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February 8, 2026Nature Communications2 citationsOpen Access

Two-step voltage-sensor activation of the human KV7.4 channel and effect of a deafness-associated mutation

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MNMario NappiUniversity of Naples Federico IIDFDamon J. A. FramptonLinköping UniversityAKAli S. KusayLinköping University

Key Points

  • The research aims to understand how voltage-sensor activation and mutations affect the human KV7.4 channel's functioning, particularly regarding hearing loss.
  • Optical tracking of KV7.4 voltage-sensor activation using voltage-clamp fluorometry
  • Utilization of two fluorophores and pulsed excitation
  • Molecular dynamics simulations to analyze mutation effects
  • Voltage-sensor activation involves several transitions with varying kinetics and voltage-dependence
  • The R216H mutation disrupts voltage-sensor movement and channel opening
  • Simulation results confirm VSD stabilization is affected by the mutation

Abstract

Abstract KCNQ4 -encoded K V 7.4 voltage-gated potassium channels are expressed in hair-cells of the inner ear. Loss-of-function variants in KCNQ4 cause non-syndromic progressive hearing loss (DFNA2). K V 7.4 pore opening requires voltage-dependent conformational changes (activation) of the voltage-sensor domains (VSDs); however, how fast charge displacement during VSD activation is coupled to slow channel opening is currently unclear. Here, we optically tracked K V 7.4 VSD activation with voltage-clamp fluorometry, leveraging two fluorophores and pulsed excitation, and found that VSD activation comprises several voltage-dependent transitions, some with kinetics and voltage-dependence matching those of channel opening and closing. The DFNA2-causing R216H mutation impairs VSD movement and channel opening by destabilizing the active VSD configuration, a result confirmed by molecular dynamics simulations. We propose that the K V 7.4 VSD activates in two steps: a fast movement representing a first transition to an intermediate activation state, followed by slower component(s) that fully activate the VSD and drive channel opening.

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Cite This Study

Nappi et al. (2026) studied this question.

synapsesocial.com/papers/6988290a0fc35cd7a8849041https://doi.org/10.1038/s41467-026-69249-8
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