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Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage

The Na(+)/H (+) Exchanger isoform 1 (NHE1) is a highly versatile, broadly distributed and precisely controlled transport protein that mediates volume and pH regulation in most cell types. NHE1 phosphorylation contributes to Na(+)/H(+) exchange activity in response to phorbol esters, growth factors o...

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Autores principales: Rigor, Robert R., Damoc, Catalina, Phinney, Brett S., Cala, Peter M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3247252/
https://www.ncbi.nlm.nih.gov/pubmed/22216214
http://dx.doi.org/10.1371/journal.pone.0029210
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author Rigor, Robert R.
Damoc, Catalina
Phinney, Brett S.
Cala, Peter M.
author_facet Rigor, Robert R.
Damoc, Catalina
Phinney, Brett S.
Cala, Peter M.
author_sort Rigor, Robert R.
collection PubMed
description The Na(+)/H (+) Exchanger isoform 1 (NHE1) is a highly versatile, broadly distributed and precisely controlled transport protein that mediates volume and pH regulation in most cell types. NHE1 phosphorylation contributes to Na(+)/H(+) exchange activity in response to phorbol esters, growth factors or protein phosphatase inhibitors, but has not been observed during activation by osmotic cell shrinkage (OCS). We examined the role of NHE1 phosphorylation during activation by OCS, using an ideal model system, the Amphiuma tridactylum red blood cell (atRBC). Na(+)/H(+) exchange in atRBCs is mediated by an NHE1 homolog (atNHE1) that is 79% identical to human NHE1 at the amino acid level. NHE1 activity in atRBCs is exceptionally robust in that transport activity can increase more than 2 orders of magnitude from rest to full activation. Michaelis-Menten transport kinetics indicates that either OCS or treatment with the phosphatase inhibitor calyculin-A (CLA) increase Na(+) transport capacity without affecting transport affinity (K(m) = 44 mM) in atRBCs. CLA and OCS act non-additively to activate atNHE1, indicating convergent, phosphorylation-dependent signaling in atNHE1 activation. In situ (32)P labeling and immunoprecipitation demonstrates that the net phosphorylation of atNHE1 is increased 4-fold during OCS coinciding with a more than 2-order increase in Na(+) transport activity. This is the first reported evidence of increased NHE1 phosphorylation during OCS in any vertebrate cell type. Finally, liquid chromatography and mass spectrometry (LC-MS/MS) analysis of atNHE1 immunoprecipitated from atRBC membranes reveals 9 phosphorylated serine/threonine residues, suggesting that activation of atNHE1 involves multiple phosphorylation and/or dephosphorylation events.
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spelling pubmed-32472522012-01-03 Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage Rigor, Robert R. Damoc, Catalina Phinney, Brett S. Cala, Peter M. PLoS One Research Article The Na(+)/H (+) Exchanger isoform 1 (NHE1) is a highly versatile, broadly distributed and precisely controlled transport protein that mediates volume and pH regulation in most cell types. NHE1 phosphorylation contributes to Na(+)/H(+) exchange activity in response to phorbol esters, growth factors or protein phosphatase inhibitors, but has not been observed during activation by osmotic cell shrinkage (OCS). We examined the role of NHE1 phosphorylation during activation by OCS, using an ideal model system, the Amphiuma tridactylum red blood cell (atRBC). Na(+)/H(+) exchange in atRBCs is mediated by an NHE1 homolog (atNHE1) that is 79% identical to human NHE1 at the amino acid level. NHE1 activity in atRBCs is exceptionally robust in that transport activity can increase more than 2 orders of magnitude from rest to full activation. Michaelis-Menten transport kinetics indicates that either OCS or treatment with the phosphatase inhibitor calyculin-A (CLA) increase Na(+) transport capacity without affecting transport affinity (K(m) = 44 mM) in atRBCs. CLA and OCS act non-additively to activate atNHE1, indicating convergent, phosphorylation-dependent signaling in atNHE1 activation. In situ (32)P labeling and immunoprecipitation demonstrates that the net phosphorylation of atNHE1 is increased 4-fold during OCS coinciding with a more than 2-order increase in Na(+) transport activity. This is the first reported evidence of increased NHE1 phosphorylation during OCS in any vertebrate cell type. Finally, liquid chromatography and mass spectrometry (LC-MS/MS) analysis of atNHE1 immunoprecipitated from atRBC membranes reveals 9 phosphorylated serine/threonine residues, suggesting that activation of atNHE1 involves multiple phosphorylation and/or dephosphorylation events. Public Library of Science 2011-12-28 /pmc/articles/PMC3247252/ /pubmed/22216214 http://dx.doi.org/10.1371/journal.pone.0029210 Text en Rigor et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Rigor, Robert R.
Damoc, Catalina
Phinney, Brett S.
Cala, Peter M.
Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title_full Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title_fullStr Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title_full_unstemmed Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title_short Phosphorylation and Activation of the Plasma Membrane Na(+)/H(+) Exchanger (NHE1) during Osmotic Cell Shrinkage
title_sort phosphorylation and activation of the plasma membrane na(+)/h(+) exchanger (nhe1) during osmotic cell shrinkage
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3247252/
https://www.ncbi.nlm.nih.gov/pubmed/22216214
http://dx.doi.org/10.1371/journal.pone.0029210
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