Probing Intracellular Potassium Dynamics in Neurons with the Genetically Encoded Sensor lc-LysM GEPII 1.0 in vitro and in vivo

Author:

Groschup Bernhard1,Calandra Gian Marco1,Raitmayr Constanze1,Shrouder Joshua1,Llovera Gemma1,Zaki Asal Ghaffari2,Burgstaller Sandra3,Bischof Helmut4,Eroglu Emrah2,Liesz Arthur1,Malli Roland5,Filser Severin6,Plesnila Nikolaus1

Affiliation:

1. Institute for Stroke and Dementia Research (ISD), LMU University Hospital, LMU Munich

2. Regenerative and Restorative Medicine Research Center (REMER), Research Institute for Health Sciences and Technologies (SABITA), Istanbul Medipol University,

3. Institut für Klinische Anatomie und Zellanalytik (Österbergstraße 3), Eberhard Karls Universität Tübingen

4. Department of Pharmacology, Toxicology and Clinical Pharmacy, Institute of Pharmacy, University of Tübingen

5. Gottfried Schatz Research Center, Molecular Biology and Biochemistry, Medical University of Graz

6. Deutsches Zentrum für Neurodegenerative Erkrankungen (DZNE), Light Microscope Facility (LMF)

Abstract

Abstract Neuronal activity is accompanied by a net outflow of potassium ions (K+) from the intra- to the extracellular space. While extracellular [K+] changes during neuronal activity are well characterized, intracellular dynamics have been less well investigated due to lack of respective probes. In the current study we characterized the FRET-based K+ biosensor lc-LysM GEPII 1.0 for its capacity to measure intracellular [K+] changes in primary cultured neurons and in mouse cortical neurons in vivo. We found that lc-LysM GEPII 1.0 can resolve neuronal [K+] decreases in vitro during seizure-like and intense optogenetically evoked activity. [K+] changes during single action potentials could not be recorded. We confirmed these findings in vivo by expressing lc-LysM GEPII 1.0 in mouse cortical neurons and performing 2-photon fluorescence lifetime imaging. We observed an increase in the fluorescence lifetime of lc-LysM GEPII 1.0 during periinfarct depolarizations, which indicates a decrease in intracellular neuronal [K+]. Our findings suggest that lc-LysM GEPII 1.0 can be used to measure large changes in [K+] in neurons in vitro and in vivo but requires optimization to resolve smaller changes as observed during single action potentials.

Publisher

Research Square Platform LLC

Reference51 articles.

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