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Biology subjects

Beck, L. C.

Publications and source records attributed to Beck, L. C..

2 recordsLinked to original sources

Human milk oligosaccharide metabolism by Clostridium species suppresses inflammation and pathogen growth

Gut microbiome development is strongly impacted by breastmilk and human milk oligosaccharides (HMOs), with short- and long-term health implications. HMO metabolism is best characterised within bifidobacteria, but the full range of other HMO-utilising species remains unknown. This study examined HMO-utilising bacteria that colonise preterm infants (born <32 weeks gestation), their role in microbiome modulation, and their effects on intestinal barrier function. We found that infant-derived Clostridium perfringens, and three other Clostridium species, metabolise HMOs, producing short chain fatty acids, tryptophan catabolites, and other metabolites known to improve host health. C. perfringens inhibited pathobiont growth and supressed inflammation in preterm-derived intestinal organoids. These findings suggest a previously unrecognised role for C. perfringens, specifically those lacking the perfringolysin O gene, in promoting healthy gut development during infancy.

microbiology↗

Metabolism of ʟ -arabinose converges with virulence regulation to promote enteric pathogen fitness

Virulence and metabolism are often interlinked to control the expression of essential colonisation factors in response to host-associated signals. Here, we identified a novel transporter of the dietary monosaccharide -arabinose that is widely encoded by the zoonotic pathogen enterohaemorrhagic Escherichia coli (EHEC), required for full competitive fitness in the mouse gut and highly expressed during human infection. Accordingly, we discovered that -arabinose induces expression of the EHEC type 3 secretion system, enhancing its ability to attach to host cells, and that the underlying mechanism is dependent on products of its catabolism rather than the sensing of -arabinose as a signal. Finally, using the murine pathogen Citrobacter rodentium, we show that -arabinose metabolism provides a fitness benefit during enteric infection via virulence factor regulation, as opposed to supporting pathogen growth. This study describes an intrinsic mechanism of integrating central sugar metabolism with virulence regulation and highlights the unexpected impact that nutrient utilisation can have in enteric pathogens.

microbiology↗