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Lacy-Hulbert, Adam

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Lacy-Hulbert

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Lacy-Hulbert, Adam

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  • Publication

    EGL-9 Controls C. elegans Host Defense Specificity through Prolyl Hydroxylation-Dependent and -Independent HIF-1 Pathways

    (Public Library of Science, 2012) Luhachack, Lyly G.; Visvikis, Orane; Wollenberg, Amanda C.; Lacy-Hulbert, Adam; Stuart, Lynda; Irazoqui, Javier Elbio

    Understanding host defense against microbes is key to developing new and more effective therapies for infection and inflammatory disease. However, how animals integrate multiple environmental signals and discriminate between different pathogens to mount specific and tailored responses remains poorly understood. Using the genetically tractable model host Caenorhabditis elegans and pathogenic bacterium Staphylococcus aureus, we describe an important role for hypoxia-inducible factor (HIF) in defining the specificity of the host response in the intestine. We demonstrate that loss of egl-9, a negative regulator of HIF, confers HIF-dependent enhanced susceptibility to S. aureus while increasing resistance to Pseudomonas aeruginosa. In our attempt to understand how HIF could have these apparently dichotomous roles in host defense, we find that distinct pathways separately regulate two opposing functions of HIF: the canonical pathway is important for blocking expression of a set of HIF-induced defense genes, whereas a less well understood noncanonical pathway appears to be important for allowing the expression of another distinct set of HIF-repressed defense genes. Thus, HIF can function either as a gene-specific inducer or repressor of host defense, providing a molecular mechanism by which HIF can have apparently opposing roles in defense and inflammation. Together, our observations show that HIF can set the balance between alternative pathogen-specific host responses, potentially acting as an evolutionarily conserved specificity switch in the host innate immune response.

  • Publication

    Tumor Necrosis Factor (\alpha) Inhibits Expression of the Iron Regulating Hormone Hepcidin in Murine Models of Innate Colitis

    (Public Library of Science, 2012) Shanmugam, Nanda; Ellenbogen, Shiri; Trebicka, Estela; Wang, Lijian; Mukhopadhyay, Subhankar; Lacy-Hulbert, Adam; Gallini, Carey; Garrett, Wendy; Cherayil, Bobby

    Background: Abnormal expression of the liver peptide hormone hepcidin, a key regulator of iron homeostasis, contributes to the pathogenesis of anemia in conditions such as inflammatory bowel disease (IBD). Since little is known about the mechanisms that control hepcidin expression during states of intestinal inflammation, we sought to shed light on this issue using mouse models. Methodology/Principal Findings: Hepcidin expression was evaluated in two types of intestinal inflammation caused by innate immune activation—dextran sulfate sodium (DSS)-induced colitis in wild-type mice and the spontaneous colitis occurring in T-bet/Rag2-deficient (TRUC) mice. The role of tumor necrosis factor (TNF) (\alpha) was investigated by in vivo neutralization, and by treatment of a hepatocyte cell line, as well as mice, with the recombinant cytokine. Expression and activation of Smad1, a positive regulator of hepcidin transcription, were assessed during colitis and following administration or neutralization of TNF(\alpha). Hepcidin expression progressively decreased with time during DSS colitis, correlating with changes in systemic iron distribution. TNF(\alpha) inhibited hepcidin expression in cultured hepatocytes and non-colitic mice, while TNF(\alpha) neutralization during DSS colitis increased it. Similar results were obtained in TRUC mice. These effects involved a TNF(\alpha)-dependent decrease in Smad1 protein but not mRNA. Conclusions/Significance: TNF(\alpha) inhibits hepcidin expression in two distinct types of innate colitis, with down-regulation of Smad1 protein playing an important role in this process. This inhibitory effect of TNF(\alpha) may be superseded by other factors in the context of T cell-mediated colitis given that in the latter form of intestinal inflammation hepcidin is usually up-regulated.