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Yuvaraj, S.

Publications and source records attributed to Yuvaraj, S..

3 recordsLinked to original sources

Mechanisms of mucosal immunity to oral Shigella infection in a physiological mouse model

Shigella flexneri causes bacillary dysentery, a diarrheal disease responsible for significant global morbidity and mortality. Despite extensive efforts, there is no licensed Shigella vaccine, and due to the lack of tractable and physiological models, mechanisms of adaptive immunity to Shigella are poorly understood. Here, we establish a mouse model that permits mechanistic dissection of adaptive immunity to a physiological oral challenge with Shigella. We find primary Shigella infection confers robust cross-serotype protection against secondary challenge, in a manner strictly dependent on the adaptive immune compartment. Shigella infection induces Shigella-specific CD4+ and CD8+ T cells, but only CD4+ T cells are required for protection. CD4+ T cells produce IFN{gamma} upon secondary challenge, and help B cells produce Shigella-specific IgA. Neither anti-Shigella antibodies nor IFN{gamma} are individually required for immunity to Shigella, but loss of both eliminates protective immunity. Collectively, our results demonstrate that CD4+ T cells orchestrate antibody and cytokine defense against shigellosis.

immunology↗

Molecular Insights into Fungal Innate Immunity Using the Neurospora crassa - Pseudomonas syringae Model

Recent comparative genomics and mechanistic analyses support the existence of a fungal immune system. Fungi encode genes with features similar to non-self recognition systems in plants, animals, and bacteria. However, limited functional or mechanistic evidence exists for the surveillance-system recognition of heterologous microbes in fungi. We found that Neurospora species coexist with Pseudomonas in their natural environment. We leveraged two model organisms, Neurospora crassa and Pseudomonas syringae DC3000 (PSTDC3000) to observe immediate fungal responses to bacteria. PSTDC3000 preferentially surrounds N. crassa cells on a solid surface, causing environmental dependent growth responses, bacterial proliferation and varying fungal fitness. Specifically, the Type III secretion system (T3SS) {Delta}hrcC mutant of PSTDC3000 colonized N. crassa hyphae less well. To dissect initial cellular signaling events within the population of germinated asexual spores (germlings), we performed transcriptomics on N. crassa after PSTDC3000 inoculation. Upon contact with live bacteria, a subpopulation of fungal germlings initiate a response as early as ten minutes post-contact revealing transcriptional differentiation of Reactive Oxygen Species (ROS) mechanisms, trace metal warfare, cell wall remodeling dynamics, multidrug-efflux transporters, secondary metabolite synthesis, and excretion. We dissected mutants of plausible receptors, signaling pathways, and responses that N. crassa uses to detect and mount a defense against PSTDC3000 and found seven genes that influence resistant and susceptibility phenotypes of N. crassa to bacterial colonization. Mutants in genes encoding a ctr copper transporter (tcu-1), ferric reductase (fer-1), superoxide reductase (sod-2), multidrug resistance transporter (mdr-6), a secreted lysozyme-Glycoside hydrolase (lyz) and the Woronin body tether leashin (NCU02793, lah-1 and lah-2) showed a significant reduction of growth in the presence of bacteria, allowing the bacteria to fully take over the fungal mycelium faster than wildtype. In this study we provide a bacterial-fungal model system within Dikarya that allows us to begin to dissect signaling pathways of the putative fungal immune system.

immunology↗

Macrophages orchestrate elimination of Shigella from the intestinal epithelial cell niche via TLR-induced IL-12 and IFN-γ

Bacteria of the genus Shigella replicate in intestinal epithelial cells and cause shigellosis, a severe diarrheal disease that resolves spontaneously in most healthy individuals. During shigellosis, neutrophils are abundantly recruited to the gut, and have long been thought to be central to Shigella control and pathogenesis. However, how shigellosis resolves remains poorly understood due to the longstanding lack of a tractable and physiological animal model. Here, using our newly developed Nlrc4-/-Casp11-/- mouse model of shigellosis, we unexpectedly find no major role for neutrophils in limiting Shigella or in disease pathogenesis. Instead, we uncover an essential role for macrophages in the host control of Shigella. Macrophages respond to Shigella via TLRs to produce IL-12, which then induces IFN-{gamma}, a cytokine that is essential to control Shigella replication in intestinal epithelial cells. Collectively, our findings reshape our understanding of the innate immune response to Shigella.

immunology↗