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  4. TGR5-mediated bile acid sensing controls glucose homeostasis
 
research article

TGR5-mediated bile acid sensing controls glucose homeostasis

Thomas, Charles
•
Gioiello, Antimo  
•
Noriega, Lilia  
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2009
Cell Metabolism

TGR5 is a G protein-coupled receptor expressed in brown adipose tissue and muscle, where its activation by bile acids triggers an increase in energy expenditure and attenuates diet-induced obesity. Using a combination of pharmacological and genetic gain- and loss-of-function studies in vivo, we show here that TGR5 signaling induces intestinal glucagon-like peptide-1 (GLP-1) release, leading to improved liver and pancreatic function and enhanced glucose tolerance in obese mice. In addition, we show that the induction of GLP-1 release in enteroendocrine cells by 6a-ethyl-23(S)-methyl-cholic acid (EMCA, INT-777), a specific TGR5 agonist, is linked to an increase of the intracellular ATP/ADP ratio and a subsequent rise in intracellular calcium mobilization. Altogether, these data show that the TGR5 signaling pathway is critical in regulating intestinal GLP-1 secretion invivo, and suggest that pharmacological targeting of TGR5 may constitute a promising incretin-based strategy for the treatment of diabesity and associated metabolic disorders.

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Type
research article
DOI
10.1016/j.cmet.2009.08.001
Web of Science ID

WOS:000269600900004

Author(s)
Thomas, Charles
Gioiello, Antimo  
Noriega, Lilia  
Strehle, Axelle
Oury, Julien
Rizzo, Giovanni
Macchiarulo, Antonio
Yamamoto, Hiroyasu  
Mataki, Chikage  
Pruzanski, Mark
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Date Issued

2009

Publisher

Cell Press

Published in
Cell Metabolism
Volume

10

Issue

3

Start page

167

End page

177

Subjects

Protein-Coupled Receptor

•

Farnesoid-X-Receptor

•

Peptide-1 Secretion

•

Energy-Expenditure

•

Cell-Line

•

Activation

•

Mice

•

Tgr5

•

Fxr

•

Derivatives

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
UPSCHOONJANS  
LISP  
Available on Infoscience
September 1, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/42379
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