Central anorexigenic actions of bile acids are mediated by TGR5

被引:0
作者
Alessia Perino
Laura. A. Velázquez-Villegas
Nadia Bresciani
Yu Sun
Qingyao Huang
Valérie S. Fénelon
Ashley Castellanos-Jankiewicz
Philippe Zizzari
Giuseppe Bruschetta
Sungho Jin
Aiste Baleisyte
Antimo Gioiello
Roberto Pellicciari
Julijana Ivanisevic
Bernard L. Schneider
Sabrina Diano
Daniela Cota
Kristina Schoonjans
机构
[1] Faculty of Life Sciences,Institute of Bioengineering
[2] Ecole Polytechnique Fédérale de Lausanne,Department of Cellular and Molecular Physiology
[3] University of Bordeaux,Department of Molecular Pharmacology and Therapeutics
[4] INSERM,Brain Mind Institute
[5] Neurocentre Magendie,Department of Pharmaceutical Sciences
[6] U1215,Departamento de Fisiología de la Nutrición
[7] F-3300,undefined
[8] Yale University School of Medicine,undefined
[9] Columbia University Irving Medical Center,undefined
[10] Ecole Polytechnique Fédérale de Lausanne,undefined
[11] University of Perugia,undefined
[12] TES Pharma S.r.l.,undefined
[13] Metabolomics Platform,undefined
[14] Faculty of Biology and Medicine,undefined
[15] University of Lausanne,undefined
[16] Bertarelli Platform for Gene Therapy,undefined
[17] Ecole Polytechnique Fédérale de Lausanne,undefined
[18] Instituto Nacional de Ciencias Médicas y Nutrición Salvador Zubirán,undefined
来源
Nature Metabolism | 2021年 / 3卷
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摘要
Bile acids (BAs) are signalling molecules that mediate various cellular responses in both physiological and pathological processes. Several studies report that BAs can be detected in the brain1, yet their physiological role in the central nervous system is still largely unknown. Here we show that postprandial BAs can reach the brain and activate a negative-feedback loop controlling satiety in response to physiological feeding via TGR5, a G-protein-coupled receptor activated by multiple conjugated and unconjugated BAs2 and an established regulator of peripheral metabolism3–8. Notably, peripheral or central administration of a BA mix or a TGR5-specific BA mimetic (INT-777) exerted an anorexigenic effect in wild-type mice, while whole-body, neuron-specific or agouti-related peptide neuronal TGR5 deletion caused a significant increase in food intake. Accordingly, orexigenic peptide expression and secretion were reduced after short-term TGR5 activation. In vitro studies demonstrated that activation of the Rho–ROCK–actin-remodelling pathway decreases orexigenic agouti-related peptide/neuropeptide Y (AgRP/NPY) release in a TGR5-dependent manner. Taken together, these data identify a signalling cascade by which BAs exert acute effects at the transition between fasting and feeding and prime the switch towards satiety, unveiling a previously unrecognized role of physiological feedback mediated by BAs in the central nervous system.
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页码:595 / 603
页数:8
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