Literature DB >> 19144638

Reduced intestinal absorption of dipeptides via PepT1 in mice with diet-induced obesity is associated with leptin receptor down-regulation.

Patrick Hindlet1, André Bado, Peter Kamenicky, Claudine Deloménie, Fanchon Bourasset, Corinne Nazaret, Robert Farinotti, Marion Buyse.   

Abstract

Leptin is a major determinant of energy homeostasis, acting both centrally and in the gastrointestinal tract. We previously reported that acute leptin treatment enhances the absorption of di- and tripeptides via the proton-dependent PepT1 transporter. In this study, we investigated the long term effect of leptin on PepT1 levels and activity in Caco2 cell monolayers in vitro. We then assessed the significance of the regulation of PepT1 in vivo in a model of diet-induced obesity. We demonstrated that 1) leptin regulated PepT1 at the transcriptional level, via the MAPK pathway, and at the translational level, via ribosomal protein S6 activation, in Caco2 cells and 2) this activation was systematically followed by a time- and concentration-dependent loss of leptin action reflecting desensitization. Deciphering this desensitization, we demonstrated that leptin induced a down-regulation of its own receptor protein and mRNA expression. More importantly, we showed, in mice with diet-induced obesity, that a 4-week hypercaloric diet resulted in a 46% decrease in PepT1-specific transport, because of a 30% decrease in PepT1 protein and a 50% decrease in PepT1 mRNA levels. As shown in Caco2 cells, these changes in PepT1 were supported by a parallel 2-fold decrease in leptin receptor expression in mice. Taken together, these results indicate that during induction of obesity, leptin resistance may also occur peripherally in the gastrointestinal tract, disrupting the absorption of oligopeptides and peptidomimetic drugs.

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Year:  2009        PMID: 19144638      PMCID: PMC2652284          DOI: 10.1074/jbc.M805564200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  39 in total

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Authors:  R L Martin; E Perez; Y J He; R Dawson; W J Millard
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2.  Modulation of intestinal and liver fatty acid-binding proteins in Caco-2 cells by lipids, hormones and cytokines.

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4.  Secretory granules of endocrine and chief cells of human stomach mucosa contain leptin.

Authors:  S Cinti; R D Matteis; C Picó; E Ceresi; A Obrador; C Maffeis; J Oliver; A Palou
Journal:  Int J Obes Relat Metab Disord       Date:  2000-06

5.  Divergent roles of SHP-2 in ERK activation by leptin receptors.

Authors:  C Bjørbaek; R M Buchholz; S M Davis; S H Bates; D D Pierroz; H Gu; B G Neel; M G Myers; J S Flier
Journal:  J Biol Chem       Date:  2000-11-20       Impact factor: 5.157

6.  Leptin signaling in human peripheral blood mononuclear cells, activation of p38 and p42/44 mitogen-activated protein (MAP) kinase and p70 S6 kinase.

Authors:  G R van den Brink; T O'Toole; J C Hardwick; D E van den Boogaardt; H H Versteeg; S J van Deventer; M P Peppelenbosch
Journal:  Mol Cell Biol Res Commun       Date:  2000-09

7.  PepT1-mediated epithelial transport of dipeptides and cephalexin is enhanced by luminal leptin in the small intestine.

Authors:  M Buyse; F Berlioz; S Guilmeau; A Tsocas; T Voisin; G Péranzi; D Merlin; M Laburthe; M J Lewin; C Rozé; A Bado
Journal:  J Clin Invest       Date:  2001-11       Impact factor: 14.808

8.  Activation of downstream signals by the long form of the leptin receptor.

Authors:  A S Banks; S M Davis; S H Bates; M G Myers
Journal:  J Biol Chem       Date:  2000-05-12       Impact factor: 5.157

9.  Differential regulation of leptin receptor expression by insulin and leptin in neuroblastoma cells.

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  15 in total

1.  Clock is important for food and circadian regulation of macronutrient absorption in mice.

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2.  Modulation of intestinal L-glutamate transport by luminal leptin.

Authors:  Carmen Fanjul; Jaione Barrenetxe; María Pilar Lostao; Robert Ducroc
Journal:  J Physiol Biochem       Date:  2015-05-03       Impact factor: 4.158

3.  MicroRNA-193a-3p Reduces Intestinal Inflammation in Response to Microbiota via Down-regulation of Colonic PepT1.

Authors:  Xin Dai; Xi Chen; Qun Chen; Lei Shi; Hongwei Liang; Zhen Zhou; Qian Liu; Wenjing Pang; Dongxia Hou; Cheng Wang; Ke Zen; Yaozong Yuan; Chen-Yu Zhang; Lu Xia
Journal:  J Biol Chem       Date:  2015-04-30       Impact factor: 5.157

Review 4.  Recent advances in small bowel diseases: Part II.

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Journal:  World J Gastroenterol       Date:  2012-07-14       Impact factor: 5.742

5.  Fermented goat milk consumption during anaemia recovery: ergogenic effect and improvement of skeletal muscle homeostasis.

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Journal:  Eur J Nutr       Date:  2016-07-13       Impact factor: 5.614

Review 6.  Function, Regulation, and Pathophysiological Relevance of the POT Superfamily, Specifically PepT1 in Inflammatory Bowel Disease.

Authors:  Emilie Viennois; Adani Pujada; Jane Zen; Didier Merlin
Journal:  Compr Physiol       Date:  2018-03-25       Impact factor: 9.090

7.  Large litter rearing improves leptin sensitivity and hypothalamic appetite markers in offspring of rat dams fed high-fat diet during pregnancy and lactation.

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8.  Glucose-dependent insulinotropic polypeptide-mediated signaling pathways enhance apical PepT1 expression in intestinal epithelial cells.

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Review 9.  Diverse roles of leptin in the gastrointestinal tract: modulation of motility, absorption, growth, and inflammation.

Authors:  Shadi S Yarandi; Gautam Hebbar; Cary G Sauer; Conrad R Cole; Thomas R Ziegler
Journal:  Nutrition       Date:  2010-10-13       Impact factor: 4.008

10.  Overexpression of gastric leptin precedes adipocyte leptin during high-fat diet and is linked to 5HT-containing enterochromaffin cells.

Authors:  J Le Beyec; A-L Pelletier; K Arapis; M Hourseau; F Cluzeaud; V Descatoire; R Ducroc; T Aparicio; F Joly; A Couvelard; J-P Marmuse; M Le Gall; A Bado
Journal:  Int J Obes (Lond)       Date:  2014-01-28       Impact factor: 5.095

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