Related Experiment Video
Updated: Feb 26, 2026

Assessment of Intestinal Transcytosis of Neonatal Escherichia coli Bacteremia Isolates
Published on: February 17, 2023
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.
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.
Abstract:
Mucus production is initiated before birth and provides mucin glycans to the infant gut microbiota. Bifidobacteria are the major bacterial group in the feces of vaginally delivered and breast milk-fed infants. Among the bifidobacteria, only Bifidobacterium bifidum is able to degrade mucin and to release monosaccharides which can be used by other gut microbes colonizing the infant gut. Eubacterium hallii is an early occurring commensal that produces butyrate and propionate from fermentation metabolites but that cannot degrade complex oligo- and polysaccharides. We aimed to demonstrate that mucin cross-feeding initiated by B. bifidum enables growth and metabolite formation of E. hallii leading to short-chain fatty acid (SCFA) formation. Growth and metabolite formation of co-cultures of B. bifidum, of Bifidobacterium breve or Bifidobacterium infantis, which use mucin-derived hexoses and fucose, and of E. hallii were determined. Growth of E. hallii in the presence of lactose and mucin monosaccharides was tested. In co-culture fermentations, the presence of B. bifidum enabled growth of the other strains. B. bifidum/B. infantis co-cultures yielded acetate, formate, and lactate while co-cultures of B. bifidum and E. hallii formed acetate, formate, and butyrate. In three-strain co-cultures, B. bifidum, E. hallii, and B. breve or B. infantis produced up to 16 mM acetate, 5 mM formate, and 4 mM butyrate. The formation of propionate (approximately 1 mM) indicated cross-feeding on fucose. Lactose, galactose, and GlcNAc were identified as substrates of E. hallii. This study shows that trophic interactions of bifidobacteria and E. hallii lead to the formation of acetate, butyrate, propionate, and formate, potentially contributing to intestinal SCFA formation with potential benefits for the host and for microbial colonization of the infant gut. The ratios of SCFA formed differed depending on the microbial species involved in mucin cross-feeding.
Related Concept Videos
Mucosal Barrier of the Stomach
Within parietal cells, carbonic acid is first formed through the reaction of water and carbon dioxide. The dissociation of carbonic acid releases bicarbonate and hydrogen ions. The bicarbonate...
Renewal of Intestinal Stem Cells
Bacterial Flora of the Large Intestine
The normal gut flora of the colon plays a critical role in generating essential vitamins such as vitamins K, B5, and B7.
Transcytosis of IgG
IgG molecules from a mother undergo transcytosis starting around 13 weeks of gestation. The amount of IgG transferred and entering the fetal blood circulation increases with...
Microvilli
These microvilli are predominantly present in cells lining the small intestine, kidney tubules, and certain cells in the respiratory and reproductive systems. By significantly expanding the surface area of the cell membrane, microvilli enhance the cell's capacity...

