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March 1, 1992The Journal of Physiology168 citationsOpen Access

Role of an inwardly rectifying potassium current in rabbit ventricular action potential.

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YSY. ShimoniRCRobert B. ClarkWGWayne R. Giles

Key Result

The inwardly rectifying potassium current IK1 is small during the plateau but rapidly increases during repolarization, acting as the principal current responsible for final repolarization.

Key Points

  • The research aims to define the role of the inwardly rectifying potassium current (IK1) during the plateau and repolarization phases of the action potential in rabbit ventricular myocytes.
  • Whole-cell voltage-clamp measurements on single myocytes
  • Isolation of IK1 from other currents using K(+)-free bathing solution
  • Analysis of correlation between IK1 and rate of change of membrane potential during action potentials
  • IK1 was small during the plateau phase, increasing significantly during repolarization.
  • A close correlation was found between IK1 magnitude and the rate of change of membrane potential (dVm/dt), confirming IK1's role in final repolarization.
  • Tail currents recorded during repolarization indicated a slow reactivation of IK1, revealing its time- and voltage-dependent properties.

Structured PICO

P
Population
Single myocytes from rabbit ventricle
I
Intervention
Whole-cell voltage-clamp measurements (action potential voltage-clamp and rectangular voltage-clamp steps)
C
Comparator
Currents in K(+)-free bathing solution
O
Outcome
Time- and voltage-dependent properties of the inwardly rectifying background potassium current IK1 and its role in the plateau and repolarization phases of the action potentialsurrogate

Inwardly rectifying potassium current (IK1) is the principal current responsible for the final repolarization phase in rabbit ventricular myocytes.

Abstract

Whole-cell voltage-clamp measurements were made of the time- and voltage-dependent properties of the inwardly rectifying background potassium current IK1, in single myocytes from rabbit ventricle. The main goal of these experiments was to define the role of IK1 in the plateau and repolarization phases of the action potential (AP). 2. Action potentials from single ventricular myocytes were used as the command signals for voltage-clamp measurements. In these 'action potential voltage-clamp' experiments, IK1 was isolated from other membrane currents by taking the difference between control currents and currents in K(+)-free bathing solution. The results show that IK1 is small during the plateau, but then rapidly increases during repolarization and declines in early diastole. 3. Evidence of an important functional role for IK1 in AP repolarization was obtained by comparing the magnitude of IK1 and the rate of change of membrane potential (dVm/dt) in the same cell during the AP. The time courses of IK1 and dVm/dt during the AP were closely correlated, indicating that IK1 was the principal current responsible for final repolarization. 4. Rectangular voltage-clamp steps were used to study time- and voltage-dependent changes in IK1 at membrane potentials corresponding to the repolarization phase of the AP. 'Slow' relaxations or tail currents, lasting 100-300 ms, were consistently recorded when the cell was repolarized to potentials in the range -30 to -70 mV, following depolarizations between +10 and -10 mV. 5. The close correlation between the magnitude of the steady-state IK1 (in an external K+ concentration of 5.4 mM), which was outward for membrane potentials in the range -30 to -70 mV, and the magnitude of the tail currents, suggests that they resulted from a slow increase, or reactivation, of IK1. 6. The component of the slow tails due to reactivation of IK1 can be separated from a previously described component due to Na(+)-Ca2+ exchange since the IK1 component: (i) does not depend on the presence of the calcium current, ICa; (ii) can be recorded when internal EGTA (5 mM) suppresses large changes in Ca2+i; (iii) does not depend on the Na+ electrochemical gradient; (iv) is abolished in K(+)-free external solution; and (v) is not present in rabbit atrial myocytes, in which IK1 is very small. 7. The time- and voltage-dependent properties of IK1 revealed by these tail current experiments suggest that the measured magnitude of IK1 will be dependent on the voltage-clamp protocol.(ABSTRACT TRUNCATED AT 400 WORDS)

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Cite This Study

Shimoni et al. (1992) studied Rabbit ventricular action potential. Whole-cell voltage-clamp measurements vs. K(+)-free bathing solution was evaluated on Role of IK1 in the plateau and repolarization phases of the action potential. The inwardly rectifying potassium current IK1 is small during the plateau but rapidly increases during repolarization, acting as the principal current responsible for final repolarization.

synapsesocial.com/papers/6a0a14750e219f8cdd346c55https://doi.org/10.1113/jphysiol.1992.sp019066
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Also Consider

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

  1. 1Characterization of the inward-rectifying potassium current in cat ventricular myocytes.1988 · 80 citations
  2. 2Voltage-dependent block of cardiac inward-rectifying potassium current by monovalent cations.1989 · 35 citations
  3. 3Inward rectification of a potassium channel in cardiac ventricular cells depends on internal magnesium ions.1987 · 492 citations
  4. 4Voltage‐dependent activation of the inward‐rectifier potassium channel in the ventricular cell membrane of guinea‐pig heart.1985 · 199 citations
  5. 5Voltage‐dependent inactivation of inward‐rectifying single‐channel currents in the guinea‐pig heart cell membrane.1984 · 266 citations