Evidence for High-Capacity Bidirectional Glucose Transport across the Endoplasmic Reticulum Membrane by Genetically Encoded Fluorescence Resonance Energy Transfer Nanosensors
Open Access
- 1 December 2005
- journal article
- Published by Taylor & Francis in Molecular and Cellular Biology
- Vol. 25 (24) , 11102-11112
- https://doi.org/10.1128/mcb.25.24.11102-11112.2005
Abstract
Glucose release from hepatocytes is important for maintenance of blood glucose levels. Glucose-6-phosphate phosphatase, catalyzing the final metabolic step of gluconeogenesis, faces the endoplasmic reticulum (ER) lumen. Thus, glucose produced in the ER has to be either exported from the ER into the cytosol before release into circulation or exported directly by a vesicular pathway. To measure ER transport of glucose, fluorescence resonance energy transfer-based nanosensors were targeted to the cytosol or the ER lumen of HepG2 cells. During perfusion with 5 mM glucose, cytosolic levels were maintained at ∼80% of the external supply, indicating that plasma membrane transport exceeded the rate of glucose phosphorylation. Glucose levels and kinetics inside the ER were indistinguishable from cytosolic levels, suggesting rapid bidirectional glucose transport across the ER membrane. A dynamic model incorporating rapid bidirectional ER transport yields a very good fit with the observed kinetics. Plasma membrane and ER membrane glucose transport differed regarding sensitivity to cytochalasin B and showed different relative kinetics for galactose uptake and release, suggesting catalysis by distinct activities at the two membranes. The presence of a high-capacity glucose transport system on the ER membrane is consistent with the hypothesis that glucose export from hepatocytes occurs via the cytosol by a yet-to-be-identified set of proteins.Keywords
This publication has 39 references indexed in Scilit:
- Construction and optimization of a family of genetically encoded metabolite sensors by semirational protein engineeringProtein Science, 2005
- Computational design of receptor and sensor proteins with novel functionsNature, 2003
- Multiple glucose 6-phosphate pools or channelling of flux in diverse pathways?Biochemical Society Transactions, 2002
- The glucose-6-phosphatase systemBiochemical Journal, 2002
- Nocodazole Inhibits Insulin-stimulated Glucose Transport in 3T3-L1 Adipocytes via a Microtubule-independent MechanismJournal of Biological Chemistry, 2001
- Secretory Protein Trafficking and Organelle Dynamics in Living CellsAnnual Review of Cell and Developmental Biology, 2000
- Glycogen storage disease type Ia: recent experience with mutation analysis, a summary of mutations reported in the literature and a newly developed diagnostic flowchartEuropean Journal of Pediatrics, 2000
- Cloning and functional expression in bacteria of a novel glucose transporter present in liver, intestine, kidney, and β-pancreatic islet cellsCell, 1988
- Sequence and Structure of a Human Glucose TransporterScience, 1985
- Inhibition of glucose transport in the human erythrocyte by cytochalasin BBiochemistry, 1973