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Jacinto, A.

Publications and source records attributed to Jacinto, A..

2 recordsLinked to original sources

Enterococcus faecalis V583 LuxS/AI-2 system is devoid of role in intra-species quorum-sensing but contributes to virulence in a Drosophila host model

The AI-2 i nterspecies quorum-sensing molecule is produced by the LuxS enzyme and has been ascribed a role in virulence in several bacteria. The nosocomial pathogen Enterococcus faecalis inhabits several different environments where multispecies communities are established. However, despite the presence of a luxS gene in this pathogen, its role in E. faecalis pathogenesis has never been assessed. In the present work, we deleted the luxS gene from the vancomycin-resistant clinical isolate E. faecalis V583 and demonstrated the lack of AI-2 production by the mutant strain. Using microarrays and externally added (S)-4,5-dihydroxy-2,3-pentanedione we showed that AI-2 is not sensed by E. faecalis as a canonical quorum-sensing molecule and that the luxS mutation caused pleiotropic effects in gene expression, which could not be complemented by extracellularly added AI-2. These global differences in gene expression affected several gene functional roles, mainly those enrolled in metabolism and transport. Metabolic phenotypi ng of the luxS mutant, using Biolog plates, showed differences in utilization of galactose. AI-2 production by LuxS was shown to be irrelevant for some phenotypes related to the pathogenic potential of E. faecalis namely biofilm formation, adhesion to Caco-2 cells, resistance to oxidative stress and survival inside J-774 macrophages. However, the luxS mutant was attenuated when tested in the Drosophila septic injury model, as its deletion led to delayed fly death. Overall our findings show that differential gene expression related to the luxS mutation cannot be ascribed to quorum-sensing. Moreover, the role of LuxS appears to be limited to metabolism.

microbiology

The contribution of melanization to Drosophila survival changes with Enterococcus faecalis V583 genomic content

Enterococcus faecalis is a human opportunist pathogen able to infect and kill Drosophila. Previous studies proved that E. faecalis carrying the Fsr quorum sensing system are extremely virulent. Fsr is the regulator of two important virulence factors, gelatinase and serine protease, which cause death of Drosophila adult flies by decreasing its tolerance to infection. The exact mechanism underlying the toxicity of these E. faecalis virulence factors is nevertheless not known, in particular the way they interfere with the host immune response. In the present study, we investigated the influence of Fsr-GelE-SprE bacterial factors on different immunity responses, namely antimicrobial peptide production, phagocytosis and melanization. Using E. faecalis V583 wild type and E. faecalis V583 {Delta}fsrB{Delta}gelE{Delta}sprE mutant we showed that both drosomycin production and phagocytosis were activated to similar levels by the two bacterial strains. However, fly pupae infected with the mutant strain showed less melanization and higher survival rates when compared to pupae infected with wild type bacteria. Using adult flies carrying the PPO1{Delta} PPO2{Delta} mutation, we found that absence of melanization had a different impact in survival of the flies when infected with the two E. faecalis strains. PPO1{Delta}, PPO2{Delta} mutant flies were more tolerant to E. faecalis deprived of its major virulence factors. By showing that the presence of the E. faecalis proteases completely alters the impact of melanization activation on Drosophila tolerance, this study provides new clues on the interactions between E. faecalis virulence factors and the fly{acute}s immune system. Future studies on Drosophila immunity should consider the pathogen genomic content.

microbiology