Shifts in the selectivity filter dynamics cause modal gating in K<sup>+</sup> channels.

Jekhmane, Shehrazade; Medeiros-Silva, João; Li, Jing; Kümmerer, Felix; Müller-Hermes, Christoph; Baldus, Marc; Roux, Benoît; Weingarth, Markus · Nat Commun · 2019

basic_science · Level V

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Abstract

Spontaneous activity shifts at constant experimental conditions represent a widespread regulatory mechanism in ion channels. The molecular origins of these modal gating shifts are poorly understood. In the K<sup>+</sup> channel KcsA, a multitude of fast activity shifts that emulate the native modal gating behaviour can be triggered by point-mutations in the hydrogen bonding network that controls the selectivity filter. Using solid-state NMR and molecular dynamics simulations in a variety of KcsA mutants, here we show that modal gating shifts in K<sup>+</sup> channels are associated with important changes in the channel dynamics that strongly perturb the selectivity filter equilibrium conformation. Furthermore, our study reveals a drastically different motional and conformational selectivity filter landscape in a mutant that mimics voltage-gated K<sup>+</sup> channels, which provides a foundation for an improved understanding of eukaryotic K<sup>+</sup> channels. Altogether, our results provide a high-resolution perspective on some of the complex functional behaviour of K<sup>+</sup> channels.

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