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Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis

Defective lysosomal acidification is responsible for a large range of multi-systemic disorders associated with impaired autophagy. Diseases caused by mutations in the VMA21 gene stand as exceptions, specifically affecting skeletal muscle (X-linked Myopathy with Excessive Autophagy, XMEA) or liver (C...

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Autores principales: Cocchiararo, Ilaria, Cattaneo, Olivia, Rajendran, Jayasimman, Chabry, Florent, Cornut, Mélanie, Soldati, Hadrien, Bigot, Anne, Mamchaoui, Kamel, Gibertini, Sara, Bouche, Axelle, Ham, Daniel J, Laumonier, Thomas, Prola, Alexandre, Castets, Perrine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10695681/
https://www.ncbi.nlm.nih.gov/pubmed/37756622
http://dx.doi.org/10.1093/hmg/ddad164
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author Cocchiararo, Ilaria
Cattaneo, Olivia
Rajendran, Jayasimman
Chabry, Florent
Cornut, Mélanie
Soldati, Hadrien
Bigot, Anne
Mamchaoui, Kamel
Gibertini, Sara
Bouche, Axelle
Ham, Daniel J
Laumonier, Thomas
Prola, Alexandre
Castets, Perrine
author_facet Cocchiararo, Ilaria
Cattaneo, Olivia
Rajendran, Jayasimman
Chabry, Florent
Cornut, Mélanie
Soldati, Hadrien
Bigot, Anne
Mamchaoui, Kamel
Gibertini, Sara
Bouche, Axelle
Ham, Daniel J
Laumonier, Thomas
Prola, Alexandre
Castets, Perrine
author_sort Cocchiararo, Ilaria
collection PubMed
description Defective lysosomal acidification is responsible for a large range of multi-systemic disorders associated with impaired autophagy. Diseases caused by mutations in the VMA21 gene stand as exceptions, specifically affecting skeletal muscle (X-linked Myopathy with Excessive Autophagy, XMEA) or liver (Congenital Disorder of Glycosylation). VMA21 chaperones vacuolar (v-) ATPase assembly, which is ubiquitously required for proper lysosomal acidification. The reason VMA21 deficiencies affect specific, but divergent tissues remains unknown. Here, we show that VMA21 encodes a yet-unreported long protein isoform, in addition to the previously described short isoform, which we name VMA21-120 and VMA21-101, respectively. In contrast to the ubiquitous pattern of VMA21-101, VMA21-120 was predominantly expressed in skeletal muscle, and rapidly up-regulated upon differentiation of mouse and human muscle precursors. Accordingly, VMA21-120 accumulated during development, regeneration and denervation of mouse skeletal muscle. In contrast, neither induction nor blockade of autophagy, in vitro and in vivo, strongly affected VMA21 isoform expression. Interestingly, VMA21-101 and VMA21-120 both localized to the sarcoplasmic reticulum of muscle cells, and interacted with the v-ATPase. While VMA21 deficiency impairs autophagy, VMA21-101 or VMA21-120 overexpression had limited impact on autophagic flux in muscle cells. Importantly, XMEA-associated mutations lead to both VMA21-101 deficiency and loss of VMA21-120 expression. These results provide important insights into the clinical diversity of VMA21-related diseases and uncover a muscle-specific VMA21 isoform that potently contributes to XMEA pathogenesis.
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spelling pubmed-106956812023-12-05 Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis Cocchiararo, Ilaria Cattaneo, Olivia Rajendran, Jayasimman Chabry, Florent Cornut, Mélanie Soldati, Hadrien Bigot, Anne Mamchaoui, Kamel Gibertini, Sara Bouche, Axelle Ham, Daniel J Laumonier, Thomas Prola, Alexandre Castets, Perrine Hum Mol Genet Original Article Defective lysosomal acidification is responsible for a large range of multi-systemic disorders associated with impaired autophagy. Diseases caused by mutations in the VMA21 gene stand as exceptions, specifically affecting skeletal muscle (X-linked Myopathy with Excessive Autophagy, XMEA) or liver (Congenital Disorder of Glycosylation). VMA21 chaperones vacuolar (v-) ATPase assembly, which is ubiquitously required for proper lysosomal acidification. The reason VMA21 deficiencies affect specific, but divergent tissues remains unknown. Here, we show that VMA21 encodes a yet-unreported long protein isoform, in addition to the previously described short isoform, which we name VMA21-120 and VMA21-101, respectively. In contrast to the ubiquitous pattern of VMA21-101, VMA21-120 was predominantly expressed in skeletal muscle, and rapidly up-regulated upon differentiation of mouse and human muscle precursors. Accordingly, VMA21-120 accumulated during development, regeneration and denervation of mouse skeletal muscle. In contrast, neither induction nor blockade of autophagy, in vitro and in vivo, strongly affected VMA21 isoform expression. Interestingly, VMA21-101 and VMA21-120 both localized to the sarcoplasmic reticulum of muscle cells, and interacted with the v-ATPase. While VMA21 deficiency impairs autophagy, VMA21-101 or VMA21-120 overexpression had limited impact on autophagic flux in muscle cells. Importantly, XMEA-associated mutations lead to both VMA21-101 deficiency and loss of VMA21-120 expression. These results provide important insights into the clinical diversity of VMA21-related diseases and uncover a muscle-specific VMA21 isoform that potently contributes to XMEA pathogenesis. Oxford University Press 2023-09-26 /pmc/articles/PMC10695681/ /pubmed/37756622 http://dx.doi.org/10.1093/hmg/ddad164 Text en © The Author(s) 2023. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Article
Cocchiararo, Ilaria
Cattaneo, Olivia
Rajendran, Jayasimman
Chabry, Florent
Cornut, Mélanie
Soldati, Hadrien
Bigot, Anne
Mamchaoui, Kamel
Gibertini, Sara
Bouche, Axelle
Ham, Daniel J
Laumonier, Thomas
Prola, Alexandre
Castets, Perrine
Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title_full Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title_fullStr Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title_full_unstemmed Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title_short Identification of a muscle-specific isoform of VMA21 as a potent actor in X-linked myopathy with excessive autophagy pathogenesis
title_sort identification of a muscle-specific isoform of vma21 as a potent actor in x-linked myopathy with excessive autophagy pathogenesis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10695681/
https://www.ncbi.nlm.nih.gov/pubmed/37756622
http://dx.doi.org/10.1093/hmg/ddad164
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