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Geiser, P.

Publications and source records attributed to Geiser, P..

4 recordsLinked to original sources

The pcnB gene sustains Shigella flexneri virulence

The enteropathogen Shigella flexneri employs a Type Three Secretion System (T3SS) to colonize intestinal epithelial cells. Genes encoding the T3SS are located on a large IncFII virulence plasmid, pINV. T3SS expression comes at the expense of slowed Shigella growth and is therefore strictly controlled by both transcriptional and post-transcriptional mechanisms. Following up on a recent genome-wide screen, we here show that the chromosomal gene pcnB, encoding the poly-A polymerase I (PAP-I), slows Shigella growth at 37{degrees}C, while at the same time promotes early colonization of a human epithelial enteroid model. Proteomic profiling revealed that pcnB drives global increase of the Shigella T3SS virulence program. Accordingly, pcnB sustains pINV replication to a level optimal for Shigella virulence. This is achieved through increased degradation of the antisense RNA CopA, involved in plasmid replication control. The pcnB effect on pINV replication was found to also ensure longer-term intraepithelial expansion of Shigella following human intestinal epithelium invasion. Our findings exemplify how an optimal pINV level is necessary for the execution of Shigellas infection cycle. AUTHOR SUMMARYBacterial infections represent a major global threat. Understanding the genetic determinants promoting infections is crucial to overcome this threat. Shigella is an intracellular bacterial pathogen that invades and disseminates in the intestinal epithelium, causing bacillary dysentery in humans. Shigellas ability to cause disease relies on the delivery of effector proteins into the host cells through an injection machinery, with most of the genes involved in this process located on a large virulence plasmid. Here we show that the chromosomal gene pcnB sustains an optimal virulence plasmid level. This is crucial for Shigella to maximize virulence protein expression and thereby efficiently invade, replicate and spread within the intestinal epithelium.

microbiology↗

Determinants of the Divergent Salmonella and Shigella Epithelial Colonization Strategies Resolved in Human Enteroids and Colonoids

Despite close relatedness, the major enteropathogens Salmonella and Shigella differ in infectious dose, pathogenesis, and disease kinetics. The prototype strains Salmonella enterica serovar Typhimurium (Salmonella) and Shigella flexneri (Shigella) use Type-3-secretion-systems (T3SSs) to colonize intestinal epithelial cells (IECs), but have evolved partially unique sets of T3SS effectors and accessory virulence factors. A synthesis of how these differences impact the temporal progression of infection in non-transformed human epithelia is missing. Here, we followed Salmonella and Shigella infections of human enteroids and colonoids by time-lapse imaging to pinpoint virulence factor modules that shape the divergent epithelial colonization strategies. By an apical targeting module that integrates flagella and the SPI-4-encoded adhesin system with T3SS, Salmonella accomplishes appreciable numbers of apical invasion events, promptly terminated by IEC death, and thus fostering a polyclonal iterative epithelial colonization strategy. The lack of a corresponding module in Shigella makes this pathogen reliant on external factors such as preexisting damage for rare apical access to the intraepithelial environment. However, Shigella compensates for this ineptness by an intraepithelial expansion module, where tight coupling of OspC3-dependent temporal delay of cell death and IcsA-mediated lateral spread enables intraepithelial Shigella to outrun the IEC death response, fostering an essentially monoclonal colonization strategy.

microbiology↗

A Two-Step Activation Mechanism Enables Mast Cells to Differentiate their Response between Extracellular and Invasive Enterobacterial Infection

Mast cells (MCs) localize to mucosal tissues and contribute to innate immune defenses against infection. How MCs sense, differentiate between, and respond to bacterial pathogens remains a topic of ongoing debate. Using the prototype enteropathogen Salmonella Typhimurium (S.Tm) and other closely related enterobacteria, we here demonstrate that MCs can regulate their cytokine secretion response to distinguish between extracellular and invasive bacterial infection. Tissue-invasive S.Tm and MCs colocalize in the Salmonella-infected mouse gut. Toll-like Receptor 4 (TLR4) sensing of extracellular S.Tm, or pure LPS, causes a slow and modest induction of MC cytokine transcripts and proteins, including IL-6, IL-13, and TNF. By contrast, type-III-secretion-system-1 (TTSS-1)-dependent S.Tm invasion of both mouse and human MCs triggers rapid and potent inflammatory gene expression and >100-fold elevated cytokine secretion. The S.Tm TTSS-1 effectors SopB, SopE, and SopE2 here elicit a second activation signal, including Akt phosphorylation downstream of effector translocation, which combines with TLR activation to promote the full-blown MC response. Supernatants from S.Tm-infected MCs boost macrophage survival and maturation from bone-marrow progenitors. Taken together, this study shows that MCs can differentiate between extracellular and host-cell invasive enterobacteria via a two-step activation mechanism and tune their inflammatory output accordingly.

immunology↗

Gasdermin D is the only Gasdermin that provides non-redundant protection against acute Salmonella gut infection

Gasdermins (GSDMs) share a common functional domain structure and are best known for their capacity to form membrane pores. These pores are hallmarks of a specific form of cell death called pyroptosis and mediate the secretion of pro-inflammatory cytokines such as interleukin 1{beta} (IL1{beta}) and interleukin 18 (IL18). Thereby, Gasdermins have been implicated in various immune responses against cancer and infectious diseases such as acute Salmonella Typhimurium (S.Tm) gut infection. However, to date, we lack a comprehensive functional assessment of the different Gasdermins (GSDMA-E) during S.Tm infection in vivo. Here, we have performed littermate-controlled oral S.Tm infections to investigate the impact of all murine Gasdermins. While GSDMA, -C and -E appear dispensable, we show that GSDMD (i) restricts S.Tm loads in the gut tissue and systemic organs, (ii) controls gut inflammation kinetics, and (iii) prevents epithelium disruption by 72h of the infection. Full protection requires GSDMD expression by both bone-marrow-derived lamina propria cells and intestinal epithelial cells (IECs). In vivo experiments, 3D- and 2D-enteroid infections further show that infected IEC extrusion proceeds also without GSDMD, but that GSDMD controls the permeabilization and morphology of the extruding cells and affects extrusion kinetics. As such, this work identifies a non-redundant multipronged role of GSDMD in mucosal tissue defence against a common enteric pathogen. HIGHLIGHTSO_LIGasdermin D restricts Salmonella Typhimurium (S.Tm) translocation across the gut tissue, controls gut inflammation kinetics, and prevents epithelium disruption by 72h of the infection. C_LIO_LIGasdermins A, C and E appear dispensable for protection against acute S.Tm gut infection. C_LIO_LIGasdermin D in bone-marrow-derived lamina propria cells and intestinal epithelial cells complement each other to suppress gut tissue S.Tm loads. C_LIO_LIGasdermin D is not required for extrusion of infected intestinal epithelial cells but drives their permeabilization and affects qualitative features of the extrusion process. C_LI

immunology↗