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January 1, 1996Circulation Research172 citations

Inward Rectification and Implications for Cardiac Excitability

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CNColin G. NicholsEMElena MakhinaWPWade L. Pearson

Key Result

Changes in polyamine concentrations or their relative proportions are predicted by simulations to have profound effects on cardiac excitability through voltage-dependent block of K+ channels.

Key Points

  • The study aims to investigate inward rectification of K+ channels and its implications for cardiac excitability.
  • Review of inwardly rectifying K+ channels and their functional properties.
  • Analysis of polyamine interactions with K+ channels and their voltage-dependent effects.
  • Simulations of varying polyamine concentrations on cardiac excitability.
  • Strong inward rectification is primarily caused by voltage-dependent block by polyamines and Mg2+, influencing cardiac action potentials.
  • Manipulating polyamine levels can significantly alter cardiac excitability, as predicted through simulations.
  • Structural requirements for inward rectification were determined through mutation studies of cloned channels.

PICO

P
Population
Cardiac excitability

Abstract

Since the cloning of the first inwardly rectifying K+ channel in 1993, a family of related clones has been isolated, with many members being expressed in the heart. Exogenous expression of different clones has demonstrated that between them they encode channels with the essential functional properties of classic inward rectifier channels, ATP-sensitive K+ channels, and muscarinic receptor-activated inward rectifier channels. High-level expression of cloned channels has led to the discovery that classic strong inward, or anomalous, rectification is caused by very steeply voltage-dependent block of the channel by polyamines, with an additional contribution by Mg2+ ions. Knowledge of the primary structures of inward rectifying channels and the ability to mutate them have led to the determination of many of the structural requirements of inward rectification. The implications of these advances for basic understanding and pharmacological manipulation of cardiac excitability may be significant. For example, cellular concentrations of polyamines are altered under different conditions and can be manipulated pharmacologically. Simulations predict that changes in polyamine concentrations or changes in the relative proportions of each polyamine species could have profound effects on cardiac excitability.

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Cite This Study

Nichols et al. (1996) conducted a review in Cardiac excitability. Changes in polyamine concentrations or their relative proportions are predicted by simulations to have profound effects on cardiac excitability through voltage-dependent block of K+ channels.

synapsesocial.com/papers/6a0a14750e219f8cdd346c4dhttps://doi.org/10.1161/01.res.78.1.1
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