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PMID: 24553467 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Phylogenetic distribution of three pathways for propionate production within the human gut microbiota.

The ISME journal ·Vol. 8 ·No. 6 ·2014-06-00 ·Pages 1323-35

Reichardt N, Duncan SH, Young P, Belenguer A, McWilliam Leitch C, Scott KP, Flint HJ, Louis P

Abstract

Propionate is produced in the human large intestine by microbial fermentation and may help maintain human health. We have examined the distribution of three different pathways used by bacteria for propionate formation using genomic and metagenomic analysis of the human gut microbiota and by designing degenerate primer sets for the detection of diagnostic genes for these pathways. Degenerate primers for the acrylate pathway (detecting the lcdA gene, encoding lactoyl-CoA dehydratase) together with metagenomic mining revealed that this pathway is restricted to only a few human colonic species within the Lachnospiraceae and Negativicutes. The operation of this pathway for lactate utilisation in Coprococcus catus (Lachnospiraceae) was confirmed using stable isotope labelling. The propanediol pathway that processes deoxy sugars such as fucose and rhamnose was more abundant within the Lachnospiraceae (based on the pduP gene, which encodes propionaldehyde dehydrogenase), occurring in relatives of Ruminococcus obeum and in Roseburia inulinivorans. The dominant source of propionate from hexose sugars, however, was concluded to be the succinate pathway, as indicated by the widespread distribution of the mmdA gene that encodes methylmalonyl-CoA decarboxylase in the Bacteroidetes and in many Negativicutes. In general, the capacity to produce propionate or butyrate from hexose sugars resided in different species, although two species of Lachnospiraceae (C. catus and R. inulinivorans) are now known to be able to switch from butyrate to propionate production on different substrates. A better understanding of the microbial ecology of short-chain fatty acid formation may allow modulation of propionate formation by the human gut microbiota.

MeSH Terms
Acrylates/metabolism Bacteria/classification,isolation & purification,metabolism Fermentation Gastrointestinal Tract/microbiology Gram-Positive Bacteria/classification,isolation & purification,metabolism Humans Microbiota Phylogeny Propionates/metabolism Propylene Glycols/metabolism Succinates/metabolism
Chemicals
Acrylates Propionates Propylene Glycols Succinates
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Reichardt Nicole
1] Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK [2] Institute of Molecular, Cell and Systems Biology, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow, UK.
Duncan Sylvia H
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
Young Pauline
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
Belenguer Alvaro
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
McWilliam Leitch Carol
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
Scott Karen P
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
Flint Harry J
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
Louis Petra
Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, UK.
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Article Info
Journal
The ISME journal
Abbr.
ISME J
ISSN
1751-7370
Published
2014-06-00
Epub
2014-00-20
Pages
1323-35
Language
English
Region
England
NLM ID
101301086
PMCID
PMC4030238
Subset
IM
Corrections
ErratumIn
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