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Published on: February 8, 2011
Early Steps in C-Type Inactivation of the hERG Potassium Channel
Francesco Pettini1,2, Carmen Domene3,4, Simone Furini5
1Department of Medical Biotechnologies, University of Siena, viale Mario Bracci 12, Siena 53100, Italy.
Insights
Fast C-type inactivation in the hERG potassium channel is crucial for cardiac function. Molecular dynamics simulations reveal that inactivation involves widening of the channel
Area of Science:
- Cardiovascular Science
- Molecular Biophysics
- Ion Channel Physiology
Background:
- Fast C-type inactivation of the hERG potassium channel is linked to cardiac arrhythmias.
- Two models exist for C-type inactivation: selectivity filter closure or extracellular widening.
Purpose of the Study:
- To investigate the atomic-level mechanism of hERG C-type inactivation.
- To determine which proposed inactivation model applies to hERG.
Main Methods:
- Molecular dynamics simulations of wild-type hERG and two mutants (hERG-N629D, hERG-F627Y).
- Analysis of selectivity filter structure and ion conduction pathways.
Main Results:
- Selectivity filter closure was not observed in simulations.
- Extracellular widening of the selectivity filter correlated with inactivation rate (hERG-F627Y > wild-type > hERG-N629D).
Conclusions:
- C-type inactivation in hERG involves widening of the extracellular entrance.
- This mechanism differs from selectivity filter closure observed in other channels.
Abstract:
Fast C-type inactivation confers distinctive functional properties to the hERG potassium channel, and its association to inherited and acquired cardiac arrythmias makes the study of the inactivation mechanism of hERG at the atomic detail of paramount importance. At present, two models have been proposed to describe C-type inactivation in K+-channels. Experimental data and computational work on the bacterial KcsA channel support the hypothesis that C-type inactivation results from a closure of the selectivity filter that sterically impedes ion conduction. Alternatively, recent experimental structures of a mutated Shaker channel revealed a widening of the extracellular portion of the selectivity filter, which might diminish conductance by interfering with the mechanism of ion permeation. Here, we performed molecular dynamics simulations of the wild-type hERG, a non-inactivating mutant (hERG-N629D), and a mutant that inactivates faster than the wild-type channel (hERG-F627Y) to find out which and if any of the two reported C-type inactivation mechanisms applies to hERG. Closure events of the selectivity filter were not observed in any of the simulated trajectories but instead, the extracellular section of the selectivity filter deviated from the canonical conductive structure of potassium channels. The degree of widening of the potassium binding sites at the extracellular entrance of the channel was directly related to the degree of inactivation with hERG-F627Y > wild-type hERG > hERG-N629D. These findings support the hypothesis that C-type inactivation in hERG entails a widening of the extracellular entrance of the channel rather than a closure of the selectivity filter.
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