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Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles

GLUT4-containing vesicles cycle between the plasma membrane and intracellular compartments. Insulin promotes GLUT4 exocytosis by regulating GLUT4 vesicle arrival at the cell periphery and its subsequent tethering, docking, and fusion with the plasma membrane. The molecular machinery involved in GLUT...

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Autores principales: Boguslavsky, Shlomit, Chiu, Tim, Foley, Kevin P., Osorio-Fuentealba, Cesar, Antonescu, Costin N., Bayer, K. Ulrich, Bilan, Philip J., Klip, Amira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3469521/
https://www.ncbi.nlm.nih.gov/pubmed/22918957
http://dx.doi.org/10.1091/mbc.E12-04-0263
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author Boguslavsky, Shlomit
Chiu, Tim
Foley, Kevin P.
Osorio-Fuentealba, Cesar
Antonescu, Costin N.
Bayer, K. Ulrich
Bilan, Philip J.
Klip, Amira
author_facet Boguslavsky, Shlomit
Chiu, Tim
Foley, Kevin P.
Osorio-Fuentealba, Cesar
Antonescu, Costin N.
Bayer, K. Ulrich
Bilan, Philip J.
Klip, Amira
author_sort Boguslavsky, Shlomit
collection PubMed
description GLUT4-containing vesicles cycle between the plasma membrane and intracellular compartments. Insulin promotes GLUT4 exocytosis by regulating GLUT4 vesicle arrival at the cell periphery and its subsequent tethering, docking, and fusion with the plasma membrane. The molecular machinery involved in GLUT4 vesicle tethering is unknown. We show here that Myo1c, an actin-based motor protein that associates with membranes and actin filaments, is required for insulin-induced vesicle tethering in muscle cells. Myo1c was found to associate with both mobile and tethered GLUT4 vesicles and to be required for vesicle capture in the total internal reflection fluorescence (TIRF) zone beneath the plasma membrane. Myo1c knockdown or overexpression of an actin binding–deficient Myo1c mutant abolished insulin-induced vesicle immobilization, increased GLUT4 vesicle velocity in the TIRF zone, and prevented their externalization. Conversely, Myo1c overexpression immobilized GLUT4 vesicles in the TIRF zone and promoted insulin-induced GLUT4 exposure to the extracellular milieu. Myo1c also contributed to insulin-dependent actin filament remodeling. Thus we propose that interaction of vesicular Myo1c with cortical actin filaments is required for insulin-mediated tethering of GLUT4 vesicles and for efficient GLUT4 surface delivery in muscle cells.
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spelling pubmed-34695212012-12-30 Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles Boguslavsky, Shlomit Chiu, Tim Foley, Kevin P. Osorio-Fuentealba, Cesar Antonescu, Costin N. Bayer, K. Ulrich Bilan, Philip J. Klip, Amira Mol Biol Cell Articles GLUT4-containing vesicles cycle between the plasma membrane and intracellular compartments. Insulin promotes GLUT4 exocytosis by regulating GLUT4 vesicle arrival at the cell periphery and its subsequent tethering, docking, and fusion with the plasma membrane. The molecular machinery involved in GLUT4 vesicle tethering is unknown. We show here that Myo1c, an actin-based motor protein that associates with membranes and actin filaments, is required for insulin-induced vesicle tethering in muscle cells. Myo1c was found to associate with both mobile and tethered GLUT4 vesicles and to be required for vesicle capture in the total internal reflection fluorescence (TIRF) zone beneath the plasma membrane. Myo1c knockdown or overexpression of an actin binding–deficient Myo1c mutant abolished insulin-induced vesicle immobilization, increased GLUT4 vesicle velocity in the TIRF zone, and prevented their externalization. Conversely, Myo1c overexpression immobilized GLUT4 vesicles in the TIRF zone and promoted insulin-induced GLUT4 exposure to the extracellular milieu. Myo1c also contributed to insulin-dependent actin filament remodeling. Thus we propose that interaction of vesicular Myo1c with cortical actin filaments is required for insulin-mediated tethering of GLUT4 vesicles and for efficient GLUT4 surface delivery in muscle cells. The American Society for Cell Biology 2012-10-15 /pmc/articles/PMC3469521/ /pubmed/22918957 http://dx.doi.org/10.1091/mbc.E12-04-0263 Text en © 2012 Boguslavsky et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society of Cell BD; are registered trademarks of The American Society of Cell Biology.
spellingShingle Articles
Boguslavsky, Shlomit
Chiu, Tim
Foley, Kevin P.
Osorio-Fuentealba, Cesar
Antonescu, Costin N.
Bayer, K. Ulrich
Bilan, Philip J.
Klip, Amira
Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title_full Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title_fullStr Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title_full_unstemmed Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title_short Myo1c binding to submembrane actin mediates insulin-induced tethering of GLUT4 vesicles
title_sort myo1c binding to submembrane actin mediates insulin-induced tethering of glut4 vesicles
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3469521/
https://www.ncbi.nlm.nih.gov/pubmed/22918957
http://dx.doi.org/10.1091/mbc.E12-04-0263
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