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Yamba, M.

Publications and source records attributed to Yamba, M..

2 recordsLinked to original sources

Serratia marcescens Outer Membrane Vesicles rapidly paralyze Drosophila melanogaster through triggering apoptosis in the nervous system

The pathogenicity of Gram-negative bacteria is mediated by multiple virulence factors that likely include secreted Outer Membrane Vesicles (OMVs) that can act as a cargo for delivery of enzymes or toxins to target tissues. Here, we have studied the effects on the host of OMVs prepared from one of the most potent pathogens of Drosophila melanogaster, Serratia marcescens. OMV injection leads to the apparent demise of flies within few hours. We identify a number of host defenses that somewhat protect it from the action of OMVs, namely the systemic humoral immunity pathway Immune deficiency, Prophenol Oxidases 1&2, and the redox active enzymes Dual oxidase, NADPH-oxidase, and Nitric Oxygen Synthase. In contrast, unidentified hemocyte function(s) and the circulating protease Hayan promote the pathogenicity of OMVs. Mechanistically, we find that OMVs promote the activation of the JNK pathway and the transient expression of the pro-apoptotic genes head-involution defective and reaper in at least neurons. Our data suggest that mitochondrially-derived reactive oxygen species promote neuronal cell death that leads to the paralysis of OMV-injected flies. We identify the metalloprotease PrtA as a major virulence factor of OMVs and show that the injection of purified PrtA mimics most of the effects of OMVs. Finally, our data further indicate that PrtA contributes to the pathogenicity of injected Serratia marcescens. This study underscores the potential for OMVs to act as virulence factors that efficiently target the nervous system in vivo despite the blood brain barrier.

immunology↗

Nora virus proliferates in dividing intestinal stem cells and sensitizes flies to intestinal infection and oxidative stress

The digestive tract represents the most complex interface of an organism with its biotope. Food may be contaminated by pathogens and toxicants while an abundant and complex microbiota thrives in the gut lumen. The organism must defend itself against potentially noxious biotic or abiotic stresses while preserving its microbiota, provided it plays a beneficial role. The presence of intestinal viruses adds another layer of complexity. Starting from a differential sensitivity of two lines from the same Drosophila wild-type strain to ingested Pseudomonas aeruginosa, we report here that the presence of Nora virus in the gut epithelium promotes the sensitivity to this bacterial pathogen as well as to an ingested oxidizing xenobiotic. The genotype, age, nature of the ingested food and, to a limited extent, the microbiota are relevant parameters that influence the effects of Nora virus on host fitness. Mechanistically, we detect the initial presence of the virus essentially in progenitor cells. Upon stress such as infection, exposure to xenobiotics, aging or feeding on a rich-food diet, the virus is then detected in enterocytes, which correlates with a disruption of the intestinal barrier function in aged flies. Finally, we show that the virus proliferates only when ISCs are induced to divide. We propose that enterocytes essentially get infected through lineage from progenitor cells and are not directly infected. In conclusion, it is important to check that experimental strains are devoid of intestinal viruses when monitoring survival/life span of fly lines or when investigating the homeostasis of the intestinal epithelium as these viruses can constitute significant confounding factors.

immunology↗