Structure and mechanism of the K<sup>+</sup>/H<sup>+</sup> exchanger KefC.

Gulati, Ashutosh; Kokane, Surabhi; Perez-Boerema, Annemarie; Alleva, Claudia; Meier, Pascal F; Matsuoka, Rei; Drew, David · Nat Commun · 2024

basic_science · Level V

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Abstract

Intracellular potassium (K<sup>+</sup>) homeostasis is fundamental to cell viability. In addition to channels, K<sup>+</sup> levels are maintained by various ion transporters. One major family is the proton-driven K<sup>+</sup> efflux transporters, which in gram-negative bacteria is important for detoxification and in plants is critical for efficient photosynthesis and growth. Despite their importance, the structure and molecular basis for K<sup>+</sup>-selectivity is poorly understood. Here, we report ~3.1 Å resolution cryo-EM structures of the Escherichia coli glutathione (GSH)-gated K<sup>+</sup> efflux transporter KefC in complex with AMP, AMP/GSH and an ion-binding variant. KefC forms a homodimer similar to the inward-facing conformation of Na<sup>+</sup>/H<sup>+</sup> antiporter NapA. By structural assignment of a coordinated K<sup>+</sup> ion, MD simulations, and SSM-based electrophysiology, we demonstrate how ion-binding in KefC is adapted for binding a dehydrated K<sup>+</sup> ion. KefC harbors C-terminal regulator of K<sup>+</sup> conductance (RCK) domains, as present in some bacterial K<sup>+</sup>-ion channels. The domain-swapped helices in the RCK domains bind AMP and GSH and they inhibit transport by directly interacting with the ion-transporter module. Taken together, we propose that KefC is activated by detachment of the RCK domains and that ion selectivity exploits the biophysical properties likewise adapted by K<sup>+</sup>-ion-channels.

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