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A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle

Chloride-proton exchange by the lysosomal anion transporter ClC-7/Ostm1 is of pivotal importance for the physiology of lysosomes and bone resorption. Mice lacking either ClC-7 or Ostm1 develop a lysosomal storage disease and mutations in either protein have been found to underlie osteopetrosis in mi...

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Autores principales: Sartelet, Arnaud, Stauber, Tobias, Coppieters, Wouter, Ludwig, Carmen F., Fasquelle, Corinne, Druet, Tom, Zhang, Zhiyan, Ahariz, Naima, Cambisano, Nadine, Jentsch, Thomas J., Charlier, Carole
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Limited 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3882054/
https://www.ncbi.nlm.nih.gov/pubmed/24159188
http://dx.doi.org/10.1242/dmm.012500
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author Sartelet, Arnaud
Stauber, Tobias
Coppieters, Wouter
Ludwig, Carmen F.
Fasquelle, Corinne
Druet, Tom
Zhang, Zhiyan
Ahariz, Naima
Cambisano, Nadine
Jentsch, Thomas J.
Charlier, Carole
author_facet Sartelet, Arnaud
Stauber, Tobias
Coppieters, Wouter
Ludwig, Carmen F.
Fasquelle, Corinne
Druet, Tom
Zhang, Zhiyan
Ahariz, Naima
Cambisano, Nadine
Jentsch, Thomas J.
Charlier, Carole
author_sort Sartelet, Arnaud
collection PubMed
description Chloride-proton exchange by the lysosomal anion transporter ClC-7/Ostm1 is of pivotal importance for the physiology of lysosomes and bone resorption. Mice lacking either ClC-7 or Ostm1 develop a lysosomal storage disease and mutations in either protein have been found to underlie osteopetrosis in mice and humans. Some human disease-causing CLCN7 mutations accelerate the usually slow voltage-dependent gating of ClC-7/Ostm1. However, it has remained unclear whether the fastened kinetics is indeed causative for the disease. Here we identified and characterized a new deleterious ClC-7 mutation in Belgian Blue cattle with a severe symptomatology including perinatal lethality and in most cases gingival hamartomas. By autozygosity mapping and genome-wide sequencing we found a handful of candidate variants, including a cluster of three private SNPs causing the substitution of a conserved tyrosine in the CBS2 domain of ClC-7 by glutamine. The case for ClC-7 was strengthened by subsequent examination of affected calves that revealed severe osteopetrosis. The Y750Q mutation largely preserved the lysosomal localization and assembly of ClC-7/Ostm1, but drastically accelerated its activation by membrane depolarization. These data provide first evidence that accelerated ClC-7/Ostm1 gating per se is deleterious, highlighting a physiological importance of the slow voltage-activation of ClC-7/Ostm1 in lysosomal function and bone resorption.
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spelling pubmed-38820542014-01-07 A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle Sartelet, Arnaud Stauber, Tobias Coppieters, Wouter Ludwig, Carmen F. Fasquelle, Corinne Druet, Tom Zhang, Zhiyan Ahariz, Naima Cambisano, Nadine Jentsch, Thomas J. Charlier, Carole Dis Model Mech Research Article Chloride-proton exchange by the lysosomal anion transporter ClC-7/Ostm1 is of pivotal importance for the physiology of lysosomes and bone resorption. Mice lacking either ClC-7 or Ostm1 develop a lysosomal storage disease and mutations in either protein have been found to underlie osteopetrosis in mice and humans. Some human disease-causing CLCN7 mutations accelerate the usually slow voltage-dependent gating of ClC-7/Ostm1. However, it has remained unclear whether the fastened kinetics is indeed causative for the disease. Here we identified and characterized a new deleterious ClC-7 mutation in Belgian Blue cattle with a severe symptomatology including perinatal lethality and in most cases gingival hamartomas. By autozygosity mapping and genome-wide sequencing we found a handful of candidate variants, including a cluster of three private SNPs causing the substitution of a conserved tyrosine in the CBS2 domain of ClC-7 by glutamine. The case for ClC-7 was strengthened by subsequent examination of affected calves that revealed severe osteopetrosis. The Y750Q mutation largely preserved the lysosomal localization and assembly of ClC-7/Ostm1, but drastically accelerated its activation by membrane depolarization. These data provide first evidence that accelerated ClC-7/Ostm1 gating per se is deleterious, highlighting a physiological importance of the slow voltage-activation of ClC-7/Ostm1 in lysosomal function and bone resorption. The Company of Biologists Limited 2014-01 2013-10-23 /pmc/articles/PMC3882054/ /pubmed/24159188 http://dx.doi.org/10.1242/dmm.012500 Text en © 2014. Published by The Company of Biologists Ltd This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Sartelet, Arnaud
Stauber, Tobias
Coppieters, Wouter
Ludwig, Carmen F.
Fasquelle, Corinne
Druet, Tom
Zhang, Zhiyan
Ahariz, Naima
Cambisano, Nadine
Jentsch, Thomas J.
Charlier, Carole
A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title_full A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title_fullStr A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title_full_unstemmed A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title_short A missense mutation accelerating the gating of the lysosomal Cl(−)/H(+)-exchanger ClC-7/Ostm1 causes osteopetrosis with gingival hamartomas in cattle
title_sort missense mutation accelerating the gating of the lysosomal cl(−)/h(+)-exchanger clc-7/ostm1 causes osteopetrosis with gingival hamartomas in cattle
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3882054/
https://www.ncbi.nlm.nih.gov/pubmed/24159188
http://dx.doi.org/10.1242/dmm.012500
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