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PMID: 17786952 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

Sugar sensing by enterocytes combines polarity, membrane bound detectors and sugar metabolism.

Journal of cellular physiology ·Vol. 213 ·No. 3 ·2007-12-00 ·Pages 834-43

Le Gall M, Tobin V, Stolarczyk E, Dalet V, Leturque A, Brot-Laroche E

Abstract

Sugar consumption and subsequent sugar metabolism are known to regulate the expression of genes involved in intestinal sugar absorption and delivery. Here we investigate the hypothesis that sugar-sensing detectors in membranes facing the intestinal lumen or the bloodstream can also modulate intestinal sugar absorption. We used wild-type and GLUT2-null mice, to show that dietary sugars stimulate the expression of sucrase-isomaltase (SI) and L-pyruvate kinase (L-PK) by GLUT2-dependent mechanisms, whereas the expression of GLUT5 and SGLT1, did not rely on the presence of GLUT2. By providing sugar metabolites, sugar transporters, including GLUT2, fuelled a sensing pathway. In Caco2/TC7 enterocytes, we could disconnect the sensing triggered by detector from that produced by metabolism, and found that GLUT2 generated a metabolism-independent pathway to stimulate the expression of SI and L-PK. In cultured enterocytes, both apical and basolateral fructose could increase the expression of GLUT5, conversely, basolateral sugar administration could stimulate the expression of GLUT2. Finally, we located the sweet-taste receptors T1R3 and T1R2 in plasma membranes, and we measured their cognate G alpha Gustducin mRNA levels. Furthermore, we showed that a T1R3 inhibitor altered the fructose-induced expression of SGLT1, GLUT5, and L-PK. Intestinal gene expression is thus controlled by a combination of at least three sugar-signaling pathways triggered by sugar metabolites and membrane sugar receptors that, according to membrane location, determine sugar-sensing polarity. This provides a rationale for how intestine adapts sugar delivery to blood and dietary sugar provision.

MeSH Terms
Animals Caco-2 Cells Cell Polarity Cloning, Molecular Enterocytes/metabolism Fructose/metabolism Glucose/metabolism Glucose Transporter Type 2/chemistry,genetics,metabolism Glucose Transporter Type 5/genetics,metabolism Green Fluorescent Proteins/metabolism Hexoses/metabolism Humans Jejunum/cytology Mice Mice, Inbred C57BL Mice, Knockout Monosaccharide Transport Proteins/genetics,metabolism Oligo-1,6-Glucosidase/genetics Promoter Regions, Genetic Protein Structure, Tertiary RNA, Messenger/metabolism Sodium-Glucose Transporter 1/genetics,metabolism Sucrase/genetics Sucrose/metabolism Sweetening Agents/metabolism Transfection
Chemicals
Glucose Transporter Type 2 Glucose Transporter Type 5 Hexoses Monosaccharide Transport Proteins RNA, Messenger SLC5A1 protein, human Slc5a1 protein, mouse Sodium-Glucose Transporter 1 Sweetening Agents enhanced green fluorescent protein Green Fluorescent Proteins Fructose Sucrose Oligo-1,6-Glucosidase Sucrase Glucose
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Le Gall Maude
INSERM, UMR S 872, Centre de Recherche des Cordeliers, Paris, France. [email protected]
Tobin Vanessa
Stolarczyk Emilie
Dalet Véronique
Leturque Armelle
Brot-Laroche Edith
Article Info
Journal
Journal of cellular physiology
Abbr.
J Cell Physiol
ISSN
1097-4652
Published
2007-12-00
Pages
834-43
Language
English
Region
United States
NLM ID
0050222
Subset
IM
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