Unique mechanism of GLUT3 glucose transporter regulation by prolonged energy demand: increased protein half-life
Open Access
- 1 August 1998
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 333 (3) , 713-718
- https://doi.org/10.1042/bj3330713
Abstract
L6 muscle cells survive long-term (18 h) disruption of oxidative phosphorylation by the mitochondrial uncoupler 2,4-dinitrophenol (DNP) because, in response to this metabolic stress, they increase their rate of glucose transport. This response is associated with an elevation of the protein content of glucose transporter isoforms GLUT3 and GLUT1, but not GLUT4. Previously we have reported that the rise in GLUT1 expression is likely to be a result of de novo biosynthesis of the transporter, since the uncoupler increases GLUT1 mRNA levels. Unlike GLUT1, very little is known about how interfering with mitochondrial ATP production regulates GLUT3 protein expression. Here we examine the mechanisms employed by DNP to increase GLUT3 protein content and glucose uptake in L6 muscle cells. We report that, in contrast with GLUT1, continuous exposure to DNP had no effect on GLUT3 mRNA levels. DNP-stimulated glucose transport was unaffected by the protein-synthesis inhibitor cycloheximide. The increase in GLUT3 protein mediated by DNP was also insensitive to cycloheximide, paralleling the response of glucose uptake, whereas the rise in GLUT1 protein levels was blocked by the inhibitor. The GLUT3 glucose transporter may therefore provide the majority of the glucose transport stimulation by DNP, despite elevated levels of GLUT1 protein. The half-lives of GLUT3 and GLUT1 proteins in L6 myotubes were determined to be about 15 h and 6 h respectively. DNP prolonged the half-life of both proteins. After 24 h of DNP treatment, 88% of GLUT3 protein and 57% of GLUT1 protein had not turned over, compared with 25% in untreated cells. We conclude that the long-term stimulation of glucose transport by DNP arises from an elevation of GLUT3 protein content associated with an increase in GLUT3 protein half-life. These findings suggest that disruption of the oxidative chain of L6 muscle cells leads to an adaptive response of glucose transport that is distinct from the insulin response, involving specific glucose transporter isoforms that are regulated by different mechanisms.Keywords
This publication has 41 references indexed in Scilit:
- Expression and Regulation by Insulin of Glut 3 in UMR 106-01, a Clonal Rat Osteosarcoma Cell LineBiochemical and Biophysical Research Communications, 1996
- Forebrain Ischemia Increases Glut1 Protein in Brain Microvessels and ParenchymaJournal of Cerebral Blood Flow & Metabolism, 1996
- Brain-derived peptides regulate the steady state levels and increase stability of the blood-brain barrier GLUT1 glucose transporter mRNANeuroscience Letters, 1995
- Regulation of cell surface GLUT1, GLUT3, and GLUT4 by insulin and IGF‐I in L6 myotubesFEBS Letters, 1995
- An Immunization Method for Generation of High Affinity Antisera against Glucose Transporters Useful in ImmunohistochemistryBiochemical and Biophysical Research Communications, 1993
- What signals are involved in the stimulation of glucose transport by insulin in muscle cells?Cellular Signalling, 1993
- Detection of the GLUT3 facilitative glucose transporter in rat L6 muscle cells: Regulation by cellular differentiation, insulin and insulin-like growth factor-IBiochemical and Biophysical Research Communications, 1992
- Acute and long‐term effects of insulin‐like growth factor I on glucose transporters in muscle cells Translocation and biosynthesisFEBS Letters, 1992
- Expression of mouse-GLUT3 and human-GLUT3 glucose transporter proteins in brainBiochemical and Biophysical Research Communications, 1992
- Stabilization of glucose transporter mRNA by insulin/IGF-1 and glucose deprivationBiochemical and Biophysical Research Communications, 1990