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PMID: 24799697 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Regulation of host weight gain and lipid metabolism by bacterial bile acid modification in the gut.

Joyce SA, MacSharry J, Casey PG, Kinsella M, Murphy EF, Shanahan F, Hill C, Gahan CG

Abstract

Alterations in the gastrointestinal microbiota have been implicated in obesity in mice and humans, but the key microbial functions influencing host energy metabolism and adiposity remain to be determined. Despite an increased understanding of the genetic content of the gastrointestinal microbiome, functional analyses of common microbial gene sets are required. We established a controlled expression system for the parallel functional analysis of microbial alleles in the murine gut. Using this approach we show that bacterial bile salt hydrolase (BSH) mediates a microbe-host dialogue that functionally regulates host lipid metabolism and plays a profound role in cholesterol metabolism and weight gain in the host. Expression of cloned BSH enzymes in the gastrointestinal tract of gnotobiotic or conventionally raised mice significantly altered plasma bile acid signatures and regulated transcription of key genes involved in lipid metabolism (Pparγ, Angptl4), cholesterol metabolism (Abcg5/8), gastrointestinal homeostasis (RegIIIγ), and circadian rhythm (Dbp, Per1/2) in the liver or small intestine. High-level expression of BSH in conventionally raised mice resulted in a significant reduction in host weight gain, plasma cholesterol, and liver triglycerides, demonstrating the overall impact of elevated BSH activity on host physiology. In addition, BSH activity in vivo varied according to BSH allele group, indicating that subtle differences in activity can have significant effects on the host. In summary, we demonstrate that bacterial BSH activity significantly impacts the systemic metabolic processes and adiposity in the host and represents a key mechanistic target for the control of obesity and hypercholesterolemia.

Keywords
FXR Lactobacillus salivarius adiponectin barrier function host response
MeSH Terms
Adiponectin/metabolism Adiposity Animals Bile Acids and Salts/chemistry Circadian Rhythm Escherichia coli/genetics Gastrointestinal Tract/microbiology Germ-Free Life Hydrolysis Lactobacillus/metabolism Lipid Metabolism/genetics Male Metabolic Syndrome/metabolism Mice Mice, Inbred C57BL Signal Transduction Transcription, Genetic Weight Gain/genetics
Chemicals
Adiponectin Bile Acids and Salts
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Joyce Susan A
Alimentary Pharmabiotic Centre and Schools ofMedicine.
MacSharry John
Alimentary Pharmabiotic Centre and Schools ofMedicine,Microbiology.
Casey Patrick G
Alimentary Pharmabiotic Centre and Schools ofMicrobiology.
Kinsella Michael
Nutrition, and.
Murphy Eileen F
Alimentary Pharmabiotic Centre and Schools ofAlimentary Health Ltd., Cork, Ireland.
Shanahan Fergus
Alimentary Pharmabiotic Centre and Schools of.
Hill Colin
Alimentary Pharmabiotic Centre and Schools ofMicrobiology.
Gahan Cormac G M
Alimentary Pharmabiotic Centre and Schools ofMicrobiology,Pharmacy, University College Cork, Cork, Ireland; and c.gahan@ucc.ie.
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Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2014-05-20
Epub
2014-00-05
Pages
7421-6
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC4034235
Subset
IM
Databases
GEO
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