Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle

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Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle. / Knudsen, Jonas Roland; Persson, Kaspar W; Henriquez-Olguin, Carlos; Li, Zhencheng; Di Leo, Nicolas; Hesselager, Sofie A; Raun, Steffen H; Hingst, Janne R; Trouillon, Raphaël; Wohlwend, Martin; Wojtaszewski, Jørgen; Gijs, Martin A M; Jensen, Thomas Elbenhardt.

I: eLife, Bind 12, e83338, 2023.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Knudsen, JR, Persson, KW, Henriquez-Olguin, C, Li, Z, Di Leo, N, Hesselager, SA, Raun, SH, Hingst, JR, Trouillon, R, Wohlwend, M, Wojtaszewski, J, Gijs, MAM & Jensen, TE 2023, 'Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle', eLife, bind 12, e83338. https://doi.org/10.7554/eLife.83338

APA

Knudsen, J. R., Persson, K. W., Henriquez-Olguin, C., Li, Z., Di Leo, N., Hesselager, S. A., Raun, S. H., Hingst, J. R., Trouillon, R., Wohlwend, M., Wojtaszewski, J., Gijs, M. A. M., & Jensen, T. E. (2023). Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle. eLife, 12, [e83338]. https://doi.org/10.7554/eLife.83338

Vancouver

Knudsen JR, Persson KW, Henriquez-Olguin C, Li Z, Di Leo N, Hesselager SA o.a. Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle. eLife. 2023;12. e83338. https://doi.org/10.7554/eLife.83338

Author

Knudsen, Jonas Roland ; Persson, Kaspar W ; Henriquez-Olguin, Carlos ; Li, Zhencheng ; Di Leo, Nicolas ; Hesselager, Sofie A ; Raun, Steffen H ; Hingst, Janne R ; Trouillon, Raphaël ; Wohlwend, Martin ; Wojtaszewski, Jørgen ; Gijs, Martin A M ; Jensen, Thomas Elbenhardt. / Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle. I: eLife. 2023 ; Bind 12.

Bibtex

@article{e82a562620524441b8cf3b5669e7a381,
title = "Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle",
abstract = "Microtubules serve as tracks for long-range intracellular trafficking of glucose transporter 4 (GLUT4), but the role of this process in skeletal muscle and insulin resistance is unclear. Here, we used fixed and live-cell imaging to study microtubule-based GLUT4 trafficking in human and mouse muscle fibers and L6 rat muscle cells. We found GLUT4 localized on the microtubules in mouse and human muscle fibers. Pharmacological microtubule disruption using Nocodazole (Noco) prevented long-range GLUT4 trafficking and depleted GLUT4-enriched structures at microtubule nucleation sites in a fully reversible manner. Using a perifused muscle-on-a-chip system to enable real-time glucose uptake measurements in isolated mouse skeletal muscle fibers, we observed that Noco maximally disrupted the microtubule network after 5 min without affecting insulin-stimulated glucose uptake. In contrast, a 2h Noco treatment markedly decreased insulin responsiveness of glucose uptake. Insulin resistance in mouse muscle fibers induced either in vitro by C2 ceramides or in vivo by diet-induced obesity, impaired microtubule-based GLUT4 trafficking. Transient knockdown of the microtubule motor protein kinesin-1 protein KIF5B in L6 muscle cells reduced insulin-stimulated GLUT4 translocation while pharmacological kinesin-1 inhibition in incubated mouse muscles strongly impaired insulin-stimulated glucose uptake. Thus, in adult skeletal muscle fibers, the microtubule network is essential for intramyocellular GLUT4 movement, likely functioning to maintain an insulin-responsive cell-surface recruitable GLUT4 pool via kinesin-1 mediated trafficking. ",
keywords = "Faculty of Science, GLUT4 trafficking, Skeletal muscle, Glucose uptake, Microtubule",
author = "Knudsen, {Jonas Roland} and Persson, {Kaspar W} and Carlos Henriquez-Olguin and Zhencheng Li and {Di Leo}, Nicolas and Hesselager, {Sofie A} and Raun, {Steffen H} and Hingst, {Janne R} and Rapha{\"e}l Trouillon and Martin Wohlwend and J{\o}rgen Wojtaszewski and Gijs, {Martin A M} and Jensen, {Thomas Elbenhardt}",
note = "{\textcopyright} 2023, Knudsen et al.",
year = "2023",
doi = "10.7554/eLife.83338",
language = "English",
volume = "12",
journal = "eLife",
issn = "2050-084X",
publisher = "eLife Sciences Publications Ltd.",

