Zinc is a key regulator of the sperm-specific K+ channel (Slo3) function

The voltage- and pH-gated Slo3 potassium channel is exclusively expressed in mammalian spermatozoa. Its sensitivity to both voltage and alkalization plays a crucial role in sperm fertility, which is tightly coupled to the capacitation process. Here, we show that sperm-enriched divalent cation Zn 2+ undergoes dynamic alteration in spermatozoa during capacitation. We also found that intracellular Zn 2+ regulates alkalinization-induced hyperpolarization in mouse spermatozoa, which is mediated by the Slo3 channel. Further examination of zinc regulation in mouse Slo3 (mSlo3) revealed that, in the Xenopus oocyte expression system , intracellular zinc directly inhibits mouse Slo3 currents in a dose-dependent manner at micromolar concentrations, with exceptionally slow dissociation. By combining MD simulations and electrophysiology, we also identified amino acid residues contributing to the Zn 2+ slow dissociation from Slo3 channels. Our studies uncover the importance of intracellular zinc dynamics and its regulatory role in ion channels during sperm capacitation.

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Publication Details

Journal
eLife
Published
2026-09-30
DOI
https://doi.org/10.7554/elife.105450.3
Primary Topic
Ion channel regulation and function
Type
article
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article

Zinc is a key regulator of the sperm-specific K+ channel (Slo3) function

Takafumi Kawai, Rizki Tsari Andriani, Tanadet Pipatpolkai, Yasushi Okamura et al.
eLife
Ion channel regulation and function
article

Zinc is a key regulator of the sperm-specific K+ channel (Slo3) function

Takafumi Kawai, Rizki Tsari Andriani, Tanadet Pipatpolkai, Yasushi Okamura, Haruhiko Miyata, Masahito Ikawa
article en

Abstract

The voltage- and pH-gated Slo3 potassium channel is exclusively expressed in mammalian spermatozoa. Its sensitivity to both voltage and alkalization plays a crucial role in sperm fertility, which is tightly coupled to the capacitation process. Here, we show that sperm-enriched divalent cation Zn 2+ undergoes dynamic alteration in spermatozoa during capacitation. We also found that intracellular Zn 2+ regulates alkalinization-induced hyperpolarization in mouse spermatozoa, which is mediated by the Slo3 channel. Further examination of zinc regulation in mouse Slo3 (mSlo3) revealed that, in the Xenopus oocyte expression system , intracellular zinc directly inhibits mouse Slo3 currents in a dose-dependent manner at micromolar concentrations, with exceptionally slow dissociation. By combining MD simulations and electrophysiology, we also identified amino acid residues contributing to the Zn 2+ slow dissociation from Slo3 channels. Our studies uncover the importance of intracellular zinc dynamics and its regulatory role in ion channels during sperm capacitation.

eLifeVol. 14
Nanyang Technological University (SG), Ehime University (JP), Osaka International University (JP), The University of Osaka (JP)
Openalex Percentile: Top 19%
Ion channel regulation and function
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Zinc is a key regulator of the sperm-specific K+ channel (Slo3) function — Takafumi Kawai, Rizki Tsari Andriani, et al. · eLife (2026) | TGRS Research Map | TGRS