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Updated: Aug 23, 2026

Mechanisms Underlying Gut Hormone Secretion Using the Isolated Perfused Rat Small Intestine
Published on: February 26, 2019
Cyclic AMP stimulates fructose transport in neonatal rat small intestine
Xue-Lin Cui1, Chris Ananian, Edwin Perez
1Department of Pharmacology and Physiology, UMDNJ-New Jersey Medical School, Newark, NJ 07103-2714, USA.
Insights
Cyclic AMP (cAMP) regulates intestinal fructose absorption by modulating transporter activity, not GLUT5 mRNA, and does not involve protein kinase A (PKA). This finding sheds light on fructose transport regulation during early development.
Area of Science:
- Physiology
- Molecular Biology
- Nutritional Science
Background:
- Intestinal fructose transporter (GLUT5) expression increases post-weaning in rats.
- Dietary fructose or perfusion can induce GLUT5 expression in early development.
- The signal transduction pathway for fructose-mediated GLUT5 regulation is largely unknown.
Purpose of the Study:
- To investigate the role of cyclic AMP (cAMP) in regulating intestinal fructose absorption.
- To determine if cAMP mediates fructose-induced increases in GLUT5 expression and fructose uptake.
- To explore the involvement of adenylyl cyclase, phosphodiesterase, and protein kinase A (PKA) in this pathway.
Main Methods:
- Neonatal rat pups were perfused with fructose, cAMP analogs, or inhibitors of adenylyl cyclase (dideoxyadenosine - DDA) and PKA.
- Intestinal fructose uptake rates, mucosal cAMP concentrations, and GLUT5/SGLT1 mRNA abundance were measured.
- Glucose transport rates were also assessed to control for general transporter effects.
Main Results:
- Perfusion with 8-bromo-cAMP increased fructose uptake by 100%.
- Simultaneous perfusion of fructose and DDA inhibited fructose-induced increases in uptake and cAMP levels.
- Neither cAMP modulation nor DDA affected GLUT5/SGLT1 mRNA or glucose transport.
- PKA inhibition did not prevent fructose-induced increases in GLUT5 mRNA or fructose uptake.
Conclusions:
- Cyclic AMP (cAMP) plays a crucial role in regulating intestinal fructose transport.
- cAMP appears to modulate fructose transport activity directly, independent of GLUT5 mRNA abundance.
- The PKA pathway is not involved in the fructose-mediated regulation of GLUT5 expression or fructose uptake.
Abstract:
Intestinal fructose transporter (GLUT5) expression normally increases significantly after completion of weaning in neonatal rats. Increases in GLUT5 mRNA, protein, and activity can be induced in early weaning pups by precocious consumption of dietary fructose or by perfusion of the small intestine with fructose solutions. Little is known about the signal transduction pathway of the dietary fructose-mediated increase in GLUT5 expression during early intestinal development. Recent microarray results indicate that key gluconeogenic enzymes modulated by cAMP are markedly upregulated by fructose perfusion; hence, we tested the hypothesis that cAMP plays an important role in regulating intestinal fructose absorption by simultaneously perfusing adenylyl cyclase, phosphodiesterase, or protein kinase A (PKA) inhibitors along with fructose. Intestinal fructose uptake rates increased by 100% in rat pups perfused with 8-bromo-cAMP. Simultaneous fructose and dideoxyadenosine (DDA; inhibitor of adenylyl cyclase) perfusion completely inhibited increases in fructose uptake rate induced by perfusion with fructose alone. Fructose perfusion increased intestinal mucosal cAMP concentrations by 27%, but simultaneous perfusion of fructose and DDA inhibited the fructose-induced increase in cAMP. However, GLUT5 and sodium-glucose cotransporter (SGLT1) mRNA abundance and glucose transport rates were each not significantly affected by 8-bromo-cAMP and DDA. Moreover, simultaneous perfusion of the small intestine with fructose and PKA inhibitor or N-[2-(p-bromocinnamylamino)ethyl]-5-isoquinolinesulfonamid. 2HCl, both inhibitors of PKA, did not prevent the fructose-induced increases in GLUT5 mRNA abundance and fructose uptake rate. Cyclic AMP appears to modulate fructose transport without affecting GLUT5 mRNA abundance, and without involving PKA.
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