Literature DB >> 32801182

Sharing a β-Glucan Meal: Transcriptomic Eavesdropping on a Bacteroides ovatus-Subdoligranulum variabile-Hungatella hathewayi Consortium.

Manuela Centanni1, Ian M Sims2, Tracey J Bell2, Ambarish Biswas1, Gerald W Tannock3.   

Abstract

Whole-transcriptome analysis was used to investigate the molecular interplay between three bacterial species that are members of the human gut microbiota. Bacteroides ovatus, Subdoligranulum variabile, and Hungatella hathewayi formed associations in cocultures fed barley β-glucan, a constituent of dietary fiber. B. ovatus depolymerized β-glucan and released, but did not utilize, 3-O-β-cellobiosyl-d-glucose (DP3) and 3-O-β-cellotriosyl-d-glucose (DP4). These oligosaccharides provided growth substrates for S. variabile and H. hathewayi with a preference for DP4 in the case of the latter species. There was increased transcription of a B. ovatus mixed-linkage-β-glucan utilization locus, as well as carbohydrate transporters in S. variabile and H. hathewayi when in batch coculture. Increased transcription of the β-glucan utilization locus did not occur in continuous culture. Evidence for interactions relating to provision of cobalamin, alterations to signaling, and modulation of the "stringent response" (an adaptation to nutrient deprivation) were detected. Overall, we established a bacterial consortium based on barley β-glucan in vitro, which can be used to investigate aspects of the functional blueprint of the human gut microbiota.IMPORTANCE The microbial community, mostly composed of bacterial species, residing in the human gut degrades and ferments polysaccharides derived from plants (dietary fiber) that would not otherwise be digested. In this way, the collective metabolic actions of community members extract additional energy from the human diet. While the variety of bacteria present in the microbial community is well known, the formation of bacterial consortia, and the consequent interactions that result in the digestion of dietary polysaccharides, has not been studied extensively. The importance of our work was the establishment, under laboratory conditions, of a consortium of gut bacteria that formed around a dietary constituent commonly present in cereals. This enabled the metabolic interplay between the bacterial species to be studied. This kind of knowledge is required to construct an interactive, metabolic blueprint of the microbial community that inhabits the human gut.
Copyright © 2020 American Society for Microbiology.

Entities:  

Keywords:  RNAseq; bacterial consortium; beta-glucan; gut microbiota; whole-transcriptome analysis

Mesh:

Substances:

Year:  2020        PMID: 32801182      PMCID: PMC7531972          DOI: 10.1128/AEM.01651-20

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  68 in total

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2.  Interspecies Competition Impacts Targeted Manipulation of Human Gut Bacteria by Fiber-Derived Glycans.

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Journal:  Cell       Date:  2019-09-19       Impact factor: 41.582

Review 3.  Vitamin B12 as a modulator of gut microbial ecology.

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5.  Human gut microbes use multiple transporters to distinguish vitamin B₁₂ analogs and compete in the gut.

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7.  Supplementation of the diet with high-viscosity beta-glucan results in enrichment for lactobacilli in the rat cecum.

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8.  Differential bacterial capture and transport preferences facilitate co-growth on dietary xylan in the human gut.

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9.  The species composition of the human intestinal microbiota differs between particle-associated and liquid phase communities.

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10.  Transcriptome analysis of Acidovorax avenae subsp. avenae cultivated in vivo and co-culture with Burkholderia seminalis.

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Review 1.  Exploring Bacterial Attributes That Underpin Symbiont Life in the Monogastric Gut.

Authors:  Gerald W Tannock
Journal:  Appl Environ Microbiol       Date:  2022-08-29       Impact factor: 5.005

  1 in total

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