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Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals

The liver is a key organ of metabolic homeostasis with functions that oscillate in response to food intake. Although liver and gut microbiome crosstalk has been reported, microbiome-mediated effects on peripheral circadian clocks and their output genes are less well known. Here, we report that germ-...

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Autores principales: Montagner, Alexandra, Korecka, Agata, Polizzi, Arnaud, Lippi, Yannick, Blum, Yuna, Canlet, Cécile, Tremblay-Franco, Marie, Gautier-Stein, Amandine, Burcelin, Rémy, Yen, Yi-Chun, Je, Hyunsoo Shawn, Maha, Al-Asmakh, Mithieux, Gilles, Arulampalam, Velmurugesan, Lagarrigue, Sandrine, Guillou, Hervé, Pettersson, Sven, Wahli, Walter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4754633/
https://www.ncbi.nlm.nih.gov/pubmed/26879573
http://dx.doi.org/10.1038/srep20127
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author Montagner, Alexandra
Korecka, Agata
Polizzi, Arnaud
Lippi, Yannick
Blum, Yuna
Canlet, Cécile
Tremblay-Franco, Marie
Gautier-Stein, Amandine
Burcelin, Rémy
Yen, Yi-Chun
Je, Hyunsoo Shawn
Maha, Al-Asmakh
Mithieux, Gilles
Arulampalam, Velmurugesan
Lagarrigue, Sandrine
Guillou, Hervé
Pettersson, Sven
Wahli, Walter
author_facet Montagner, Alexandra
Korecka, Agata
Polizzi, Arnaud
Lippi, Yannick
Blum, Yuna
Canlet, Cécile
Tremblay-Franco, Marie
Gautier-Stein, Amandine
Burcelin, Rémy
Yen, Yi-Chun
Je, Hyunsoo Shawn
Maha, Al-Asmakh
Mithieux, Gilles
Arulampalam, Velmurugesan
Lagarrigue, Sandrine
Guillou, Hervé
Pettersson, Sven
Wahli, Walter
author_sort Montagner, Alexandra
collection PubMed
description The liver is a key organ of metabolic homeostasis with functions that oscillate in response to food intake. Although liver and gut microbiome crosstalk has been reported, microbiome-mediated effects on peripheral circadian clocks and their output genes are less well known. Here, we report that germ-free (GF) mice display altered daily oscillation of clock gene expression with a concomitant change in the expression of clock output regulators. Mice exposed to microbes typically exhibit characterized activities of nuclear receptors, some of which (PPARα, LXRβ) regulate specific liver gene expression networks, but these activities are profoundly changed in GF mice. These alterations in microbiome-sensitive gene expression patterns are associated with daily alterations in lipid, glucose, and xenobiotic metabolism, protein turnover, and redox balance, as revealed by hepatic metabolome analyses. Moreover, at the systemic level, daily changes in the abundance of biomarkers such as HDL cholesterol, free fatty acids, FGF21, bilirubin, and lactate depend on the microbiome. Altogether, our results indicate that the microbiome is required for integration of liver clock oscillations that tune output activators and their effectors, thereby regulating metabolic gene expression for optimal liver function.
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spelling pubmed-47546332016-02-24 Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals Montagner, Alexandra Korecka, Agata Polizzi, Arnaud Lippi, Yannick Blum, Yuna Canlet, Cécile Tremblay-Franco, Marie Gautier-Stein, Amandine Burcelin, Rémy Yen, Yi-Chun Je, Hyunsoo Shawn Maha, Al-Asmakh Mithieux, Gilles Arulampalam, Velmurugesan Lagarrigue, Sandrine Guillou, Hervé Pettersson, Sven Wahli, Walter Sci Rep Article The liver is a key organ of metabolic homeostasis with functions that oscillate in response to food intake. Although liver and gut microbiome crosstalk has been reported, microbiome-mediated effects on peripheral circadian clocks and their output genes are less well known. Here, we report that germ-free (GF) mice display altered daily oscillation of clock gene expression with a concomitant change in the expression of clock output regulators. Mice exposed to microbes typically exhibit characterized activities of nuclear receptors, some of which (PPARα, LXRβ) regulate specific liver gene expression networks, but these activities are profoundly changed in GF mice. These alterations in microbiome-sensitive gene expression patterns are associated with daily alterations in lipid, glucose, and xenobiotic metabolism, protein turnover, and redox balance, as revealed by hepatic metabolome analyses. Moreover, at the systemic level, daily changes in the abundance of biomarkers such as HDL cholesterol, free fatty acids, FGF21, bilirubin, and lactate depend on the microbiome. Altogether, our results indicate that the microbiome is required for integration of liver clock oscillations that tune output activators and their effectors, thereby regulating metabolic gene expression for optimal liver function. Nature Publishing Group 2016-02-16 /pmc/articles/PMC4754633/ /pubmed/26879573 http://dx.doi.org/10.1038/srep20127 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Montagner, Alexandra
Korecka, Agata
Polizzi, Arnaud
Lippi, Yannick
Blum, Yuna
Canlet, Cécile
Tremblay-Franco, Marie
Gautier-Stein, Amandine
Burcelin, Rémy
Yen, Yi-Chun
Je, Hyunsoo Shawn
Maha, Al-Asmakh
Mithieux, Gilles
Arulampalam, Velmurugesan
Lagarrigue, Sandrine
Guillou, Hervé
Pettersson, Sven
Wahli, Walter
Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title_full Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title_fullStr Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title_full_unstemmed Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title_short Hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
title_sort hepatic circadian clock oscillators and nuclear receptors integrate microbiome-derived signals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4754633/
https://www.ncbi.nlm.nih.gov/pubmed/26879573
http://dx.doi.org/10.1038/srep20127
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