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Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations

Plasma membrane Ca(2+)-ATPase (PMCA) by extruding Ca(2+) outside the cell, actively participates in the regulation of intracellular Ca(2+) concentration. Acting as Ca(2+)/H(+) counter-transporter, PMCA transports large quantities of protons which may affect organellar pH homeostasis. PMCA exists in...

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Autores principales: Boczek, Tomasz, Lisek, Malwina, Ferenc, Bozena, Kowalski, Antoni, Stepinski, Dariusz, Wiktorska, Magdalena, Zylinska, Ludmila
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4094512/
https://www.ncbi.nlm.nih.gov/pubmed/25014339
http://dx.doi.org/10.1371/journal.pone.0102352
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author Boczek, Tomasz
Lisek, Malwina
Ferenc, Bozena
Kowalski, Antoni
Stepinski, Dariusz
Wiktorska, Magdalena
Zylinska, Ludmila
author_facet Boczek, Tomasz
Lisek, Malwina
Ferenc, Bozena
Kowalski, Antoni
Stepinski, Dariusz
Wiktorska, Magdalena
Zylinska, Ludmila
author_sort Boczek, Tomasz
collection PubMed
description Plasma membrane Ca(2+)-ATPase (PMCA) by extruding Ca(2+) outside the cell, actively participates in the regulation of intracellular Ca(2+) concentration. Acting as Ca(2+)/H(+) counter-transporter, PMCA transports large quantities of protons which may affect organellar pH homeostasis. PMCA exists in four isoforms (PMCA1-4) but only PMCA2 and PMCA3, due to their unique localization and features, perform more specialized function. Using differentiated PC12 cells we assessed the role of PMCA2 and PMCA3 in the regulation of intracellular pH in steady-state conditions and during Ca(2+) overload evoked by 59 mM KCl. We observed that manipulation in PMCA expression elevated pH(mito) and pH(cyto) but only in PMCA2-downregulated cells higher mitochondrial pH gradient (ΔpH) was found in steady-state conditions. Our data also demonstrated that PMCA2 or PMCA3 knock-down delayed Ca(2+) clearance and partially attenuated cellular acidification during KCl-stimulated Ca(2+) influx. Because SERCA and NCX modulated cellular pH response in neglectable manner, and all conditions used to inhibit PMCA prevented KCl-induced pH drop, we considered PMCA2 and PMCA3 as mainly responsible for transport of protons to intracellular milieu. In steady-state conditions, higher TMRE uptake in PMCA2-knockdown line was driven by plasma membrane potential (Ψp). Nonetheless, mitochondrial membrane potential (Ψm) in this line was dissipated during Ca(2+) overload. Cyclosporin and bongkrekic acid prevented Ψ(m) loss suggesting the involvement of Ca(2+)-driven opening of mitochondrial permeability transition pore as putative underlying mechanism. The findings presented here demonstrate a crucial role of PMCA2 and PMCA3 in regulation of cellular pH and indicate PMCA membrane composition important for preservation of electrochemical gradient.
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spelling pubmed-40945122014-07-15 Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations Boczek, Tomasz Lisek, Malwina Ferenc, Bozena Kowalski, Antoni Stepinski, Dariusz Wiktorska, Magdalena Zylinska, Ludmila PLoS One Research Article Plasma membrane Ca(2+)-ATPase (PMCA) by extruding Ca(2+) outside the cell, actively participates in the regulation of intracellular Ca(2+) concentration. Acting as Ca(2+)/H(+) counter-transporter, PMCA transports large quantities of protons which may affect organellar pH homeostasis. PMCA exists in four isoforms (PMCA1-4) but only PMCA2 and PMCA3, due to their unique localization and features, perform more specialized function. Using differentiated PC12 cells we assessed the role of PMCA2 and PMCA3 in the regulation of intracellular pH in steady-state conditions and during Ca(2+) overload evoked by 59 mM KCl. We observed that manipulation in PMCA expression elevated pH(mito) and pH(cyto) but only in PMCA2-downregulated cells higher mitochondrial pH gradient (ΔpH) was found in steady-state conditions. Our data also demonstrated that PMCA2 or PMCA3 knock-down delayed Ca(2+) clearance and partially attenuated cellular acidification during KCl-stimulated Ca(2+) influx. Because SERCA and NCX modulated cellular pH response in neglectable manner, and all conditions used to inhibit PMCA prevented KCl-induced pH drop, we considered PMCA2 and PMCA3 as mainly responsible for transport of protons to intracellular milieu. In steady-state conditions, higher TMRE uptake in PMCA2-knockdown line was driven by plasma membrane potential (Ψp). Nonetheless, mitochondrial membrane potential (Ψm) in this line was dissipated during Ca(2+) overload. Cyclosporin and bongkrekic acid prevented Ψ(m) loss suggesting the involvement of Ca(2+)-driven opening of mitochondrial permeability transition pore as putative underlying mechanism. The findings presented here demonstrate a crucial role of PMCA2 and PMCA3 in regulation of cellular pH and indicate PMCA membrane composition important for preservation of electrochemical gradient. Public Library of Science 2014-07-11 /pmc/articles/PMC4094512/ /pubmed/25014339 http://dx.doi.org/10.1371/journal.pone.0102352 Text en © 2014 Boczek 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
Boczek, Tomasz
Lisek, Malwina
Ferenc, Bozena
Kowalski, Antoni
Stepinski, Dariusz
Wiktorska, Magdalena
Zylinska, Ludmila
Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title_full Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title_fullStr Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title_full_unstemmed Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title_short Plasma Membrane Ca(2+)-ATPase Isoforms Composition Regulates Cellular pH Homeostasis in Differentiating PC12 Cells in a Manner Dependent on Cytosolic Ca(2+) Elevations
title_sort plasma membrane ca(2+)-atpase isoforms composition regulates cellular ph homeostasis in differentiating pc12 cells in a manner dependent on cytosolic ca(2+) elevations
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4094512/
https://www.ncbi.nlm.nih.gov/pubmed/25014339
http://dx.doi.org/10.1371/journal.pone.0102352
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