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Colquhoun, I. J.

Publications and source records attributed to Colquhoun, I. J..

2 recordsLinked to original sources

Bifidobacterium breve UCC2003 exopolysaccharide modulates the early life microbiota by acting as a dietary substrate

Members of the genus Bifidobacterium represent an important bacterial group for promoting health during early life. Previous studies have indicated that bifidobacterial exopolysaccharides (EPS) are involved in host interactions, with purified EPS also suggested to modulate microbe-microbe interactions by acting as a nutrient substrate. To further explore the role of EPS as a potential dietary component, we determined the longitudinal effects of bifidobacterial EPS on microbial communities and metabolite profiles using an infant model colon system. Bifidobacterium breve UCC2003 was utilised as a representative early life bifidobacterial strain, and a corresponding isogenic EPS-deletion mutant (B. breve UCC2003 EPS-). Initial transcriptomics analysis of the EPS mutant vs. parent B. breve UCC2003 strain highlighted differential expression in a discrete number of genes, including the eps biosynthetic cluster, though overall growth dynamics between the two strains were unaffected. Model colon vessels were inoculated with B. breve strains and microbiome dynamics were monitored using metataxonomic (via 16S rRNA sequencing) and metabolomic (via 1H NMR) approaches. Baseline early life microbiota profiles were similar between vessels, with persistence of B. breve (EPS+ and EPS-) observed between 0-36h. Within the EPS-positive vessel there was a significant shift in microbiome and metabolite profiles until the end of the study (405h); we observed increases of Escherichia and Tyzzerella, and short-chain fatty acids including acetate, propionate and formate, including further correlations between taxa and metabolites which were not observed in the EPS-negative vessel. These data indicate that the B. breve UCC2003 EPS is potentially being metabolised by members of the infant microbial community, leading to differential microbial metabolism and altered metabolite by-products. Overall, these findings may allow for development of EPS-specific strategies to beneficially alter the early life microbiota to promote infant health.

microbiology

Production of multiple bacteriocins, including the novel bacteriocin gassericin M, by Lactobacillus gasseri LM19, a strain isolated from human milk

Bacteriocins are antimicrobial peptides produced by bacteria and their production by health-promoting microbes is regarded as a desirable probiotic trait. We found that Lactobacillus gasseri LM19, a strain isolated from human milk, exhibits antagonistic activity against different enteropathogens and produces several bacteriocins, including a novel bacteriocin, gassericin M. These bacteriocins were purified from culture and synthesised to investigate their activity and potential synergy. L. gasseri LM19 was tested in a complex environment mimicking human colon conditions where it not only survived but expressed the seven bacteriocin genes and produced short chain fatty acids. Metagenomic analysis of these in vitro colon cultures showed that co-inoculation of L. gasseri LM19 with Clostridium perfringens gave profiles with more similarity to controls than to vessels inoculated with C. perfringens alone. This makes L. gasseri LM19 an interesting candidate for further study for maintaining homeostasis in the gut environment.

microbiology