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Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins

Neuronal activity leads to an influx of Na(+) that needs to be rapidly cleared. The sodium-potassium ATPase (Na,K-ATPase) exports three Na(+) ions and imports two K(+) ions at the expense of one ATP molecule. Na,K-ATPase turnover accounts for the majority of energy used by the brain. To prevent an e...

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Autores principales: Liebmann, Thomas, Fritz, Nicolas, Kruusmägi, Markus, Westin, Linda, Bernhem, Kristoffer, Bondar, Alexander, Aperia, Anita, Brismar, Hjalmar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6121408/
https://www.ncbi.nlm.nih.gov/pubmed/30060621
http://dx.doi.org/10.3390/ijms19082214
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author Liebmann, Thomas
Fritz, Nicolas
Kruusmägi, Markus
Westin, Linda
Bernhem, Kristoffer
Bondar, Alexander
Aperia, Anita
Brismar, Hjalmar
author_facet Liebmann, Thomas
Fritz, Nicolas
Kruusmägi, Markus
Westin, Linda
Bernhem, Kristoffer
Bondar, Alexander
Aperia, Anita
Brismar, Hjalmar
author_sort Liebmann, Thomas
collection PubMed
description Neuronal activity leads to an influx of Na(+) that needs to be rapidly cleared. The sodium-potassium ATPase (Na,K-ATPase) exports three Na(+) ions and imports two K(+) ions at the expense of one ATP molecule. Na,K-ATPase turnover accounts for the majority of energy used by the brain. To prevent an energy crisis, the energy expense for Na(+) clearance must provide an optimal effect. Here we report that in rat primary hippocampal neurons, the clearance of Na(+) ions is more efficient if Na,K-ATPase is laterally mobile in the membrane than if it is clustered. Using fluorescence recovery after photobleaching and single particle tracking analysis, we show that the ubiquitous α1 and the neuron-specific α3 catalytic subunits as well as the supportive β1 subunit of Na,K-ATPase are highly mobile in the plasma membrane. We show that cross-linking of the β1 subunit with polyclonal antibodies or exposure to Modulator of Na,K-ATPase (MONaKA), a secreted protein which binds to the extracellular domain of the β subunit, clusters the α3 subunit in the membrane and restricts its mobility. We demonstrate that clustering, caused by cross-linking or by exposure to MONaKA, reduces the efficiency in restoring intracellular Na(+). These results demonstrate that extracellular interactions with Na,K-ATPase regulate the Na(+) extrusion efficiency with consequences for neuronal energy balance.
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spelling pubmed-61214082018-09-07 Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins Liebmann, Thomas Fritz, Nicolas Kruusmägi, Markus Westin, Linda Bernhem, Kristoffer Bondar, Alexander Aperia, Anita Brismar, Hjalmar Int J Mol Sci Article Neuronal activity leads to an influx of Na(+) that needs to be rapidly cleared. The sodium-potassium ATPase (Na,K-ATPase) exports three Na(+) ions and imports two K(+) ions at the expense of one ATP molecule. Na,K-ATPase turnover accounts for the majority of energy used by the brain. To prevent an energy crisis, the energy expense for Na(+) clearance must provide an optimal effect. Here we report that in rat primary hippocampal neurons, the clearance of Na(+) ions is more efficient if Na,K-ATPase is laterally mobile in the membrane than if it is clustered. Using fluorescence recovery after photobleaching and single particle tracking analysis, we show that the ubiquitous α1 and the neuron-specific α3 catalytic subunits as well as the supportive β1 subunit of Na,K-ATPase are highly mobile in the plasma membrane. We show that cross-linking of the β1 subunit with polyclonal antibodies or exposure to Modulator of Na,K-ATPase (MONaKA), a secreted protein which binds to the extracellular domain of the β subunit, clusters the α3 subunit in the membrane and restricts its mobility. We demonstrate that clustering, caused by cross-linking or by exposure to MONaKA, reduces the efficiency in restoring intracellular Na(+). These results demonstrate that extracellular interactions with Na,K-ATPase regulate the Na(+) extrusion efficiency with consequences for neuronal energy balance. MDPI 2018-07-29 /pmc/articles/PMC6121408/ /pubmed/30060621 http://dx.doi.org/10.3390/ijms19082214 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liebmann, Thomas
Fritz, Nicolas
Kruusmägi, Markus
Westin, Linda
Bernhem, Kristoffer
Bondar, Alexander
Aperia, Anita
Brismar, Hjalmar
Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title_full Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title_fullStr Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title_full_unstemmed Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title_short Regulation of Neuronal Na,K-ATPase by Extracellular Scaffolding Proteins
title_sort regulation of neuronal na,k-atpase by extracellular scaffolding proteins
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6121408/
https://www.ncbi.nlm.nih.gov/pubmed/30060621
http://dx.doi.org/10.3390/ijms19082214
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