A structurally precise mechanism links an epilepsy-associated <i>KCNC2</i> potassium channel mutation to interneuron dysfunction.

Clatot, Jerome; Currin, Christopher B; Liang, Qiansheng; Pipatpolkai, Tanadet; Massey, Shavonne L; Helbig, Ingo; Delemotte, Lucie; Vogels, Tim P et al. · Proc Natl Acad Sci U S A · 2024

basic_science · Level V

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Abstract

De novo heterozygous variants in <i>KCNC2</i> encoding the voltage-gated potassium (K<sup>+</sup>) channel subunit Kv3.2 are a recently described cause of developmental and epileptic encephalopathy (DEE). A de novo variant in <i>KCNC2</i> c.374G > A (p.Cys125Tyr) was identified via exome sequencing in a patient with DEE. Relative to wild-type Kv3.2, Kv3.2-p.Cys125Tyr induces K<sup>+</sup> currents exhibiting a large hyperpolarizing shift in the voltage dependence of activation, accelerated activation, and delayed deactivation consistent with a relative stabilization of the open conformation, along with increased current density. Leveraging the cryogenic electron microscopy (cryo-EM) structure of Kv3.1, molecular dynamic simulations suggest that a strong π-π stacking interaction between the variant Tyr125 and Tyr156 in the α-6 helix of the T1 domain promotes a relative stabilization of the open conformation of the channel, which underlies the observed gain of function. A multicompartment computational model of a Kv3-expressing parvalbumin-positive cerebral cortex fast-spiking γ-aminobutyric acidergic (GABAergic) interneuron (PV-IN) demonstrates how the Kv3.2-Cys125Tyr variant impairs neuronal excitability and dysregulates inhibition in cerebral cortex circuits to explain the resulting epilepsy.

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