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Chalklen, L.

Publications and source records attributed to Chalklen, L..

2 recordsLinked to original sources

Infant diet promotes Bifidobacterium community cooperation within a single ecosystem

Diet-microbe interactions play an important role in modulating the early life microbiota, with Bifidobacterium strains and species dominating the gut microbiota of breast-fed infants. Here, we sought to explore how infant diet drives distinct bifidobacterial community composition and dynamics within individual infant ecosystems. Genomic characterisation of 19 strains isolated from breast-fed infants revealed a diverse genomic architecture enriched in carbohydrate metabolism genes, which was distinct to each strain, but collectively formed a pangenome across infants. Presence of gene clusters implicated in digestion of human milk oligosaccharides (HMOs) varied between species, with growth studies indicating within infant differences in the ability to utilise 2FL and LNnT HMOs between strains. We also performed cross-feeding experiments using metabolic products from growth on 2FL or LNnT for non-HMO degrading isolates, these compounds were identified to include fucose, galactose, acetate and N-acetylglucosamine. These data highlight the cooperative nature of individual bifidobacterial founder strains within an infant ecosystem, and how sharing resources maximises nutrient consumption from the diet. We propose that this social behaviour contributes to the diversity and dominance of Bifidobacterium in early life and suggests avenues for development of new diet and microbiota based therapies to promote infant health.

microbiology

Microbiota supplementation with Bifidobacterium and Lactobacillus modifies the preterm infant gut microbiota and metabolome

Supplementation with members of the early-life microbiota or probiotics is becoming increasingly popular to attempt to beneficially manipulate the preterm gut microbiota. We performed a large longitudinal study comprising two preterm groups; 101 orally supplemented with Bifidobacterium and Lactobacillus (Bif/Lacto) and 133 non-supplemented (Control) matched by age, sex, birth-mode, and diet. 16S rRNA metataxonomic profiling on stool samples (n = 592) indicated a predominance of Bifidobacterium, and a reduction of pathobionts in the Bif/Lacto group. Metabolic phenotyping found a parallel increase in fecal acetate and lactate in the Bif/Lacto group compared to the Control group, which positively correlated with Bifidobacterium abundance consistent with the ability of the supplemented Bifidobacterium strain to metabolize human milk oligosaccharides and reduced gut pH. This study demonstrates that microbiota supplementation can modify the preterm microbiome and the gastrointestinal environment to more closely resemble that of a full-term infant.

microbiology