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The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation

AIMS: Neutrophil trafficking within the vasculature strongly relies on intracellular calcium signalling. Sustained Ca(2+) influx into the cell requires a compensatory efflux of potassium to maintain membrane potential. Here, we aimed to investigate whether the voltage-gated potassium channel K(V)1.3...

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Autores principales: Immler, Roland, Nadolni, Wiebke, Bertsch, Annika, Morikis, Vasilios, Rohwedder, Ina, Masgrau-Alsina, Sergi, Schroll, Tobias, Yevtushenko, Anna, Soehnlein, Oliver, Moser, Markus, Gudermann, Thomas, Barnea, Eytan R, Rehberg, Markus, Simon, Scott I, Zierler, Susanna, Pruenster, Monika, Sperandio, Markus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953450/
https://www.ncbi.nlm.nih.gov/pubmed/33881519
http://dx.doi.org/10.1093/cvr/cvab133
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author Immler, Roland
Nadolni, Wiebke
Bertsch, Annika
Morikis, Vasilios
Rohwedder, Ina
Masgrau-Alsina, Sergi
Schroll, Tobias
Yevtushenko, Anna
Soehnlein, Oliver
Moser, Markus
Gudermann, Thomas
Barnea, Eytan R
Rehberg, Markus
Simon, Scott I
Zierler, Susanna
Pruenster, Monika
Sperandio, Markus
author_facet Immler, Roland
Nadolni, Wiebke
Bertsch, Annika
Morikis, Vasilios
Rohwedder, Ina
Masgrau-Alsina, Sergi
Schroll, Tobias
Yevtushenko, Anna
Soehnlein, Oliver
Moser, Markus
Gudermann, Thomas
Barnea, Eytan R
Rehberg, Markus
Simon, Scott I
Zierler, Susanna
Pruenster, Monika
Sperandio, Markus
author_sort Immler, Roland
collection PubMed
description AIMS: Neutrophil trafficking within the vasculature strongly relies on intracellular calcium signalling. Sustained Ca(2+) influx into the cell requires a compensatory efflux of potassium to maintain membrane potential. Here, we aimed to investigate whether the voltage-gated potassium channel K(V)1.3 regulates neutrophil function during the acute inflammatory process by affecting sustained Ca(2+) signalling. METHODS AND RESULTS: Using in vitro assays and electrophysiological techniques, we show that K(V)1.3 is functionally expressed in human neutrophils regulating sustained store-operated Ca(2+) entry through membrane potential stabilizing K(+) efflux. Inhibition of K(V)1.3 on neutrophils by the specific inhibitor 5-(4-Phenoxybutoxy)psoralen (PAP-1) impaired intracellular Ca(2+) signalling, thereby preventing cellular spreading, adhesion strengthening, and appropriate crawling under flow conditions in vitro. Using intravital microscopy, we show that pharmacological blockade or genetic deletion of K(V)1.3 in mice decreased neutrophil adhesion in a blood flow dependent fashion in inflamed cremaster muscle venules. Furthermore, we identified K(V)1.3 as a critical component for neutrophil extravasation into the inflamed peritoneal cavity. Finally, we also revealed impaired phagocytosis of Escherichia coli particles by neutrophils in the absence of K(V)1.3. CONCLUSION: We show that the voltage-gated potassium channel K(V)1.3 is critical for Ca(2+) signalling and neutrophil trafficking during acute inflammatory processes. Our findings do not only provide evidence for a role of K(V)1.3 for sustained calcium signalling in neutrophils affecting key functions of these cells, they also open up new therapeutic approaches to treat inflammatory disorders characterized by overwhelming neutrophil infiltration.
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spelling pubmed-89534502022-03-28 The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation Immler, Roland Nadolni, Wiebke Bertsch, Annika Morikis, Vasilios Rohwedder, Ina Masgrau-Alsina, Sergi Schroll, Tobias Yevtushenko, Anna Soehnlein, Oliver Moser, Markus Gudermann, Thomas Barnea, Eytan R Rehberg, Markus Simon, Scott I Zierler, Susanna Pruenster, Monika Sperandio, Markus Cardiovasc Res Original Articles AIMS: Neutrophil trafficking within the vasculature strongly relies on intracellular calcium signalling. Sustained Ca(2+) influx into the cell requires a compensatory efflux of potassium to maintain membrane potential. Here, we aimed to investigate whether the voltage-gated potassium channel K(V)1.3 regulates neutrophil function during the acute inflammatory process by affecting sustained Ca(2+) signalling. METHODS AND RESULTS: Using in vitro assays and electrophysiological techniques, we show that K(V)1.3 is functionally expressed in human neutrophils regulating sustained store-operated Ca(2+) entry through membrane potential stabilizing K(+) efflux. Inhibition of K(V)1.3 on neutrophils by the specific inhibitor 5-(4-Phenoxybutoxy)psoralen (PAP-1) impaired intracellular Ca(2+) signalling, thereby preventing cellular spreading, adhesion strengthening, and appropriate crawling under flow conditions in vitro. Using intravital microscopy, we show that pharmacological blockade or genetic deletion of K(V)1.3 in mice decreased neutrophil adhesion in a blood flow dependent fashion in inflamed cremaster muscle venules. Furthermore, we identified K(V)1.3 as a critical component for neutrophil extravasation into the inflamed peritoneal cavity. Finally, we also revealed impaired phagocytosis of Escherichia coli particles by neutrophils in the absence of K(V)1.3. CONCLUSION: We show that the voltage-gated potassium channel K(V)1.3 is critical for Ca(2+) signalling and neutrophil trafficking during acute inflammatory processes. Our findings do not only provide evidence for a role of K(V)1.3 for sustained calcium signalling in neutrophils affecting key functions of these cells, they also open up new therapeutic approaches to treat inflammatory disorders characterized by overwhelming neutrophil infiltration. Oxford University Press 2021-04-21 /pmc/articles/PMC8953450/ /pubmed/33881519 http://dx.doi.org/10.1093/cvr/cvab133 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of the European Society of Cardiology. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Articles
Immler, Roland
Nadolni, Wiebke
Bertsch, Annika
Morikis, Vasilios
Rohwedder, Ina
Masgrau-Alsina, Sergi
Schroll, Tobias
Yevtushenko, Anna
Soehnlein, Oliver
Moser, Markus
Gudermann, Thomas
Barnea, Eytan R
Rehberg, Markus
Simon, Scott I
Zierler, Susanna
Pruenster, Monika
Sperandio, Markus
The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title_full The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title_fullStr The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title_full_unstemmed The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title_short The voltage-gated potassium channel K(V)1.3 regulates neutrophil recruitment during inflammation
title_sort voltage-gated potassium channel k(v)1.3 regulates neutrophil recruitment during inflammation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953450/
https://www.ncbi.nlm.nih.gov/pubmed/33881519
http://dx.doi.org/10.1093/cvr/cvab133
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