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April 1, 1991AJP Heart and Circulatory Physiology43 citations

Delayed-rectifier potassium channel activity in isolated membrane patches of guinea pig ventricular myocytes

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KWKenneth B. WalshJAJoseph P. ArenaWKWai‐Meng Kwok

Structured PICO

P
Population
Isolated membrane patches (cell-attached and excised) of guinea pig ventricular myocytes
I
Intervention
External addition of LY 97241 (50 microM) and internal application of catalytic subunit of cAMP-dependent protein kinase (500 nM)
C
Comparator
Baseline conditions (absence of agents)
O
Outcome
Characteristics of the slowly activating, time-dependent outward current (delayed-rectifier K+ current)surrogate

This study demonstrates that a major component of delayed rectification in guinea pig ventricular cells is mediated by a high-density, extremely low conductance potassium channel.

Abstract

When the patch-clamp technique was used, a slowly activating, time-dependent outward current was identified in both cell-attached and excised membrane patches obtained from guinea pig ventricular myocytes. This macroscopic patch current was present in approximately 50% of patches studied and could be observed both in the presence and absence of unitary single channel activity (i.e., ATP-sensitive K+ channels). The time course of activation of the patch current resembled that of the whole cell delayed-rectifier K+ current (IK) recorded under similar ionic conditions, and the patch current and IK were activated over a similar membrane potential range. The time-dependent patch current could be eliminated when the Nernst potential for K+ equaled that of the pulse voltage. The patch current was inhibited by external addition of the tertiary ammonium compound LY 97241 (50 microM) and was augmented after internal application of the catalytic subunit of adenosine 3',5'-cyclic monophosphate-dependent protein kinase (500 nM). Deactivating tail currents with kinetics similar to those of IK could be recorded to cell-attached and excised patches. Unitary single channel events underlying the time-dependent patch current could not be resolved despite various attempts to increase single channel conductance. Thus our results suggest that a major component of delayed rectification in guinea pig ventricular cells is due to the activity of a high-density, extremely low conductance K+ channel.

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Cite This Study

Walsh et al. (1991) studied this question.

synapsesocial.com/papers/6a71c4bd35aa2c282ce2eb1bhttps://doi.org/10.1152/ajpheart.1991.260.4.h1390
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