Optical Single-Channel Recording via Diffusional Confinement in Membrane Tethers.

Howell, Madeleine R; Cohen, Adam E · ACS Nano · 2025

basic_science · Level V

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Abstract

Single-channel electrophysiology probes ion channel gating, but how can one probe membrane transport when the single-unit current is undetectable? We pulled membrane tethers from live cells to isolate individual transmembrane proteins. The tether constrained diffusion of the transported substrate to the tether axis, leading to ∼1000-fold enhancement of substrate concentration and observation time compared to planar membranes. Fluorescent reporters inside the tether revealed individual transport events. We imaged unitary Ca<sup>2+</sup> transport events in tethers containing the low-conductance T-type Ca<sup>2+</sup> channel Ca<sub>V</sub>3.2 and compared our results to ensemble electrophysiology and stochastic gating simulations. We detected events corresponding to as little as ∼0.4 fC of transported charge, or only 6-13 free Ca<sup>2+</sup> ions under typical buffering conditions. Tether-based single-channel recordings are a powerful tool to study dynamics of membrane transport.

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