Optical estimation of absolute membrane potential using fluorescence lifetime imaging.

Lazzari-Dean, Julia R; Gest, Anneliese Mm; Miller, Evan W · Elife · 2019

basic_science · Level V

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Abstract

All cells maintain ionic gradients across their plasma membranes, producing transmembrane potentials (V<sub>mem</sub>). Mounting evidence suggests a relationship between resting V<sub>mem</sub> and the physiology of non-excitable cells with implications in diverse areas, including cancer, cellular differentiation, and body patterning. A lack of non-invasive methods to record absolute V<sub>mem</sub> limits our understanding of this fundamental signal. To address this need, we developed a fluorescence lifetime-based approach (VF-FLIM) to visualize and optically quantify V<sub>mem</sub> with single-cell resolution in mammalian cell culture. Using VF-FLIM, we report V<sub>mem</sub> distributions over thousands of cells, a 100-fold improvement relative to electrophysiological approaches. In human carcinoma cells, we visualize the voltage response to growth factor stimulation, stably recording a 10-15 mV hyperpolarization over minutes. Using pharmacological inhibitors, we identify the source of the hyperpolarization as the Ca<sup>2+</sup>-activated K<sup>+</sup> channel K<sub>Ca</sub>3.1. The ability to optically quantify absolute V<sub>mem</sub> with cellular resolution will allow a re-examination of its signaling roles.

Medical subject headings