Selectivity filter modalities and rapid inactivation of the hERG1 channel.
basic_science · Level V
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- Record sourced from PubMed, PMID 31980532.
- Also identified by DOI 10.1073/pnas.1909196117 and PMC identifier 7022143.
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Abstract
The human <i>ether-á-go-go</i>-related gene (hERG1) channel conducts small outward K<sup>+</sup> currents that are critical for cardiomyocyte membrane repolarization. The gain-of-function mutation N629D at the outer mouth of the selectivity filter (SF) disrupts inactivation and K<sup>+</sup>-selective transport in hERG1, leading to arrhythmogenic phenotypes associated with long-QT syndrome. Here, we combined computational electrophysiology with Markov state model analysis to investigate how SF-level gating modalities control selective cation transport in wild-type (WT) and mutant (N629D) hERG1 variants. Starting from the recently reported cryogenic electron microscopy (cryo-EM) open-state channel structure, multiple microseconds-long molecular-dynamics (MD) trajectories were generated using different cation configurations at the filter, voltages, electrolyte concentrations, and force-field parameters. Most of the K<sup>+</sup> permeation events observed in hERG1-WT simulations occurred at microsecond timescales, influenced by the spontaneous dehydration/rehydration dynamics at the filter. The SF region displayed conductive, constricted, occluded, and dilated states, in qualitative agreement with the well-documented flickering conductance of hERG1. In line with mutagenesis studies, these gating modalities resulted from dynamic interaction networks involving residues from the SF, outer-mouth vestibule, P-helices, and S5-P segments. We found that N629D mutation significantly stabilizes the SF in a state that is permeable to both K<sup>+</sup> and Na<sup>+</sup>, which is reminiscent of the SF in the nonselective bacterial NaK channel. Increasing the external K<sup>+</sup> concentration induced "WT-like" SF dynamics in N629D, in qualitative agreement with the recovery of flickering currents in experiments. Overall, our findings provide an understanding of the molecular mechanisms controlling selective transport in K<sup>+</sup> channels with a nonconventional SF sequence.
Medical subject headings
- ERG1 Potassium Channel