State-dependent binding of the wedge domain controls inactivation of the mechanosensitive ion channel PIEZO1

The mechanically activated ion channel PIEZO1 transduces membrane tension into intracellular calcium signals and is critical for a wide range of physiological processes. Recent structural and functional studies have established a detailed framework for PIEZO1 activation, but the molecular mechanisms governing its rapid inactivation remain incompletely understood. Here, we examine the contribution of the intracellular wedge domain to PIEZO1 inactivation using site-directed mutagenesis, electrophysiological recordings and MINFLUX nanoscopy. We show that wedge deletion and disruption of specific π-π and cation-π interactions between the wedge α1-helix and the pore module diminishes inactivation without impairing channel activation. Moreover, MINFLUX nanoscopy suggests that the wedge stabilizes a flat inactivated conformation of PIEZO1 and suggests that wedge dissociation is required for recovery from inactivation. Together, our data support a mechanism with the wedge acting as a state-dependent inactivation particle that docks to the pore module to terminate channel activity during sustained mechanical stimulation.

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Publication Details

Journal
Nature Communications
Published
2026-08-26
DOI
https://doi.org/10.1038/s41467-026-76927-0
Citations
1
Primary Topic
Erythrocyte Function and Pathophysiology
Type
article
Field-Weighted Citation Impact
5.67

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article

State-dependent binding of the wedge domain controls inactivation of the mechanosensitive ion channel PIEZO1

Christian Gorzelanny, Stefan G. Lechner, Nadja Zeitzschel, Clément Verkest et al.
1 citations
Nature Communications
Erythrocyte Function and Pathophysiology
5.67
article

State-dependent binding of the wedge domain controls inactivation of the mechanosensitive ion channel PIEZO1

Christian Gorzelanny, Stefan G. Lechner, Nadja Zeitzschel, Clément Verkest, Lucas Roettger
article en
1 citations

Abstract

The mechanically activated ion channel PIEZO1 transduces membrane tension into intracellular calcium signals and is critical for a wide range of physiological processes. Recent structural and functional studies have established a detailed framework for PIEZO1 activation, but the molecular mechanisms governing its rapid inactivation remain incompletely understood. Here, we examine the contribution of the intracellular wedge domain to PIEZO1 inactivation using site-directed mutagenesis, electrophysiological recordings and MINFLUX nanoscopy. We show that wedge deletion and disruption of specific π-π and cation-π interactions between the wedge α1-helix and the pore module diminishes inactivation without impairing channel activation. Moreover, MINFLUX nanoscopy suggests that the wedge stabilizes a flat inactivated conformation of PIEZO1 and suggests that wedge dissociation is required for recovery from inactivation. Together, our data support a mechanism with the wedge acting as a state-dependent inactivation particle that docks to the pore module to terminate channel activity during sustained mechanical stimulation.

Nature CommunicationsVol. 17(1)
Universität Hamburg (DE), University Medical Center Hamburg-Eppendorf (DE)
Deutsche Forschungsgemeinschaft, European Regional Development Fund
Openalex Percentile: Top 9%
Erythrocyte Function and Pathophysiology
5.67
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