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June 3, 20260 citationsOpen Access

The potassium channel subunit KV1.8 (Kcna10) is essential for the distinctive outwardly rectifying conductances of type I and II vestibular hair cells

HMHannah R. MartinALAnna LysakowskiRERuth Anne Eatock

Key Points

  • This research aims to determine the role of potassium channel KV1.8 in the conductances of type I and II vestibular hair cells and its implications for balance.
  • Compared whole-cell voltage-dependent currents from utricular hair cells of KV1.8-null mice and controls.
  • Analyzed conductances in both types of hair cells to assess the necessity of KV1.8 subunit for function.
  • Utilized current clamp recordings to evaluate voltage responses in hair cells.
  • KV1.8 is necessary for the large potassium conductance (gK,L) in type I hair cells with high negative resting potentials.
  • Fast-inactivating and delayed rectifier currents in type II hair cells are also dependent on KV1.8.
  • KV1.8-null hair cells showed remaining conductances from KV7 channels, indicating partial functional redundancy.

Abstract

In amniotes, head motions and tilt are detected by two types of vestibular hair cells (HCs) with strikingly different morphology and physiology. Mature type I HCs express a large and very unusual potassium conductance, gK,L, which activates negative to resting potential, confers very negative resting potentials and low input resistances, and enhances an unusual non-quantal transmission from type I cells onto their calyceal afferent terminals. Following clues pointing to KV1.8 (Kcna10) in the Shaker K channel family as a candidate gK,L subunit, we compared whole-cell voltage-dependent currents from utricular HCs of KV1.8-null mice and littermate controls. We found that KV1.8 is necessary not just for gK,L but also for fast-inactivating and delayed rectifier currents in type II HCs, which activate positive to resting potential. The distinct properties of the three KV1.8-dependent conductances may reflect different mixing with other KV subunits that are reported to be differentially expressed in type I and II HCs. In KV1.8-null HCs of both types, residual outwardly rectifying conductances include KV7 (Knq) channels. Current clamp records show that in both HC types, KV1.8-dependent conductances increase the speed and damping of voltage responses. Features that speed up vestibular receptor potentials and non-quantal afferent transmission may have helped stabilize locomotion as tetrapods moved from water to land.

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Cite This Study

Martin et al. (2024) studied this question.

synapsesocial.com/papers/6a1fc696dee9eb8c0dce79cbhttps://doi.org/10.6082/s6rxe-n6318
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