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Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels

[Image: see text] Dynamic mass redistribution (DMR) and cellular dielectric spectroscopy (CDS) are label-free biosensor technologies that capture real-time integrated cellular responses upon exposure to extra- and intracellular stimuli. They register signaling routes that are accompanied by cell sha...

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Autores principales: Krebs, Katrin M., Pfeil, Eva M., Simon, Katharina, Grundmann, Manuel, Häberlein, Felix, Bautista-Aguilera, Oscar M., Gütschow, Michael, Weaver, C. David, Fleischmann, Bernd K., Kostenis, Evi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289404/
https://www.ncbi.nlm.nih.gov/pubmed/30555990
http://dx.doi.org/10.1021/acsomega.8b02254
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author Krebs, Katrin M.
Pfeil, Eva M.
Simon, Katharina
Grundmann, Manuel
Häberlein, Felix
Bautista-Aguilera, Oscar M.
Gütschow, Michael
Weaver, C. David
Fleischmann, Bernd K.
Kostenis, Evi
author_facet Krebs, Katrin M.
Pfeil, Eva M.
Simon, Katharina
Grundmann, Manuel
Häberlein, Felix
Bautista-Aguilera, Oscar M.
Gütschow, Michael
Weaver, C. David
Fleischmann, Bernd K.
Kostenis, Evi
author_sort Krebs, Katrin M.
collection PubMed
description [Image: see text] Dynamic mass redistribution (DMR) and cellular dielectric spectroscopy (CDS) are label-free biosensor technologies that capture real-time integrated cellular responses upon exposure to extra- and intracellular stimuli. They register signaling routes that are accompanied by cell shape changes and/or molecular movement of cells proximal to the biosensor to which they are attached. Here, we report the unexpected observation that robust DMR and CDS signatures are also elicited upon direct stimulation of G protein-activated inwardly rectifying potassium (GIRK) channels, which are involved in the regulation of excitability in the heart and brain. Using ML297, a small-molecule GIRK activator, along with channel blockers and cytoskeletal network inhibitors, we found that GIRK activation exerts its effects on cell shape by a mechanism which depends on actin but not the microtubule network. Because label-free real-time biosensing (i) quantitatively determines concentration dependency of GIRK activators, (ii) accurately assesses the impact of GIRK channel blockers, (iii) is high throughput-compatible, and (iv) visualizes previously unknown cellular consequences downstream of direct GIRK activation, we do not only provide a novel experimental strategy for identification of GIRK ligands but also an entirely new angle to probe GIRK (ligand) biology. We envision that DMR and CDS may add to the repertoire of technologies for systematic exploitation of ion channel function and, in turn, to the identification of novel GIRK ligands in order to treat cardiovascular and neurological disorders.
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spelling pubmed-62894042018-12-12 Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels Krebs, Katrin M. Pfeil, Eva M. Simon, Katharina Grundmann, Manuel Häberlein, Felix Bautista-Aguilera, Oscar M. Gütschow, Michael Weaver, C. David Fleischmann, Bernd K. Kostenis, Evi ACS Omega [Image: see text] Dynamic mass redistribution (DMR) and cellular dielectric spectroscopy (CDS) are label-free biosensor technologies that capture real-time integrated cellular responses upon exposure to extra- and intracellular stimuli. They register signaling routes that are accompanied by cell shape changes and/or molecular movement of cells proximal to the biosensor to which they are attached. Here, we report the unexpected observation that robust DMR and CDS signatures are also elicited upon direct stimulation of G protein-activated inwardly rectifying potassium (GIRK) channels, which are involved in the regulation of excitability in the heart and brain. Using ML297, a small-molecule GIRK activator, along with channel blockers and cytoskeletal network inhibitors, we found that GIRK activation exerts its effects on cell shape by a mechanism which depends on actin but not the microtubule network. Because label-free real-time biosensing (i) quantitatively determines concentration dependency of GIRK activators, (ii) accurately assesses the impact of GIRK channel blockers, (iii) is high throughput-compatible, and (iv) visualizes previously unknown cellular consequences downstream of direct GIRK activation, we do not only provide a novel experimental strategy for identification of GIRK ligands but also an entirely new angle to probe GIRK (ligand) biology. We envision that DMR and CDS may add to the repertoire of technologies for systematic exploitation of ion channel function and, in turn, to the identification of novel GIRK ligands in order to treat cardiovascular and neurological disorders. American Chemical Society 2018-11-05 /pmc/articles/PMC6289404/ /pubmed/30555990 http://dx.doi.org/10.1021/acsomega.8b02254 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Krebs, Katrin M.
Pfeil, Eva M.
Simon, Katharina
Grundmann, Manuel
Häberlein, Felix
Bautista-Aguilera, Oscar M.
Gütschow, Michael
Weaver, C. David
Fleischmann, Bernd K.
Kostenis, Evi
Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title_full Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title_fullStr Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title_full_unstemmed Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title_short Label-Free Whole Cell Biosensing for High-Throughput Discovery of Activators and Inhibitors Targeting G Protein-Activated Inwardly Rectifying Potassium Channels
title_sort label-free whole cell biosensing for high-throughput discovery of activators and inhibitors targeting g protein-activated inwardly rectifying potassium channels
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289404/
https://www.ncbi.nlm.nih.gov/pubmed/30555990
http://dx.doi.org/10.1021/acsomega.8b02254
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