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ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1

Sodium transport via epithelial sodium channels (ENaC) expressed in alveolar epithelial cells (AEC) provides the driving force for removal of fluid from the alveolar space. The membrane-bound channel-activating protease 1 (CAP1/Prss8) activates ENaC in vitro in various expression systems. To study t...

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Autores principales: Planès, Carole, Randrianarison, Nadia H, Charles, Roch-Philippe, Frateschi, Simona, Cluzeaud, Françoise, Vuagniaux, Grégoire, Soler, Paul, Clerici, Christine, Rossier, Bernard C, Hummler, Edith
Formato: Online Artículo Texto
Lenguaje:English
Publicado: WILEY-VCH Verlag 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3377187/
https://www.ncbi.nlm.nih.gov/pubmed/20043279
http://dx.doi.org/10.1002/emmm.200900050
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author Planès, Carole
Randrianarison, Nadia H
Charles, Roch-Philippe
Frateschi, Simona
Cluzeaud, Françoise
Vuagniaux, Grégoire
Soler, Paul
Clerici, Christine
Rossier, Bernard C
Hummler, Edith
author_facet Planès, Carole
Randrianarison, Nadia H
Charles, Roch-Philippe
Frateschi, Simona
Cluzeaud, Françoise
Vuagniaux, Grégoire
Soler, Paul
Clerici, Christine
Rossier, Bernard C
Hummler, Edith
author_sort Planès, Carole
collection PubMed
description Sodium transport via epithelial sodium channels (ENaC) expressed in alveolar epithelial cells (AEC) provides the driving force for removal of fluid from the alveolar space. The membrane-bound channel-activating protease 1 (CAP1/Prss8) activates ENaC in vitro in various expression systems. To study the role of CAP1/Prss8 in alveolar sodium transport and lung fluid balance in vivo, we generated mice lacking CAP1/Prss8 in the alveolar epithelium using conditional Cre-loxP-mediated recombination. Deficiency of CAP1/Prss8 in AEC induced in vitro a 40% decrease in ENaC-mediated sodium currents. Sodium-driven alveolar fluid clearance (AFC) was reduced in CAP1/Prss8-deficient mice, due to a 48% decrease in amiloride-sensitive clearance, and was less sensitive to β(2)-agonist treatment. Intra-alveolar treatment with neutrophil elastase, a soluble serine protease activating ENaC at the cell surface, fully restored basal AFC and the stimulation by β(2)-agonists. Finally, acute volume-overload increased alveolar lining fluid volume in CAP1/Prss8-deficient mice. This study reveals that CAP1 plays a crucial role in the regulation of ENaC-mediated alveolar sodium and water transport and in mouse lung fluid balance.
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spelling pubmed-33771872012-09-17 ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1 Planès, Carole Randrianarison, Nadia H Charles, Roch-Philippe Frateschi, Simona Cluzeaud, Françoise Vuagniaux, Grégoire Soler, Paul Clerici, Christine Rossier, Bernard C Hummler, Edith EMBO Mol Med Research Articles Sodium transport via epithelial sodium channels (ENaC) expressed in alveolar epithelial cells (AEC) provides the driving force for removal of fluid from the alveolar space. The membrane-bound channel-activating protease 1 (CAP1/Prss8) activates ENaC in vitro in various expression systems. To study the role of CAP1/Prss8 in alveolar sodium transport and lung fluid balance in vivo, we generated mice lacking CAP1/Prss8 in the alveolar epithelium using conditional Cre-loxP-mediated recombination. Deficiency of CAP1/Prss8 in AEC induced in vitro a 40% decrease in ENaC-mediated sodium currents. Sodium-driven alveolar fluid clearance (AFC) was reduced in CAP1/Prss8-deficient mice, due to a 48% decrease in amiloride-sensitive clearance, and was less sensitive to β(2)-agonist treatment. Intra-alveolar treatment with neutrophil elastase, a soluble serine protease activating ENaC at the cell surface, fully restored basal AFC and the stimulation by β(2)-agonists. Finally, acute volume-overload increased alveolar lining fluid volume in CAP1/Prss8-deficient mice. This study reveals that CAP1 plays a crucial role in the regulation of ENaC-mediated alveolar sodium and water transport and in mouse lung fluid balance. WILEY-VCH Verlag 2010-01 /pmc/articles/PMC3377187/ /pubmed/20043279 http://dx.doi.org/10.1002/emmm.200900050 Text en Copyright © 2010 EMBO Molecular Medicine
spellingShingle Research Articles
Planès, Carole
Randrianarison, Nadia H
Charles, Roch-Philippe
Frateschi, Simona
Cluzeaud, Françoise
Vuagniaux, Grégoire
Soler, Paul
Clerici, Christine
Rossier, Bernard C
Hummler, Edith
ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title_full ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title_fullStr ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title_full_unstemmed ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title_short ENaC-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
title_sort enac-mediated alveolar fluid clearance and lung fluid balance depend on the channel-activating protease 1
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3377187/
https://www.ncbi.nlm.nih.gov/pubmed/20043279
http://dx.doi.org/10.1002/emmm.200900050
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