Pore-modulating toxins exploit inherent slow inactivation to block K<sup>+</sup> channels.

Karbat, Izhar; Altman-Gueta, Hagit; Fine, Shachar; Szanto, Tibor; Hamer-Rogotner, Shelly; Dym, Orly; Frolow, Felix; Gordon, Dalia et al. · Proc Natl Acad Sci U S A · 2019

basic_science · Level V

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Abstract

Voltage-dependent potassium channels (K<sub>v</sub>s) gate in response to changes in electrical membrane potential by coupling a voltage-sensing module with a K<sup>+</sup>-selective pore. Animal toxins targeting K<sub>v</sub>s are classified as pore blockers, which physically plug the ion conduction pathway, or as gating modifiers, which disrupt voltage sensor movements. A third group of toxins blocks K<sup>+</sup> conduction by an unknown mechanism via binding to the channel turrets. Here, we show that Conkunitzin-S1 (Cs1), a peptide toxin isolated from cone snail venom, binds at the turrets of K<sub>v</sub>1.2 and targets a network of hydrogen bonds that govern water access to the peripheral cavities that surround the central pore. The resulting ectopic water flow triggers an asymmetric collapse of the pore by a process resembling that of inherent slow inactivation. Pore modulation by animal toxins exposes the peripheral cavity of K<sup>+</sup> channels as a novel pharmacological target and provides a rational framework for drug design.

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