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β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding

OBJECTIVE: Skeletal muscle glucose disposal following a meal is mediated through insulin-stimulated movement of the GLUT4-containing vesicles to the cell surface. The highly conserved scaffold-protein β-catenin is an emerging regulator of vesicle trafficking in other tissues. Here, we investigated t...

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Autores principales: Masson, Stewart W.C., Sorrenson, Brie, Shepherd, Peter R., Merry, Troy L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7568189/
https://www.ncbi.nlm.nih.gov/pubmed/33011305
http://dx.doi.org/10.1016/j.molmet.2020.101091
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author Masson, Stewart W.C.
Sorrenson, Brie
Shepherd, Peter R.
Merry, Troy L.
author_facet Masson, Stewart W.C.
Sorrenson, Brie
Shepherd, Peter R.
Merry, Troy L.
author_sort Masson, Stewart W.C.
collection PubMed
description OBJECTIVE: Skeletal muscle glucose disposal following a meal is mediated through insulin-stimulated movement of the GLUT4-containing vesicles to the cell surface. The highly conserved scaffold-protein β-catenin is an emerging regulator of vesicle trafficking in other tissues. Here, we investigated the involvement of β-catenin in skeletal muscle insulin-stimulated glucose transport. METHODS: Glucose homeostasis and transport was investigated in inducible muscle specific β-catenin knockout (BCAT-mKO) mice. The effect of β-catenin deletion and mutation of β-catenin serine 552 on signal transduction, glucose uptake and protein–protein interactions were determined in L6-G4-myc cells, and β-catenin insulin-responsive binding partners were identified via immunoprecipitation coupled to label-free proteomics. RESULTS: Skeletal muscle specific deletion of β-catenin impaired whole-body insulin sensitivity and insulin-stimulated glucose uptake into muscle independent of canonical Wnt signalling. In response to insulin, β-catenin was phosphorylated at serine 552 in an Akt-dependent manner, and in L6-G4-myc cells, mutation of β-catenin(S552) impaired insulin-induced actin-polymerisation, resulting in attenuated insulin-induced glucose transport and GLUT4 translocation. β-catenin was found to interact with M-cadherin in an insulin-dependent β-catenin(S552)-phosphorylation dependent manner, and loss of M-cadherin in L6-G4-myc cells attenuated insulin-induced actin-polymerisation and glucose transport. CONCLUSIONS: Our data suggest that β-catenin is a novel mediator of glucose transport in skeletal muscle and may contribute to insulin-induced actin-cytoskeleton remodelling to support GLUT4 translocation.
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spelling pubmed-75681892020-10-21 β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding Masson, Stewart W.C. Sorrenson, Brie Shepherd, Peter R. Merry, Troy L. Mol Metab Original Article OBJECTIVE: Skeletal muscle glucose disposal following a meal is mediated through insulin-stimulated movement of the GLUT4-containing vesicles to the cell surface. The highly conserved scaffold-protein β-catenin is an emerging regulator of vesicle trafficking in other tissues. Here, we investigated the involvement of β-catenin in skeletal muscle insulin-stimulated glucose transport. METHODS: Glucose homeostasis and transport was investigated in inducible muscle specific β-catenin knockout (BCAT-mKO) mice. The effect of β-catenin deletion and mutation of β-catenin serine 552 on signal transduction, glucose uptake and protein–protein interactions were determined in L6-G4-myc cells, and β-catenin insulin-responsive binding partners were identified via immunoprecipitation coupled to label-free proteomics. RESULTS: Skeletal muscle specific deletion of β-catenin impaired whole-body insulin sensitivity and insulin-stimulated glucose uptake into muscle independent of canonical Wnt signalling. In response to insulin, β-catenin was phosphorylated at serine 552 in an Akt-dependent manner, and in L6-G4-myc cells, mutation of β-catenin(S552) impaired insulin-induced actin-polymerisation, resulting in attenuated insulin-induced glucose transport and GLUT4 translocation. β-catenin was found to interact with M-cadherin in an insulin-dependent β-catenin(S552)-phosphorylation dependent manner, and loss of M-cadherin in L6-G4-myc cells attenuated insulin-induced actin-polymerisation and glucose transport. CONCLUSIONS: Our data suggest that β-catenin is a novel mediator of glucose transport in skeletal muscle and may contribute to insulin-induced actin-cytoskeleton remodelling to support GLUT4 translocation. Elsevier 2020-10-01 /pmc/articles/PMC7568189/ /pubmed/33011305 http://dx.doi.org/10.1016/j.molmet.2020.101091 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Masson, Stewart W.C.
Sorrenson, Brie
Shepherd, Peter R.
Merry, Troy L.
β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title_full β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title_fullStr β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title_full_unstemmed β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title_short β-catenin regulates muscle glucose transport via actin remodelling and M-cadherin binding
title_sort β-catenin regulates muscle glucose transport via actin remodelling and m-cadherin binding
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7568189/
https://www.ncbi.nlm.nih.gov/pubmed/33011305
http://dx.doi.org/10.1016/j.molmet.2020.101091
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