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Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis

BACKGROUND: Caveolins are the principal structural components of plasma membrane caveolae. Dominant pathogenic mutations in the muscle‐specific caveolin‐3 (Cav3) gene isoform, such as the limb girdle muscular dystrophy type 1C (LGMD‐1C) P104L mutation, result in dramatic loss of the Cav3 protein and...

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Autores principales: Shah, Dinesh S., Nisr, Raid B., Krasteva‐Christ, Gabriela, Hundal, Harinder S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10570080/
https://www.ncbi.nlm.nih.gov/pubmed/37671684
http://dx.doi.org/10.1002/jcsm.13317
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author Shah, Dinesh S.
Nisr, Raid B.
Krasteva‐Christ, Gabriela
Hundal, Harinder S.
author_facet Shah, Dinesh S.
Nisr, Raid B.
Krasteva‐Christ, Gabriela
Hundal, Harinder S.
author_sort Shah, Dinesh S.
collection PubMed
description BACKGROUND: Caveolins are the principal structural components of plasma membrane caveolae. Dominant pathogenic mutations in the muscle‐specific caveolin‐3 (Cav3) gene isoform, such as the limb girdle muscular dystrophy type 1C (LGMD‐1C) P104L mutation, result in dramatic loss of the Cav3 protein and pathophysiological muscle weakness/wasting. We hypothesize that such muscle degeneration may be linked to disturbances in signalling events that impact protein turnover. Herein, we report studies assessing the effects of Cav3 deficiency on mammalian or mechanistic target of rapamycin complex 1 (mTORC1) signalling in skeletal muscle cells. METHODS: L6 myoblasts were stably transfected with Cav3(P104L) or expression of native Cav3 was abolished by CRISPR/Cas9 genome editing (Cav3 knockout [Cav3KO]) prior to performing subcellular fractionation and immunoblotting, analysis of real‐time mitochondrial respiration or fixed cell immunocytochemistry. Skeletal muscle from wild‐type and Cav3(−/−) mice was processed for immunoblot analysis of downstream mTORC1 substrate phosphorylation. RESULTS: Cav3 was detected in lysosomal‐enriched membranes isolated from L6 myoblasts and observed by confocal microscopy to co‐localize with lysosomal‐specific markers. Cav3(P104L) expression, which results in significant (~95%) loss of native Cav3, or CRISPR/Cas9‐mediated Cav3KO, reduced amino acid‐dependent mTORC1 activation. The decline in mTORC1‐directed signalling was detected by immunoblot analysis of L6 muscle cells and gastrocnemius Cav3(−/−) mouse muscle as judged by reduced phosphorylation of mTORC1 substrates that play key roles in the initiation of protein synthesis (4EBP1(S65) and S6K1(T389)). S6K1(T389) and 4EBP1(S65) phosphorylation reduced by over 75% and 80% in Cav3KO muscle cells and by over 90% and 30% in Cav3(−/−) mouse skeletal muscle, respectively. The reduction in protein synthetic capacity in L6 muscle cells was confirmed by analysis of puromycylated peptides using the SUnSET assay. Cav3 loss was also associated with a 26% increase in lysosomal cholesterol, and pharmacological manipulation of lysosomal cholesterol was effective in replicating the reduction in mTORC1 activity observed in Cav3KO cells. Notably, re‐expression of Cav3 in Cav3KO myoblasts normalized lysosomal cholesterol content, which coincided with a recovery in protein translation and an associated increase in mTORC1‐directed phosphorylation of downstream targets. CONCLUSIONS: Our findings indicate that Cav3 can localize on lysosomal membranes and is a novel regulator of mTORC1 signalling in muscle. Cav3 deficiency associated with the Cav3(P104L) mutation impairs mTORC1 activation and protein synthetic capacity in skeletal muscle cells, which may be linked to disturbances in lysosomal cholesterol trafficking and contribute to the pathology of LGMD‐1C.
