Mucin Cross-Feeding of Infant Bifidobacteria and Eubacterium hallii

Vera Bunesova1,2, Christophe Lacroix1, Clarissa Schwab3

  • 1Laboratory of Food Biotechnology, Institute of Food, Nutrition and Health, ETH Zürich, Schmelzbergstrasse 7, 8092, Zürich, Switzerland.

Microbial Ecology
|July 20, 2017
PubMed

Insights

Bifidobacterium bifidum breaks down mucus, feeding Eubacterium hallii and other microbes. This cross-feeding interaction produces beneficial short-chain fatty acids (SCFAs) crucial for infant gut health and colonization.

Area of Science:

  • Microbiology
  • Human Gut Microbiome
  • Metabolic Interactions

Background:

  • Infant gut mucus provides essential nutrients (mucin glycans) for early microbial colonization.
  • Bifidobacteria dominate the infant gut, with Bifidobacterium bifidum uniquely degrading mucin.
  • Eubacterium hallii is an early commensal that produces SCFAs but cannot degrade complex carbohydrates.

Purpose of the Study:

  • To demonstrate mucin cross-feeding initiated by B. bifidum supports E. hallii growth and SCFA production.
  • To investigate metabolite formation in co-cultures involving B. bifidum, other bifidobacteria, and E. hallii.

Main Methods:

  • Co-culture fermentations were performed with B. bifidum, B. breve/B. infantis, and E. hallii.
  • Growth and metabolite production were quantified in single and multi-strain cultures.
  • Substrate utilization by E. hallii was assessed using lactose and mucin-derived monosaccharides.

Main Results:

  • B. bifidum presence enabled the growth of co-cultured bifidobacteria and E. hallii.
  • Co-cultures produced acetate, formate, lactate (B. bifidum/B. infantis), and butyrate (B. bifidum/E. hallii).
  • Three-strain cultures yielded significant acetate, formate, and butyrate, with propionate indicating fucose cross-feeding.

Conclusions:

  • Trophic interactions between bifidobacteria and E. hallii drive SCFA formation in the infant gut.
  • Specific SCFA profiles (acetate, butyrate, propionate, formate) depend on the microbial consortia involved.
  • This cross-feeding mechanism contributes to SCFA production, benefiting host health and microbial colonization.

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