Analysis of sodium self-inhibition of the epithelial sodium channel (ENaC) using classical and medium-throughput automated two-electrode voltage-clamp recordings

Abstract The epithelial sodium channel (ENaC) is a key regulator of electrolyte homeostasis and blood pressure. A characteristic ENaC feature is sodium self-inhibition (SSI), a rapid autoregulatory mechanism in which extracellular Na + ions allosterically bind ENaC and facilitate transition into a low open probability state. Although SSI is an important functional parameter for assessing ENaC activity and gating, its quantification has traditionally relied on manual two-electrode voltage-clamp (TEVC) recordings with limited scalability and throughput. Here, we improved and evaluated experimental strategies and analytical methods for robust quantification of ENaC SSI in manual and automated TEVC systems: (1) The determination of SSI from extrapolation of transient current recordings in response to a jump in the extracellular Na + concentration; (2) the estimation of SSI by comparison of steady-state currents before and after chemical modification of a β S520C -ENaC mutant with MTSET; and (3) quantification of SSI from the analysis of steady-state current-voltage relationships recorded at different extracellular Na + concentrations. The latter procedure is the most reliable for SSI quantification in perfusion rate-limited automated TEVC systems. These methods can expand the capabilities of automated electrophysiology and support medium- to high-throughput investigation of autoregulatory mechanisms in ENaC variants and the discovery of novel ENaC modulators.

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Publication Details

Journal
Pflügers Archiv - European Journal of Physiology
Published
2026-09-28
DOI
https://doi.org/10.1007/s00424-026-03212-w
Primary Topic
Ion Transport and Channel Regulation
Type
article
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article

Analysis of sodium self-inhibition of the epithelial sodium channel (ENaC) using classical and medium-throughput automated two-electrode voltage-clamp recordings

Mike Althaus, Oliver Rauh, Karen Lizet Luján López, Carol Merlin Frank et al.
Pflügers Archiv - European Journal of Physiology
Ion Transport and Channel Regulation
article

Analysis of sodium self-inhibition of the epithelial sodium channel (ENaC) using classical and medium-throughput automated two-electrode voltage-clamp recordings

Mike Althaus, Oliver Rauh, Karen Lizet Luján López, Carol Merlin Frank, Nadja Furtwängler
article en

Abstract

Abstract The epithelial sodium channel (ENaC) is a key regulator of electrolyte homeostasis and blood pressure. A characteristic ENaC feature is sodium self-inhibition (SSI), a rapid autoregulatory mechanism in which extracellular Na + ions allosterically bind ENaC and facilitate transition into a low open probability state. Although SSI is an important functional parameter for assessing ENaC activity and gating, its quantification has traditionally relied on manual two-electrode voltage-clamp (TEVC) recordings with limited scalability and throughput. Here, we improved and evaluated experimental strategies and analytical methods for robust quantification of ENaC SSI in manual and automated TEVC systems: (1) The determination of SSI from extrapolation of transient current recordings in response to a jump in the extracellular Na + concentration; (2) the estimation of SSI by comparison of steady-state currents before and after chemical modification of a β S520C -ENaC mutant with MTSET; and (3) quantification of SSI from the analysis of steady-state current-voltage relationships recorded at different extracellular Na + concentrations. The latter procedure is the most reliable for SSI quantification in perfusion rate-limited automated TEVC systems. These methods can expand the capabilities of automated electrophysiology and support medium- to high-throughput investigation of autoregulatory mechanisms in ENaC variants and the discovery of novel ENaC modulators.

Pflügers Archiv - European Journal of PhysiologyVol. 478(10)
Hochschule Bonn-Rhein-Sieg (DE), Justus-Liebig-Universität Gießen (DE)
Openalex Percentile: Top 20%
Ion Transport and Channel Regulation
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