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Luk, C. H.

Publications and source records attributed to Luk, C. H..

2 recordsLinked to original sources

Salmonella endorses a dormant state within human epithelial cells for persistent infection

Salmonella Typhimurium (S. Typhimurium) is an enteric bacterium capable of invading a wide range of hosts, including rodents and humans. It targets different host cell types showing different intracellular lifestyles. Within the infected cells S. Typhimurium colonizes multiple intracellular niches, and it is able to either actively divide at various rates, or remain dormant to persist. A comprehensive tool to monitor these distinct S. Typhimurium lifestyles has not been available so far. Here we developed a novel fluorescent reporter, Salmonella Intracellular Analyzer (SINA), compatible for fluorescence microscopy and flow cytometry for quantification at the single-bacterium level. Using SINA, we identified a S. Typhimurium subpopulation in infected epithelial cells that exhibits a unique phenotype in comparison to the previously documented vacuolar or cytosolic S. Typhimurium. This newly identified subpopulation remained dormant within a vesicular compartment distinct from either conventional Salmonella-containing vacuoles (SCV) or the previously reported niche of dormant S. Typhimurium inside macrophages. The dormant S. Typhimurium inside enterocytes were viable and expressed Salmonella Pathogenicity Island 2 (SPI-2) virulence factors at later infection time points. We found that the formation of these dormant S. Typhimurium is not triggered by the loss of SPI-2 expression but it is regulated by (p)ppGpp-mediated stringent response through RelA and SpoT. We predict that intraepithelial dormant S. Typhimurium represents an important pathogen niche as it provides an alternative strategy for S. Typhimurium pathogenicity and persistence. Author SummarySalmonella Typhimurium is a clinically relevant bacterial pathogen that causes Salmonellosis. It can actively or passively invade various host cell types and reside in a Salmonella-containing vacuole (SCV) within host cells. The SCV can be remodeled into a replicative niche with the aid of Salmonella Type III Secretion System 2 (T3SS2) effectors or else, the SCV is ruptured for the access of the nutrient-rich host cytosol. Depending on the infected host cell type, S. Typhimurium undertake different lifestyles that are distinct by their subcellular localization, replication rate and metabolic rate. We present here a novel fluorescent reporter system that rapidly detects S. Typhimurium lifestyles using fluorescence microscopy and flow cytometry. We identified a dormant S. Typhimurium population within enterocytes that displays capacities in host cell persistence, dormancy exit and antibiotic tolerance. We found that the molecular pathway suppressing S. Typhimurium dormancy in enterocytes is the one that has been shown to promote dormancy in macrophages. This suggests a divergent physiological consequence regulated by the same set of S. Typhimurium molecular mediators depending on the challenged host cell type. Altogether, our work demonstrates the potential of fluorescence reporters in facile bacterial characterization, and revealed a dormant S. Typhimurium population in human enterocytes that is distinct from those observed in macrophages and fibroblasts.

microbiology

Salmonella subverts autophagy balancing bacterial fate and cellular inflammation

Salmonella Typhimurium (S. Typhimurium) is an enteric bacterium capable of invading a wide range of host cell types and adopting different intracellular lifestyles for survival. Host endocytic trafficking and autophagy have been implied to regulate the S. Typhimurium subcellular localization and survival. To reveal alternative host regulators on S. Typhimurium lifestyle, we combined a novel fluorescent reporter, Salmonella Intracellular Analyzer (SINA) with haploid forward genetic screening. This identified transcription factor c-MYC as a negative regulator of S. Typhimurium cytosolic lifestyle via stabilizing the Salmonella-containing vacuole (SCV). We further confirmed that c-MYC downstream regulated LC3 acts to maintain SCV stability and limits S. Typhimurium cytosolic lifestyle. We demonstrated that LC3 is recruited to the SCV prior to the endomembrane damage marker Galectin 3, and it regulates SCV stability independent of the autophagosome adaptor NDP52. The LC3 processing enzymes ATG3 and ATG4 reciprocally act on SCV stability, where the loss of LC3-PE conjugation in the absence of ATG3 limits SCV damages. We further identified the dosage-dependent function of the S. Typhimurium effector SopF in mediating SCV stability by actively avoiding LC3 recruitment to the proximity of the SCV to reduce its catastrophic rupture and host cell death. Altogether, we offer insights on the significance of cellular transcription profile in the determination of S. Typhimurium pathophysiology as well as the underlying host-evasion strategy of S. Typhimurium.

microbiology