-Contraction Coupling in Skeletal Muscles

Excitation-contraction coupling is a series of events that occur between generating an action potential and initiating a muscle contraction. It occurs at the triad, a structure found in skeletal muscle fibers that comprise a T-tubule and terminal cisternae of the sarcoplasmic reticulum on each side. These triads are visible in longitudinally sectioned muscle fibers. They are typically located at the A-I junction — the junction between the A and I bands of the sarcomere.
When an action potential...
The Role of Ion Channels in Neuronal Computation01:19

The Role of Ion Channels in Neuronal Computation

A postsynaptic neuron usually receives numerous impulses from several other presynaptic neurons. The axon hillock of the postsynaptic neuron integrates all these signals and determines the likelihood of firing an action potential.
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Voltage-gated Ion Channels01:26

Voltage-gated Ion Channels

Voltage-gated ion channels are transmembrane proteins that open and close in response to changes in the membrane potential. They are present on the membranes of all electrically excitable cells such as neurons, heart, and muscle cells.
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Electrochemical Gradient and Channel Proteins: An Overview01:21

Electrochemical Gradient and Channel Proteins: An Overview

An electrochemical gradient is a fundamental concept in biology and chemistry. It regulates the movement of ions across cell membranes. This movement is influenced by two factors:
The electrical gradient: The electrical gradient across cell membranes refers to the difference in electric charge between the inside and outside of a cell.  This difference drives the movement of ions towards or away from the cells. For instance, if the inside of the cell is more negatively charged relative to the...
Action Potential01:14

Action Potential

Neurons communicate by firing action potentials—the electrochemical signal that is propagated along the axon. The signal results in the release of neurotransmitters at axon terminals, thereby transmitting information to the nervous system. An action potential is a specific "all-or-none" change in membrane potential that results in a rapid spike in voltage.
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...
Action Potential01:14

Action Potential

Neurons communicate by firing action potentials—the electrochemical signal that is propagated along the axon. The signal results in the release of neurotransmitters at axon terminals, thereby transmitting information to the nervous system. An action potential is a specific "all-or-none" change in membrane potential that results in a rapid spike in voltage.
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...