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Feofanova, V.

Publications and source records attributed to Feofanova, V..

2 recordsLinked to original sources

15-deoxy-Δ12,14-prostaglandin J2 limits Salmonella infection through regulation of host TLR4 signaling and inflammasome activation

Enteric infections caused by Salmonella enterica remain a major global health concern and are increasingly associated with antimicrobial resistance. Therefore, new strategies to combat this important pathogen are needed. The interactions between S. enterica and the human host have been the subject of intense investigation over the last several decades, yet new findings continue to emerge. We previously showed that 15-deoxy-{Delta}12,14-prostaglandin J2 (15d-PGJ2) reduces Salmonella colonization of macrophages, but the mechanisms underlying this protective effect were still unknown. Here, we demonstrate that 15d-PGJ2 limits Salmonella infection by suppressing TLR4 signaling and inflammasome activation. Treatment with 15d-PGJ2 reduced TLR4 expression, NF-{kappa}B activation, iNOS, COX-2, nitric oxide production, IL-1{beta} release, and inflammasome-related targets, including NLRP3 and caspase-1 activity, while only partially reversing macrophage polarization. Combined treatment with the TLR4 antagonist TAK-242 further reduced bacterial colonization of and IL-1{beta} release by macrophages, supporting the involvement of TLR4 signaling in the effects of 15d-PGJ2. During mouse infections, 15d-PGJ2 reduced bacterial burdens in a tissue-dependent manner. Together, these findings demonstrate that 15d-PGJ2 limits Salmonella infection through selective modulation of TLR4 signaling and inflammasome activation.

microbiology↗

Enterocloster citroniae and related gut microbiome species modulate Vibrio cholerae biofilm formation through the production of bioactive small molecules

Cholera is a diarrheal disease that affects millions of people globally. Although the causative agent, Vibrio cholerae, has been extensively studied in isolation, investigation of its interactions with the gut microbiota started relatively recently. We and others previously showed that microbiota-derived metabolites significantly influence V. cholerae behavior. By investigating how an organic extract of human feces affects V. cholerae gene expression, we showed that gut metabolites strongly suppress swimming motility, a trait important for host colonization. Interestingly, extracts of pure cultures of a gut commensal, Enterocloster citroniae, recapitulated this inhibition. Here, we present a comprehensive examination of the effect of small molecules produced by E. citroniae and related species on V. cholerae behavior. We show that E. citroniae small molecules inhibit motility by various V. cholerae strains, and that several phylogenetically related species produce this activity, although the magnitude of the effect varies between strains. Using biofilm formation assays in static and flow conditions, we show that V. cholerae strongly induces biofilm formation in response to E. citroniae metabolites. Transcriptome and reporter analyses showed that several genes involved in synthesis of an extracellular polysaccharide are induced by E. citroniae metabolites. Lastly, we show that V. cholerae interactions with host cells are also modulated by this commensal. These findings advance our understanding of microbiome-pathogen interactions and how commensal bacteria influence V. cholerae virulence through the production of small molecules. In the future, this knowledge may be used to design novel microbiome-based therapeutic approaches to combat cholera and other infections. ImportanceThe human gut is home to a dense and rich community of microbes termed microbiota. This community has critical functions for host health, including protection against enteric pathogens. Despite this important role, we have only recently scratched the surface of the interactions that occur between members of the microbiota and pathogenic invaders. Cholerae is a disease that still causes significant morbidity and mortality worldwide. Studying how the causative agent, Vibrio cholerae, interacts with the microbiota will have implications not only for our understanding of this important microbial community, but may also lead to the development of new therapeutic strategies against cholera and potentially other infectious diseases.

microbiology↗