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A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen

Intracellular O(2) is a key regulator of NO signaling, yet most in vitro studies are conducted in atmospheric O(2) levels, hyperoxic with respect to the physiologic milieu. We investigated NO signaling in endothelial cells cultured in physiologic (5%) O(2) and stimulated with histamine or shear stre...

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Autores principales: Keeley, Thomas P., Siow, Richard C. M., Jacob, Ron, Mann, Giovanni E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Federation of American Societies for Experimental Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5690389/
https://www.ncbi.nlm.nih.gov/pubmed/28760745
http://dx.doi.org/10.1096/fj.201700211R
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author Keeley, Thomas P.
Siow, Richard C. M.
Jacob, Ron
Mann, Giovanni E.
author_facet Keeley, Thomas P.
Siow, Richard C. M.
Jacob, Ron
Mann, Giovanni E.
author_sort Keeley, Thomas P.
collection PubMed
description Intracellular O(2) is a key regulator of NO signaling, yet most in vitro studies are conducted in atmospheric O(2) levels, hyperoxic with respect to the physiologic milieu. We investigated NO signaling in endothelial cells cultured in physiologic (5%) O(2) and stimulated with histamine or shear stress. Culture of cells in 5% O(2) (>5 d) decreased histamine- but not shear stress–stimulated endothelial (e)NOS activity. Unlike cells adapted to a hypoxic environment (1% O(2)), those cultured in 5% O(2) still mobilized sufficient Ca(2+) to activate AMPK. Enhanced expression and membrane targeting of PP2A-C was observed in 5% O(2), resulting in greater interaction with eNOS in response to histamine. Moreover, increased dephosphorylation of eNOS in 5% O(2) was Ca(2+)-sensitive and reversed by okadaic acid or PP2A-C siRNA. The present findings establish that Ca(2+) mobilization stimulates both NO synthesis and PP2A-mediated eNOS dephosphorylation, thus constituting a novel negative feedback mechanism regulating eNOS activity not present in response to shear stress. This, coupled with enhanced NO bioavailability, underpins differences in NO signaling induced by inflammatory and physiologic stimuli that are apparent only in physiologic O(2) levels. Furthermore, an explicit delineation between physiologic normoxia and genuine hypoxia is defined here, with implications for our understanding of pathophysiological hypoxia.—Keeley, T. P., Siow, R. C. M., Jacob, R., Mann, G. E. A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen.
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spelling pubmed-56903892017-11-22 A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen Keeley, Thomas P. Siow, Richard C. M. Jacob, Ron Mann, Giovanni E. FASEB J Research Intracellular O(2) is a key regulator of NO signaling, yet most in vitro studies are conducted in atmospheric O(2) levels, hyperoxic with respect to the physiologic milieu. We investigated NO signaling in endothelial cells cultured in physiologic (5%) O(2) and stimulated with histamine or shear stress. Culture of cells in 5% O(2) (>5 d) decreased histamine- but not shear stress–stimulated endothelial (e)NOS activity. Unlike cells adapted to a hypoxic environment (1% O(2)), those cultured in 5% O(2) still mobilized sufficient Ca(2+) to activate AMPK. Enhanced expression and membrane targeting of PP2A-C was observed in 5% O(2), resulting in greater interaction with eNOS in response to histamine. Moreover, increased dephosphorylation of eNOS in 5% O(2) was Ca(2+)-sensitive and reversed by okadaic acid or PP2A-C siRNA. The present findings establish that Ca(2+) mobilization stimulates both NO synthesis and PP2A-mediated eNOS dephosphorylation, thus constituting a novel negative feedback mechanism regulating eNOS activity not present in response to shear stress. This, coupled with enhanced NO bioavailability, underpins differences in NO signaling induced by inflammatory and physiologic stimuli that are apparent only in physiologic O(2) levels. Furthermore, an explicit delineation between physiologic normoxia and genuine hypoxia is defined here, with implications for our understanding of pathophysiological hypoxia.—Keeley, T. P., Siow, R. C. M., Jacob, R., Mann, G. E. A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen. Federation of American Societies for Experimental Biology 2017-12 2017-07-31 /pmc/articles/PMC5690389/ /pubmed/28760745 http://dx.doi.org/10.1096/fj.201700211R Text en © The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 4.0 International (CC BY 4.0) (http://creativecommons.org/licenses/by/4.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Keeley, Thomas P.
Siow, Richard C. M.
Jacob, Ron
Mann, Giovanni E.
A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title_full A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title_fullStr A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title_full_unstemmed A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title_short A PP2A-mediated feedback mechanism controls Ca(2+)-dependent NO synthesis under physiological oxygen
title_sort pp2a-mediated feedback mechanism controls ca(2+)-dependent no synthesis under physiological oxygen
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5690389/
https://www.ncbi.nlm.nih.gov/pubmed/28760745
http://dx.doi.org/10.1096/fj.201700211R
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