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Apelin targets gut contraction to control glucose metabolism via the brain

OBJECTIVE: The gut–brain axis is considered as a major regulatory checkpoint in the control of glucose homeostasis. The detection of nutrients and/or hormones in the duodenum informs the hypothalamus of the host's nutritional state. This process may occur via hypothalamic neurons modulating cen...

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Autores principales: Fournel, Audren, Drougard, Anne, Duparc, Thibaut, Marlin, Alysson, Brierley, Stuart M, Castro, Joel, Le-Gonidec, Sophie, Masri, Bernard, Colom, André, Lucas, Alexandre, Rousset, Perrine, Cenac, Nicolas, Vergnolle, Nathalie, Valet, Philippe, Cani, Patrice D, Knauf, Claude
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BMJ Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5284480/
https://www.ncbi.nlm.nih.gov/pubmed/26565000
http://dx.doi.org/10.1136/gutjnl-2015-310230
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author Fournel, Audren
Drougard, Anne
Duparc, Thibaut
Marlin, Alysson
Brierley, Stuart M
Castro, Joel
Le-Gonidec, Sophie
Masri, Bernard
Colom, André
Lucas, Alexandre
Rousset, Perrine
Cenac, Nicolas
Vergnolle, Nathalie
Valet, Philippe
Cani, Patrice D
Knauf, Claude
author_facet Fournel, Audren
Drougard, Anne
Duparc, Thibaut
Marlin, Alysson
Brierley, Stuart M
Castro, Joel
Le-Gonidec, Sophie
Masri, Bernard
Colom, André
Lucas, Alexandre
Rousset, Perrine
Cenac, Nicolas
Vergnolle, Nathalie
Valet, Philippe
Cani, Patrice D
Knauf, Claude
author_sort Fournel, Audren
collection PubMed
description OBJECTIVE: The gut–brain axis is considered as a major regulatory checkpoint in the control of glucose homeostasis. The detection of nutrients and/or hormones in the duodenum informs the hypothalamus of the host's nutritional state. This process may occur via hypothalamic neurons modulating central release of nitric oxide (NO), which in turn controls glucose entry into tissues. The enteric nervous system (ENS) modulates intestinal contractions in response to various stimuli, but the importance of this interaction in the control of glucose homeostasis via the brain is unknown. We studied whether apelin, a bioactive peptide present in the gut, regulates ENS-evoked contractions, thereby identifying a new physiological partner in the control of glucose utilisation via the hypothalamus. DESIGN: We measured the effect of apelin on electrical and mechanical duodenal responses via telemetry probes and isotonic sensors in normal and obese/diabetic mice. Changes in hypothalamic NO release, in response to duodenal contraction modulated by apelin, were evaluated in real time with specific amperometric probes. Glucose utilisation in tissues was measured with orally administrated radiolabeled glucose. RESULTS: In normal and obese/diabetic mice, glucose utilisation is improved by the decrease of ENS/contraction activities in response to apelin, which generates an increase in hypothalamic NO release. As a consequence, glucose entry is significantly increased in the muscle. CONCLUSIONS: Here, we identify a novel mode of communication between the intestine and the hypothalamus that controls glucose utilisation. Moreover, our data identified oral apelin administration as a novel potential target to treat metabolic disorders.
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spelling pubmed-52844802017-02-07 Apelin targets gut contraction to control glucose metabolism via the brain Fournel, Audren Drougard, Anne Duparc, Thibaut Marlin, Alysson Brierley, Stuart M Castro, Joel Le-Gonidec, Sophie Masri, Bernard Colom, André Lucas, Alexandre Rousset, Perrine Cenac, Nicolas Vergnolle, Nathalie Valet, Philippe Cani, Patrice D Knauf, Claude Gut Neurogastroenterology OBJECTIVE: The gut–brain axis is considered as a major regulatory checkpoint in the control of glucose homeostasis. The detection of nutrients and/or hormones in the duodenum informs the hypothalamus of the host's nutritional state. This process may occur via hypothalamic neurons modulating central release of nitric oxide (NO), which in turn controls glucose entry into tissues. The enteric nervous system (ENS) modulates intestinal contractions in response to various stimuli, but the importance of this interaction in the control of glucose homeostasis via the brain is unknown. We studied whether apelin, a bioactive peptide present in the gut, regulates ENS-evoked contractions, thereby identifying a new physiological partner in the control of glucose utilisation via the hypothalamus. DESIGN: We measured the effect of apelin on electrical and mechanical duodenal responses via telemetry probes and isotonic sensors in normal and obese/diabetic mice. Changes in hypothalamic NO release, in response to duodenal contraction modulated by apelin, were evaluated in real time with specific amperometric probes. Glucose utilisation in tissues was measured with orally administrated radiolabeled glucose. RESULTS: In normal and obese/diabetic mice, glucose utilisation is improved by the decrease of ENS/contraction activities in response to apelin, which generates an increase in hypothalamic NO release. As a consequence, glucose entry is significantly increased in the muscle. CONCLUSIONS: Here, we identify a novel mode of communication between the intestine and the hypothalamus that controls glucose utilisation. Moreover, our data identified oral apelin administration as a novel potential target to treat metabolic disorders. BMJ Publishing Group 2017-02 2015-11-12 /pmc/articles/PMC5284480/ /pubmed/26565000 http://dx.doi.org/10.1136/gutjnl-2015-310230 Text en Published by the BMJ Publishing Group Limited. For permission to use (where not already granted under a licence) please go to http://www.bmj.com/company/products-services/rights-and-licensing/ This is an Open Access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/
spellingShingle Neurogastroenterology
Fournel, Audren
Drougard, Anne
Duparc, Thibaut
Marlin, Alysson
Brierley, Stuart M
Castro, Joel
Le-Gonidec, Sophie
Masri, Bernard
Colom, André
Lucas, Alexandre
Rousset, Perrine
Cenac, Nicolas
Vergnolle, Nathalie
Valet, Philippe
Cani, Patrice D
Knauf, Claude
Apelin targets gut contraction to control glucose metabolism via the brain
title Apelin targets gut contraction to control glucose metabolism via the brain
title_full Apelin targets gut contraction to control glucose metabolism via the brain
title_fullStr Apelin targets gut contraction to control glucose metabolism via the brain
title_full_unstemmed Apelin targets gut contraction to control glucose metabolism via the brain
title_short Apelin targets gut contraction to control glucose metabolism via the brain
title_sort apelin targets gut contraction to control glucose metabolism via the brain
topic Neurogastroenterology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5284480/
https://www.ncbi.nlm.nih.gov/pubmed/26565000
http://dx.doi.org/10.1136/gutjnl-2015-310230
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