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Biology subjects

Kheloufi, M.

Publications and source records attributed to Kheloufi, M..

2 recordsLinked to original sources

Restoring vascular endothelial autophagic flux reduces atherosclerotic lesions

Atherosclerotic lesions preferentially develop in arterial areas exposed to low shear stress, where endothelial cells express a pro-inflammatory, apoptotic, and senescent phenotype. Endothelial cells exposed to atheroprone low shear stress present a defective autophagic flux, which favors a pro-inflammatory phenotype and the formation of atherosclerotic lesions. We tested the hypothesis that HDAC6 inhibition could restore adequate levels of autophagy in endothelial cells exposed to low shear stress. We found that blocking HDAC6 activity, either by pharmacological inhibition (Tubastatin-A) or genetic approaches (shHDAC6), raised levels of acetylated -tubulin, as well as LC3-II/I ratio, LC3 puncta area, nuclear TFEB translocation and autophagic flux in cultured endothelial cells exposed to low shear stress. This effect was associated with a reduced expression of inflammatory markers (ICAM-1, VCAM-1 and MCP-1) in TNF--stimulated cells. Impaired endothelial autophagic flux was restored in the aortic arch (atheroprone conditions) of HDAC6-/-mice, when compared to control littermates. Atherosclerotic plaque size was significantly decreased in the aortic arch of chimeric HDAC6-/-/ApoE-/- mice, transplanted with HDAC6+/+/ApoE-/- bone marrow, when compared to HDAC6+/+/ApoE-/- littermate controls. Taken together, these results indicate that HDAC6-inhibition may be an interesting strategy to restore endothelial autophagic flux, to help promote an atheroprotective endothelial phenotype despite unfavorable shear stress conditions.

pathology

Bacterial inhibition of CD8+ T-cells mediated cell death promotes neuroinvasion and within-host persistence

Central nervous system infections are amongst the most severe1,2, yet the mechanisms by which pathogens access the brain remain poorly understood. The model microorganism Listeria monocytogenes (Lm) is a major foodborne pathogen that causes neurolisteriosis, one of the deadliest central nervous system infections3,4. While immunosuppression is a well-established host risk factor for neurolisteriosis3,5, little is known regarding the bacterial factors underlying Lm neuroinvasion. We have developed a clinically-relevant experimental model of neurolisteriosis, using hypervirulent neuroinvasive strains6 inoculated in a humanized mouse model of infection7, and we show that the bacterial protein InlB protects infected monocytes from CD8+ T-cells Fas-mediated cell death, in a c-Met/PI3-kinase/FLIP-dependent manner. This blockade of anti-Lm specific cellular immune response lengthens infected monocytes lifespan, favoring Lm transfer from infected monocytes to the brain. The intracellular niche created by InlB-mediated cell-autonomous immunosuppression also promotes Lm fecal shedding, accounting for its selection as a Lm core virulence gene. Here, we have uncovered an unanticipated specific mechanism by which a bacterial pathogen confers to the cells it infects an increased lifespan by rendering them resistant to cell-mediated immunity. This promotes Lm within-host persistence and dissemination to the central nervous system, and transmission.

immunology