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Published on: August 24, 2016
Fructose-responsive genes in the small intestine of neonatal rats
Xue-Lin Cui1, Patricia Soteropoulos, Peter Tolias
1Department of Pharmacology and Physiology, University of Medicine and Dentistry of New Jersey-New Jersey Medical School, Newark 07103-2714, USA.
Insights
High fructose intake stimulates the synthesis of the fructose transporter GLUT5 (solute carrier family 2, member 5) in young rats. This process involves changes in glucose metabolism enzymes, suggesting a link between fructose and GLUT5 expression.
Area of Science:
- Gastroenterology
- Molecular Biology
- Nutritional Science
Background:
- The intestinal fructose transporter GLUT5 (SLC2A5) is typically expressed post-weaning in rats.
- Precocious fructose consumption or perfusion stimulates GLUT5 synthesis before weaning.
Purpose of the Study:
- To identify intermediary signals linking luminal fructose to GLUT5 transcription.
- To investigate gene expression changes during high fructose (HF) vs. high glucose (HG) perfusion in the small intestine.
Main Methods:
- Microarray hybridization and RT-PCR were used to analyze gene expression.
- In vivo perfusion of rat small intestine with HF and HG solutions.
Main Results:
- HF perfusion significantly increased GLUT5 mRNA and protein synthesis.
- Expression of gluconeogenic enzymes (G6P, fructose-1,6-bisphosphatase) and fructose-2,6-bisphosphatase increased markedly with HF.
- GLUT5 and glucose-6-phosphatase (G6P) mRNA abundance showed a specific link to luminal fructose concentrations.
Conclusions:
- Fructose metabolism and GLUT5 expression in the small intestine may be regulated by a cluster of gluconeogenic enzymes and fructose-6-phosphate.
- G6P mRNA abundance responds more rapidly to HF perfusion than GLUT5 mRNA.
Abstract:
The intestinal brush border fructose transporter GLUT5 (SLC2A5) typically appears in rats after weaning is completed. However, precocious consumption of dietary fructose or in vivo perfusion for 4 h of the small intestine with high fructose (HF) specifically stimulates de novo synthesis of GLUT5 mRNA and protein before weaning is completed. Intermediary signals linking the substrate, fructose, to GLUT5 transcription are not known but should also respond to fructose perfusion. Hence, we used microarray hybridization and RT-PCR to identify genes whose expression levels change during HF relative to high-glucose (HG) perfusion. Expression of GLUT5 and NaPi2b, the intestinal Na+-dependent phosphate transporter, dramatically increased and decreased, respectively, with HF perfusion for 4 h. Expression of >20 genes, including two key gluconeogenic enzymes, glucose-6-phosphatase (G6P) and fructose-1,6-bisphosphatase, also increased markedly, along with fructose-2,6-bisphosphatase, an enzyme unique to fructose metabolism and regulating fructose-1,6-bisphosphatase activity. GLUT5 and G6P mRNA abundance, which increased dramatically with HF relative to HG, alpha-methylglucose, and normal Ringer perfusion, may be tightly and specifically linked to changes in intestinal luminal fructose but not glucose concentrations. G6P but not GLUT5 mRNA abundance increased after just 20 min of HF perfusion. This cluster of gluconeogenic enzymes and their common metabolic intermediate fructose-6-phosphate may regulate fructose metabolism and GLUT5 expression in the small intestine.
Related Concept Videos
Glucose Absorption Into the Small Intestine
Glucose Transporters
Facilitated diffusion-glucose transporters (GLUTs) are encoded by the solute-linked carrier (SLC) family 2, subfamily A gene family, or SLC2A. The 14 GLUT protein members are distributed into three classes:

