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PMID: 20623219 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Chronically increased glucose uptake by adipose tissue leads to lactate production and improved insulin sensitivity rather than obesity in the mouse.

Diabetologia ·Vol. 53 ·No. 11 ·2010-11-00 ·Pages 2417-30

Muñoz S, Franckhauser S, Elias I, Ferré T, Hidalgo A, Monteys AM, Molas M, Cerdán S, Pujol A, Ruberte J, Bosch F

Abstract

In adipocytes, triacylglycerol synthesis depends on the formation of glycerol 3-phosphate, which originates either from glucose, through glycolysis, or from lactate, through glyceroneogenesis. However, glucose is traditionally viewed as the main precursor of the glycerol backbone and thus, enhanced glucose uptake would be expected to result in increased triacylglycerol synthesis and contribute to obesity. To further explore this issue, we generated a mouse model with chronically increased glucose uptake in adipose tissue by expressing Gck, which encodes the glucokinase enzyme. Here we show that the production of high levels of glucokinase led to increased adipose tissue glucose uptake and lactate production, improved glucose tolerance and higher whole-body and skeletal muscle insulin sensitivity. There was no parallel increase in glycerol 3-phosphate synthesis in vivo, fat accumulation or obesity. Moreover, at high glucose concentrations, in cultured fat cells overproducing glucokinase, glycerol 3-phosphate synthesis from pyruvate decreased, while glyceroneogenesis increased in fat cells overproducing hexokinase II. These findings indicate that the absence of glucokinase inhibition by glucose 6-phosphate probably led to increased glycolysis and blocked glyceroneogenesis in the mouse model. Furthermore, this study suggests that under physiological conditions, when blood glucose increases, glyceroneogenesis may prevail over glycolysis for triacylglycerol formation because of the inhibition of hexokinase II by glucose 6-phosphate. Together these results point to the indirect pathway (glucose to lactate to glycerol 3-phosphate) being key for fat deposition in adipose tissue.

MeSH Terms
3T3-L1 Cells Adipose Tissue/drug effects,enzymology Animals Blotting, Northern Cells, Cultured Glucokinase/genetics,metabolism Glucose/metabolism Glycerophosphates/metabolism Hypoglycemic Agents/pharmacology Insulin/pharmacology Lactic Acid/metabolism Male Mice Mice, Transgenic Obesity/genetics,metabolism,prevention & control Rats Reverse Transcriptase Polymerase Chain Reaction
Chemicals
Glycerophosphates Hypoglycemic Agents Insulin Lactic Acid alpha-glycerophosphoric acid Glucokinase Glucose
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Muñoz S
Center of Animal Biotechnology and Gene Therapy, Edifici H, Universitat Autònoma de Barcelona, Bellaterra, Spain.
Franckhauser S
Elias I
Ferré T
Hidalgo A
Monteys A M
Molas M
Cerdán S
Pujol A
Ruberte J
Bosch F
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Article Info
Journal
Diabetologia
Abbr.
Diabetologia
ISSN
1432-0428
Published
2010-11-00
Epub
2010-00-10
Pages
2417-30
Language
English
Region
Germany
NLM ID
0006777
Subset
IM
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