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  3. Gut Microbiota Orchestrates Energy Homeostasis during Cold.
 

Gut Microbiota Orchestrates Energy Homeostasis during Cold.

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BORIS DOI
10.7892/boris.81377
Date of Publication
December 3, 2015
Publication Type
Article
Division/Institute

Institut für Infektio...

Institut für Infektio...

Contributor
Chevalier, Claire
Stojanović, Ozren
Colin, Didier J
Suarez-Zamorano, Nicolas
Tarallo, Valentina
Veyrat-Durebex, Christelle
Rigo, Dorothée
Fabbiano, Salvatore
Stevanović, Ana
Hagemann, Stefanie Claudia
Institut für Infektionskrankheiten
Montet, Xavier
Seimbille, Yann
Zamboni, Nicola
Hapfelmeier, Siegfried Hektororcid-logo
Institut für Infektionskrankheiten, Forschung
Trajkovski, Mirko
Subject(s)

500 - Science::570 - ...

600 - Technology::610...

Series
Cell
ISSN or ISBN (if monograph)
0092-8674
Publisher
Cell Press
Language
English
Publisher DOI
10.1016/j.cell.2015.11.004
PubMed ID
26638070
Description
Microbial functions in the host physiology are a result of the microbiota-host co-evolution. We show that cold exposure leads to marked shift of the microbiota composition, referred to as cold microbiota. Transplantation of the cold microbiota to germ-free mice is sufficient to increase insulin sensitivity of the host and enable tolerance to cold partly by promoting the white fat browning, leading to increased energy expenditure and fat loss. During prolonged cold, however, the body weight loss is attenuated, caused by adaptive mechanisms maximizing caloric uptake and increasing intestinal, villi, and microvilli lengths. This increased absorptive surface is transferable with the cold microbiota, leading to altered intestinal gene expression promoting tissue remodeling and suppression of apoptosis-the effect diminished by co-transplanting the most cold-downregulated strain Akkermansia muciniphila during the cold microbiota transfer. Our results demonstrate the microbiota as a key factor orchestrating the overall energy homeostasis during increased demand.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/141513
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File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
Cell 2015 Chevalier.pdftextAdobe PDF4.49 MBpublisherpublished restricted
CELL-D-15-01010_R2r.pdftextAdobe PDF6.59 MBpublisheracceptedOpen
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