The microbial metabolite Urolithin A reduces C. difficile toxin expression and repairs toxin-induced epithelial damage.
Ghosh, S.; Erickson, D.; Chua, M. J.; Collins, J.; Jala, V. R.
Show abstract
Clostridioides difficile is a gram-positive, anaerobic, spore-forming bacterium that is responsible for antibiotic-associated pseudomembranous colitis. Clostridioides difficile infection (CDI) symptoms can range from diarrhea to life-threatening colon damage. Toxins produced by C. difficile (TcdA and TcdB) cause intestinal epithelial injury and lead to severe gut barrier dysfunction, stem cell damage, and impaired regeneration of the gut epithelium. Current treatment options for intestinal repair are limited. In this study, we demonstrate that treatment with the microbial metabolite urolithin A (UroA) attenuates CDI-induced adverse effects on the colon epithelium in a preclinical model of CDI-induced colitis. Moreover, our analysis suggests that UroA treatment protects against C. difficile-induced inflammation, disruption of gut barrier integrity, and intestinal tight junction proteins in the colon of CDI mice. Importantly, UroA treatment significantly reduced the expression and release of toxins from C. difficile, without inducing bacterial cell death. These results indicate the direct regulatory effects of UroA on bacterial gene regulation. Overall, our findings reveal a novel aspect of UroA activities, as it appears to act at both the bacterial and host levels to protect against CDI-induced colitis pathogenesis. This research sheds light on a promising avenue for the development of novel treatments for C. difficile infection. ImportanceTherapy for C. difficile infections includes the use of antibiotics, immunosuppressors, and fecal microbiota transplantation (FMT). However, these treatments have several drawbacks, including the loss of colonization resistance, promotion of autoimmune disorders, and the potential for unknown pathogens in donor samples. To date, the potential benefits of microbial metabolites in CDI-induced colitis have not been fully investigated. Here, we report for the first time that the microbial metabolite Urolithin A has the potential to block toxin production from C. difficile and enhance gut barrier function to mitigate CDI-induced colitis.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Protection from lethal Clostridioides difficile infection via intraspecies competition for co-germinant 97%
- The gut bacterial community potentiates Clostridioides difficile infection severity 96%
- Intestinal inflammation reversibly alters the microbiota to drive susceptibility to Clostridioides difficile colonization in a mouse model of colitis 96%
Similar papers in this journal
- Ursodeoxycholic acid (UDCA) mitigates the host inflammatory response during Clostridioides difficile infection by altering gut bile acids which attenuates NF-κB signaling via bile acid activated receptors 97%
- Aging dampens the intestinal innate immune response during Clostridioides difficile infection and is associated with altered intestinal eosinophil mobilization 95%
- Neonatal enteropathogenic Escherichia coli infection disrupts microbiota-gut-brain axis signaling 95%
Similar papers in this journal
- Dietary xanthan gum alters antibiotic efficacy against the murine gut microbiota and attenuates Clostridioides difficile colonization 97%
- Degradation of the incretin hormone Glucagon-Like Peptide-1 (GLP-1) by Enterococcus faecalis metalloprotease GelE 95%
- Wnt5A Signaling Regulates Gut Bacterial Survival and T cell Homeostasis 94%
Similar papers in this journal
- Steamed broccoli sprouts alleviate DSS-induced inflammation and retain gut microbial biogeography in mice. 96%
- Early life exposure to broccoli sprouts confers stronger protection against enterocolitis development in an immunological mouse model of inflammatory bowel disease. 96%
- A high-fat/high-protein, Atkins-type diet exacerbates Clostridioides (Clostridium) difficile infection in mice, whereas a high-carbohydrate diet protects 96%
Similar papers in this journal
- A defined bacterial consortium and spatial transcriptomics highlight the complex interaction between Campylobacter jejuni and the murine intestine 96%
- The Autoimmune Susceptibility Gene, PTPN2, Restricts Expansion of a Novel Mouse Adherent-Invasive E. coli 95%
- Psychological stress disrupts intestinal epithelial cell function and mucosal integrity through microbe and host-directed processes 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.