|
|
|
||||
| Home Help Feedback Subscriptions Archive Search Table of Contents | |||||
Journal of Cell Science, Vol 107, Issue 3 487-496, Copyright © 1994 by Company of Biologists
JOURNAL ARTICLES |
I Guillet-Deniau, A Leturque and J Girard
Centre de Recherche sur l'Endocrinologie Moleculaire et le Developpement, Meudon Bellevue, France.
Skeletal muscle regeneration is mediated by the proliferation of myoblasts from stem cells located beneath the basal lamina of myofibres, the muscle satellite cells. They are functionally indistinguishable from embryonic myoblasts. The myogenic process includes the fusion of myoblasts into multinucleated myotubes, the biosynthesis of proteins specific for skeletal muscle and proteins that regulates glucose metabolism, the glucose transporters. We find that three isoforms of glucose transporter are expressed during foetal myoblast differentiation: GLUT1, GLUT3 and GLUT4; their relative expression being dependent upon the stage of differentiation of the cells. GLUT1 mRNA and protein were abundant only in myoblasts from 19-day-old rat foetuses or from adult muscles. GLUT3 mRNA and protein, detectable in both cell types, increased markedly during cell fusion, but decreased in contracting myotubes. GLUT4 mRNA and protein were not expressed in myoblasts. They appeared only in spontaneously contracting myotubes cultured on an extracellular matrix. Insulin or IGF-I had no effect on the expression of the three glucose transporter isoforms, even in the absence of glucose. The rate of glucose transport, assessed using 2-[3H]deoxyglucose, was 2-fold higher in myotubes than in myoblasts. Glucose deprivation increased the basal rate of glucose transport by 2-fold in myoblasts, and 4-fold in myotubes. The cellular localization of the glucose transporters was directly examined by immunofluorescence staining. GLUT1 was located on the plasma membrane of myoblasts and myotubes. GLUT3 was located intracellularly in myoblasts and appeared also on the plasma membrane in myotubes. Insulin or IGF-I were unable to target GLUT3 to the plasma membrane. GLUT4, the insulin-regulatable glucose transporter isoform, appeared only in contracting myotubes in small intracellular vesicles. It was translocated to the plasma membrane after a short exposure to insulin, as it is in skeletal muscle in vivo. These results show that there is a switch in glucose transporter isoform expression during myogenic differentiation, dependent upon the energy required by the different stages of the process. GLUT3 seemed to play a role during cell fusion, and could be a marker for the muscle's ability to regenerate.
This article has been cited by other articles:
![]() |
I. Guillet-Deniau, A.-L. Pichard, A. Kone, C. Esnous, M. Nieruchalski, J. Girard, and C. Prip-Buus Glucose induces de novo lipogenesis in rat muscle satellite cells through a sterol-regulatory-element-binding-protein-1c-dependent pathway J. Cell Sci., April 15, 2004; 117(10): 1937 - 1944. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Nakamura, S. Esnault, T. Maeda, E. A. B. Kelly, J. S. Malter, and N. N. Jarjour Ets-1 Regulates TNF-{alpha}-Induced Matrix Metalloproteinase-9 and Tenascin Expression in Primary Bronchial Fibroblasts J. Immunol., February 1, 2004; 172(3): 1945 - 1952. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Wallner, C. Li, P. K. Shah, M. C. Fishbein, J. S. Forrester, S. Kaul, and B. G. Sharifi Tenascin-C Is Expressed in Macrophage-Rich Human Coronary Atherosclerotic Plaque Circulation, March 16, 1999; 99(10): 1284 - 1289. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. D. McCoy, N. Ahmed, A. S. Tan, and M. V. Berridge The Hemopoietic Growth Factor, Interleukin-3, Promotes Glucose Transport by Increasing the Specific Activity and Maintaining the Affinity for Glucose of Plasma Membrane Glucose Transporters J. Biol. Chem., July 11, 1997; 272(28): 17276 - 17282. [Abstract] [Full Text] [PDF] |
||||
![]() |
I. Guillet-Deniau, A.-F. Burnol, and J. Girard Identification and Localization of a Skeletal Muscle Secrotonin 5-HT2A Receptor Coupled to the Jak/STAT Pathway J. Biol. Chem., June 6, 1997; 272(23): 14825 - 14829. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. Taha, Y. Mitsumoto, Z. Liu, E. Y. Skolnik, and A. Klip The Insulin-dependent Biosynthesis of GLUT1 and GLUT3 Glucose Transporters in L6 Muscle Cells Is Mediated by Distinct Pathways J. Biol. Chem., October 20, 1995; 270(42): 24678 - 24681. [Abstract] [Full Text] [PDF] |
||||