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BEURY, D.

Publications and source records attributed to BEURY, D..

2 recordsLinked to original sources

Mucosal vaccine immunity induced by a new auxotrophic Pseudomonas aeruginosa strain is linked to Th17 and IgA responses

Pseudomonas aeruginosa (P.a) is a Gram-negative opportunistic pathogen that poses a major global health threat, particularly in immunocompromised individuals, patients with cystic fibrosis, and those with burn injuries or ventilator-associated pneumonia. Despite intense efforts, no licensed vaccine is currently available for human use. In this context, live attenuated vaccines (LAVs) represent a promising but underexplored approach, offering the potential to elicit robust, long-lasting, and multifaceted immune responses including that of inducing trained immunity. Here, we sub-cultured {Delta}LasB PAO1 (a P.a strain that we have shown previously shown to have reduced virulence) in artificial sputum medium (ASM), a culture medium mimicking CF sputum in which bacteria often show auxotrophy. We showed that such a strain (designed here V for vaccine) was auxotrophic, less virulent, and had characteristics of CF-like strains. Crucially, V was able to induce both local (IgA) and systemic humoral responses as well as memory Th17 immune responses, and could, when administered intra-tracheally (but not intra-muscularly), fully protected mice against a lethal PAO1 infection. Overall, the present study demonstrates that our vaccine formulation, in addition to providing an advantageous auxotrophic phenotype adapted to the CF setting, was efficient, when given mucosally, in preferentially inducing secretory IgA and Th17 pathway at mucosal surfaces, a critical barrier that neutralizes pathogens before tissue invasion.

immunology↗

Integrative metagenomics and metabolomics reveal age-associated gut microbiota and metabolite alterations in experimental COVID-19

Aging is a key contributor of morbidity and mortality during acute viral pneumonia. The potential role of age-associated dysbiosis on disease outcomes is still elusive. In the current study, we used high-resolution shotgun metagenomics and targeted metabolomics to characterize SARS-CoV-2-associated changes in the gut microbiota from young (2-month-old) and aged (22-month-old) hamsters, a valuable model of COVID-19. We show that age-related dysfunctions in the gut microbiota are linked to disease severity and long-term sequelae in older hamsters. Our data also reveal age-specific changes in the composition and metabolic activity of the gut microbiota during both the acute phase (day 7 post-infection, D7) and the recovery phase (D22) of infection. Aged hamsters exhibited the most notable shifts in gut microbiota composition and plasma metabolic profiles. Through an integrative analysis of metagenomics, metabolomics, and clinical data, we identified significant associations between bacterial taxa, metabolites and disease markers in the aged group. On D7 (high viral load and lung epithelial damage) and D22 (body weight loss and fibrosis), numerous amino acids, amino acid-related molecules, and indole derivatives were found to correlate with disease markers. In particular, a persistent decrease in phenylalanine, tryptophan, glutamic acid, and indoleacetic acid in aged animals positively correlated with poor recovery of body weight and/or lung fibrosis by D22. In younger hamsters, several bacterial taxa (Eubacterium, Oscillospiraceae, Lawsonibacter) and plasma metabolites (carnosine and cis-aconitic acid) were associated with mild disease outcomes. These findings support the need for age-specific microbiome-targeting strategies to more effectively manage acute viral pneumonia and long-term disease outcomes.

immunology↗