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January 1, 1990AJP Heart and Circulatory Physiology54 citations

Negative shift of cardiac Na+ channel kinetics in cell-attached patch recordings

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TKTakashi KimitsukiTMTamotsu MitsuiyeANAkinori Noma

Key Points

  • This research investigates how the kinetics of Na+ channels change in response to various conditions in isolated cardiac cells.
  • Single-channel currents were recorded using the patch-clamp technique in guinea pig ventricular cells.
  • The inactivation-voltage relation and voltage dependency of channel activation were analyzed after varying calcium concentrations.
  • Observations were made regarding changes in current amplitude and inactivation time course post seal formation.
  • The peak current amplitude increased temporarily before decreasing within minutes after the seal formation.
  • The potential for half-maximal inactivation shifted negatively by 20-31 mV, indicating altered channel behavior.
  • Increasing extracellular calcium to 10 mM significantly reduced the shift in the inactivation curve.

Abstract

Na+ channel kinetics were studied by recording single-channel currents in the cell-attached patch configuration of the patch-clamp technique in single ventricular cells isolated from guinea pig hearts. The inactivation time course of ensemble currents was accelerated, and the peak amplitude increased temporarily and then decreased within a few minutes after the gigaohm seal formation. After reaching a new steady state, the inactivation-voltage relation was found to have shifted to more negative potentials. The potential of half-maximal inactivation was more negative by 20-31 mV from the resting potential or between -96 and -112 mV. The voltage dependency of the channel activation also shifted. Although the cell membrane was depolarized using the whole cell patch-clamp electrode and single-channel currents were recorded with an independent cell-attached electrode, the shift of the inactivation curve was also evident. Complete removal of Ca2+ using 5 mM ethylene glycol-bis(beta-aminoethyl ether)-N,N,N',N'-tetraacetic acid in the pipette solution failed to prevent the shift. Increasing Ca2+ to 10 mM, however, reduced magnitude of the shift significantly. Involvement of an increased membrane fluidity and surface potential of the glass pipette to the shift is discussed.

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Cite This Study

Kimitsuki et al. (1990) studied this question.

synapsesocial.com/papers/6a731321488ab512b3e0aaf2https://doi.org/10.1152/ajpheart.1990.258.1.h247
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Voltage‐dependent inactivation of inward‐rectifying single‐channel currents in the guinea‐pig heart cell membrane.1984 · 266 citations
  2. 2Inactivation of the cardiac Na+ channels in guinea‐pig ventricular cells through the open state.1995 · 9 citations
  3. 3Na channel kinetics remain stable during perforated-patch recordings1992 · 80 citations
  4. 4Inactivation of Cardiac Na+ Channel Simply through Open States as Revealed by Single-Channel Analysis in Guinea Pig Ventricular Myocytes.2002 · 10 citations
  5. 5Sodium channels in cultured cardiac cells.1983 · 173 citations