}

RIS

TY - JOUR

T1 - Microtubule-mediated GLUT4 trafficking is disrupted in insulin resistant skeletal muscle

AU - Knudsen, Jonas Roland

AU - Persson, Kaspar W

AU - Henriquez-Olguin, Carlos

AU - Li, Zhencheng

AU - Di Leo, Nicolas

AU - Hesselager, Sofie A

AU - Raun, Steffen H

AU - Hingst, Janne R

AU - Trouillon, Raphaël

AU - Wohlwend, Martin

AU - Wojtaszewski, Jørgen

AU - Gijs, Martin A M

AU - Jensen, Thomas Elbenhardt

N1 - © 2023, Knudsen et al.

PY - 2023

Y1 - 2023

N2 - Microtubules serve as tracks for long-range intracellular trafficking of glucose transporter 4 (GLUT4), but the role of this process in skeletal muscle and insulin resistance is unclear. Here, we used fixed and live-cell imaging to study microtubule-based GLUT4 trafficking in human and mouse muscle fibers and L6 rat muscle cells. We found GLUT4 localized on the microtubules in mouse and human muscle fibers. Pharmacological microtubule disruption using Nocodazole (Noco) prevented long-range GLUT4 trafficking and depleted GLUT4-enriched structures at microtubule nucleation sites in a fully reversible manner. Using a perifused muscle-on-a-chip system to enable real-time glucose uptake measurements in isolated mouse skeletal muscle fibers, we observed that Noco maximally disrupted the microtubule network after 5 min without affecting insulin-stimulated glucose uptake. In contrast, a 2h Noco treatment markedly decreased insulin responsiveness of glucose uptake. Insulin resistance in mouse muscle fibers induced either in vitro by C2 ceramides or in vivo by diet-induced obesity, impaired microtubule-based GLUT4 trafficking. Transient knockdown of the microtubule motor protein kinesin-1 protein KIF5B in L6 muscle cells reduced insulin-stimulated GLUT4 translocation while pharmacological kinesin-1 inhibition in incubated mouse muscles strongly impaired insulin-stimulated glucose uptake. Thus, in adult skeletal muscle fibers, the microtubule network is essential for intramyocellular GLUT4 movement, likely functioning to maintain an insulin-responsive cell-surface recruitable GLUT4 pool via kinesin-1 mediated trafficking.

AB - Microtubules serve as tracks for long-range intracellular trafficking of glucose transporter 4 (GLUT4), but the role of this process in skeletal muscle and insulin resistance is unclear. Here, we used fixed and live-cell imaging to study microtubule-based GLUT4 trafficking in human and mouse muscle fibers and L6 rat muscle cells. We found GLUT4 localized on the microtubules in mouse and human muscle fibers. Pharmacological microtubule disruption using Nocodazole (Noco) prevented long-range GLUT4 trafficking and depleted GLUT4-enriched structures at microtubule nucleation sites in a fully reversible manner. Using a perifused muscle-on-a-chip system to enable real-time glucose uptake measurements in isolated mouse skeletal muscle fibers, we observed that Noco maximally disrupted the microtubule network after 5 min without affecting insulin-stimulated glucose uptake. In contrast, a 2h Noco treatment markedly decreased insulin responsiveness of glucose uptake. Insulin resistance in mouse muscle fibers induced either in vitro by C2 ceramides or in vivo by diet-induced obesity, impaired microtubule-based GLUT4 trafficking. Transient knockdown of the microtubule motor protein kinesin-1 protein KIF5B in L6 muscle cells reduced insulin-stimulated GLUT4 translocation while pharmacological kinesin-1 inhibition in incubated mouse muscles strongly impaired insulin-stimulated glucose uptake. Thus, in adult skeletal muscle fibers, the microtubule network is essential for intramyocellular GLUT4 movement, likely functioning to maintain an insulin-responsive cell-surface recruitable GLUT4 pool via kinesin-1 mediated trafficking.

KW - Faculty of Science

KW - GLUT4 trafficking

KW - Skeletal muscle

KW - Glucose uptake

KW - Microtubule

U2 - 10.7554/eLife.83338

DO - 10.7554/eLife.83338

M3 - Journal article

C2 - 37073948

VL - 12

JO - eLife

JF - eLife

SN - 2050-084X

M1 - e83338

ER -

ID: 344647389