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A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics

The establishment and maintenance of ion gradients between the interior of lysosomes and the cytosol are crucial for numerous cellular and organismal functions. Numerous ion transport proteins ensure the required variation in luminal concentrations of the different ions along the endocytic pathway t...

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Autores principales: Astaburuaga, Rosario, Quintanar Haro, Orlando Daniel, Stauber, Tobias, Relógio, Angela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6848924/
https://www.ncbi.nlm.nih.gov/pubmed/31623161
http://dx.doi.org/10.3390/cells8101263
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author Astaburuaga, Rosario
Quintanar Haro, Orlando Daniel
Stauber, Tobias
Relógio, Angela
author_facet Astaburuaga, Rosario
Quintanar Haro, Orlando Daniel
Stauber, Tobias
Relógio, Angela
author_sort Astaburuaga, Rosario
collection PubMed
description The establishment and maintenance of ion gradients between the interior of lysosomes and the cytosol are crucial for numerous cellular and organismal functions. Numerous ion transport proteins ensure the required variation in luminal concentrations of the different ions along the endocytic pathway to fit the needs of the organelles. Failures in keeping proper ion homeostasis have pathological consequences. Accordingly, several human diseases are caused by the dysfunction of ion transporters. These include osteopetrosis, caused by the dysfunction of Cl(−)/H(+) exchange by the lysosomal transporter ClC-7. To better understand how chloride transport affects lysosomal ion homeostasis and how its disruption impinges on lysosomal function, we developed a mathematical model of lysosomal ion homeostasis including Ca(2+) dynamics. The model recapitulates known biophysical properties of ClC-7 and enables the investigation of its differential activation kinetics on lysosomal ion homeostasis. We show that normal functioning of ClC-7 supports the acidification process, is associated with increased luminal concentrations of sodium, potassium, and chloride, and leads to a higher Ca(2+) uptake and release. Our model highlights the role of ClC-7 in lysosomal acidification and shows the existence of differential Ca(2+) dynamics upon perturbations of Cl(−)/H(+) exchange and its activation kinetics, with possible pathological consequences.
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spelling pubmed-68489242019-11-18 A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics Astaburuaga, Rosario Quintanar Haro, Orlando Daniel Stauber, Tobias Relógio, Angela Cells Article The establishment and maintenance of ion gradients between the interior of lysosomes and the cytosol are crucial for numerous cellular and organismal functions. Numerous ion transport proteins ensure the required variation in luminal concentrations of the different ions along the endocytic pathway to fit the needs of the organelles. Failures in keeping proper ion homeostasis have pathological consequences. Accordingly, several human diseases are caused by the dysfunction of ion transporters. These include osteopetrosis, caused by the dysfunction of Cl(−)/H(+) exchange by the lysosomal transporter ClC-7. To better understand how chloride transport affects lysosomal ion homeostasis and how its disruption impinges on lysosomal function, we developed a mathematical model of lysosomal ion homeostasis including Ca(2+) dynamics. The model recapitulates known biophysical properties of ClC-7 and enables the investigation of its differential activation kinetics on lysosomal ion homeostasis. We show that normal functioning of ClC-7 supports the acidification process, is associated with increased luminal concentrations of sodium, potassium, and chloride, and leads to a higher Ca(2+) uptake and release. Our model highlights the role of ClC-7 in lysosomal acidification and shows the existence of differential Ca(2+) dynamics upon perturbations of Cl(−)/H(+) exchange and its activation kinetics, with possible pathological consequences. MDPI 2019-10-16 /pmc/articles/PMC6848924/ /pubmed/31623161 http://dx.doi.org/10.3390/cells8101263 Text en © 2019 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
Astaburuaga, Rosario
Quintanar Haro, Orlando Daniel
Stauber, Tobias
Relógio, Angela
A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title_full A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title_fullStr A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title_full_unstemmed A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title_short A Mathematical Model of Lysosomal Ion Homeostasis Points to Differential Effects of Cl(−) Transport in Ca(2+) Dynamics
title_sort mathematical model of lysosomal ion homeostasis points to differential effects of cl(−) transport in ca(2+) dynamics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6848924/
https://www.ncbi.nlm.nih.gov/pubmed/31623161
http://dx.doi.org/10.3390/cells8101263
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