Novel genetically encoded fluorescent probes enable real-time detection of potassium in vitro and in vivo.

Bischof, Helmut; Rehberg, Markus; Stryeck, Sarah; Artinger, Katharina; Eroglu, Emrah; Waldeck-Weiermair, Markus; Gottschalk, Benjamin; Rost, Rene et al. · Nat Commun · 2017

basic_science · Level V

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Abstract

Changes in intra- and extracellular potassium ion (K<sup>+</sup>) concentrations control many important cellular processes and related biological functions. However, our current understanding of the spatiotemporal patterns of physiological and pathological K<sup>+</sup> changes is severely limited by the lack of practicable detection methods. We developed K<sup>+</sup>-sensitive genetically encoded, Förster resonance energy transfer-(FRET) based probes, called GEPIIs, which enable quantitative real-time imaging of K<sup>+</sup> dynamics. GEPIIs as purified biosensors are suitable to directly and precisely quantify K<sup>+</sup> levels in different body fluids and cell growth media. GEPIIs expressed in cells enable time-lapse and real-time recordings of global and local intracellular K<sup>+</sup> signals. Hitherto unknown Ca<sup>2+</sup>-triggered, organelle-specific K<sup>+</sup> changes were detected in pancreatic beta cells. Recombinant GEPIIs also enabled visualization of extracellular K<sup>+</sup> fluctuations in vivo with 2-photon microscopy. Therefore, GEPIIs are relevant for diverse K<sup>+</sup> assays and open new avenues for live-cell K<sup>+</sup> imaging.

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