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spelling pubmed-105700802023-10-14 Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis Shah, Dinesh S. Nisr, Raid B. Krasteva‐Christ, Gabriela Hundal, Harinder S. J Cachexia Sarcopenia Muscle Original Articles BACKGROUND: Caveolins are the principal structural components of plasma membrane caveolae. Dominant pathogenic mutations in the muscle‐specific caveolin‐3 (Cav3) gene isoform, such as the limb girdle muscular dystrophy type 1C (LGMD‐1C) P104L mutation, result in dramatic loss of the Cav3 protein and pathophysiological muscle weakness/wasting. We hypothesize that such muscle degeneration may be linked to disturbances in signalling events that impact protein turnover. Herein, we report studies assessing the effects of Cav3 deficiency on mammalian or mechanistic target of rapamycin complex 1 (mTORC1) signalling in skeletal muscle cells. METHODS: L6 myoblasts were stably transfected with Cav3(P104L) or expression of native Cav3 was abolished by CRISPR/Cas9 genome editing (Cav3 knockout [Cav3KO]) prior to performing subcellular fractionation and immunoblotting, analysis of real‐time mitochondrial respiration or fixed cell immunocytochemistry. Skeletal muscle from wild‐type and Cav3(−/−) mice was processed for immunoblot analysis of downstream mTORC1 substrate phosphorylation. RESULTS: Cav3 was detected in lysosomal‐enriched membranes isolated from L6 myoblasts and observed by confocal microscopy to co‐localize with lysosomal‐specific markers. Cav3(P104L) expression, which results in significant (~95%) loss of native Cav3, or CRISPR/Cas9‐mediated Cav3KO, reduced amino acid‐dependent mTORC1 activation. The decline in mTORC1‐directed signalling was detected by immunoblot analysis of L6 muscle cells and gastrocnemius Cav3(−/−) mouse muscle as judged by reduced phosphorylation of mTORC1 substrates that play key roles in the initiation of protein synthesis (4EBP1(S65) and S6K1(T389)). S6K1(T389) and 4EBP1(S65) phosphorylation reduced by over 75% and 80% in Cav3KO muscle cells and by over 90% and 30% in Cav3(−/−) mouse skeletal muscle, respectively. The reduction in protein synthetic capacity in L6 muscle cells was confirmed by analysis of puromycylated peptides using the SUnSET assay. Cav3 loss was also associated with a 26% increase in lysosomal cholesterol, and pharmacological manipulation of lysosomal cholesterol was effective in replicating the reduction in mTORC1 activity observed in Cav3KO cells. Notably, re‐expression of Cav3 in Cav3KO myoblasts normalized lysosomal cholesterol content, which coincided with a recovery in protein translation and an associated increase in mTORC1‐directed phosphorylation of downstream targets. CONCLUSIONS: Our findings indicate that Cav3 can localize on lysosomal membranes and is a novel regulator of mTORC1 signalling in muscle. Cav3 deficiency associated with the Cav3(P104L) mutation impairs mTORC1 activation and protein synthetic capacity in skeletal muscle cells, which may be linked to disturbances in lysosomal cholesterol trafficking and contribute to the pathology of LGMD‐1C. John Wiley and Sons Inc. 2023-09-06 /pmc/articles/PMC10570080/ /pubmed/37671684 http://dx.doi.org/10.1002/jcsm.13317 Text en © 2023 The Authors. Journal of Cachexia, Sarcopenia and Muscle published by Wiley Periodicals LLC. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Shah, Dinesh S.
Nisr, Raid B.
Krasteva‐Christ, Gabriela
Hundal, Harinder S.
Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title_full Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title_fullStr Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title_full_unstemmed Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title_short Caveolin‐3 loss linked with the P104L LGMD‐1C mutation modulates skeletal muscle mTORC1 signalling and cholesterol homeostasis
title_sort caveolin‐3 loss linked with the p104l lgmd‐1c mutation modulates skeletal muscle mtorc1 signalling and cholesterol homeostasis
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10570080/
https://www.ncbi.nlm.nih.gov/pubmed/37671684
http://dx.doi.org/10.1002/jcsm.13317
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