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Behar, Samuel M.

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Behar

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Samuel M.

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Behar, Samuel M.

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Now showing 1 - 3 of 3
  • Publication

    EspA Acts as a Critical Mediator of ESX1-Dependent Virulence in Mycobacterium tuberculosis by Affecting Bacterial Cell Wall Integrity

    (Public Library of Science, 2010) Garces, Alejandra; Woodworth, Joshua S.; Krastins, Bryan; Atmakuri, Krishnamohan; Chase, Michael; Rothchild, Alissa C.; Ramsdell, Talia Lynn; Lopez, Mary; Behar, Samuel M.; Sarracino, David A.; Fortune, Sarah

    Mycobacterium tuberculosis (Mtb) requires the ESX1 specialized protein secretion system for virulence, for triggering cytosolic immune surveillance pathways, and for priming an optimal CD8+ T cell response. This suggests that ESX1 might act primarily by destabilizing the phagosomal membrane that surrounds the bacterium. However, identifying the primary function of the ESX1 system has been difficult because deletion of any substrate inhibits the secretion of all known substrates, thereby abolishing all ESX1 activity. Here we demonstrate that the ESX1 substrate EspA forms a disulfide bonded homodimer after secretion. By disrupting EspA disulfide bond formation, we have dissociated virulence from other known ESX1-mediated activities. Inhibition of EspA disulfide bond formation does not inhibit ESX1 secretion, ESX1-dependent stimulation of the cytosolic pattern receptors in the infected macrophage or the ability of Mtb to prime an adaptive immune response to ESX1 substrates. However, blocking EspA disulfide bond formation severely attenuates the ability of Mtb to survive and cause disease in mice. Strikingly, we show that inhibition of EspA disulfide bond formation also significantly compromises the stability of the mycobacterial cell wall, as does deletion of the ESX1 locus or individual components of the ESX1 system. Thus, we demonstrate that EspA is a major determinant of ESX1-mediated virulence independent of its function in ESX1 secretion. We propose that ESX1 and EspA play central roles in the virulence of Mtb in vivo because they alter the integrity of the mycobacterial cell wall.

  • Publication

    Regulation of Neutrophils by Interferon-(\gamma) Limits Lung Inflammation During Tuberculosis Infection

    (The Rockefeller University Press, 2011) Nandi, Bisweswar; Behar, Samuel M.

    Resistance to Mycobacterium tuberculosis requires the host to restrict bacterial replication while preventing an over-exuberant inflammatory response. Interferon (IFN) (\gamma) is crucial for activating macrophages and also regulates tissue inflammation. We dissociate these two functions and show that IFN-(\gamma^{−/−}) memory CD4(^+) T cells retain their antimicrobial activity but are unable to suppress inflammation. IFN-(\gamma) inhibits CD4(^+) T cell production of IL-17, which regulates neutrophil recruitment. In addition, IFN-(\gamma) directly inhibits pathogenic neutrophil accumulation in the infected lung and impairs neutrophil survival. Regulation of neutrophils is important because their accumulation is detrimental to the host. We suggest that neutrophilia during tuberculosis indicates failed Th1 immunity or loss of IFN-(\gamma) responsiveness. These results establish an important antiinflammatory role for IFN-(\gamma) in host protection against tuberculosis.

  • Publication

    Lipid Mediators in Innate Immunity Against Tuberculosis: Opposing Roles of PGE2 and LXA4 in the Induction of Macrophage Death

    (Rockefeller University Press, 2008) Chen, Minjian; Divangahi, Maziar; Gan, Huixian; Shin, Daniel S.J.; Hong, Song; Lee, David Marvin; Serhan, Charles; Behar, Samuel M.; Remold, Heinz

    Virulent Mycobacterium tuberculosis (Mtb) induces a maladaptive cytolytic death modality, necrosis, which is advantageous for the pathogen. We report that necrosis of macrophages infected with the virulent Mtb strains H37Rv and Erdmann depends on predominant LXA4 production that is part of the antiinflammatory and inflammation-resolving action induced by Mtb. Infection of macrophages with the avirulent H37Ra triggers production of high levels of the prostanoid PGE2, which promotes protection against mitochondrial inner membrane perturbation and necrosis. In contrast to H37Ra infection, PGE2 production is significantly reduced in H37Rv-infected macrophages. PGE2 acts by engaging the PGE2 receptor EP2, which induces cyclic AMP production and protein kinase A activation. To verify a role for PGE2 in control of bacterial growth, we show that infection of prostaglandin E synthase (PGES)−/− macrophages in vitro with H37Rv resulted in significantly higher bacterial burden compared with wild-type macrophages. More importantly, PGES−/− mice harbor significantly higher Mtb lung burden 5 wk after low-dose aerosol infection with virulent Mtb. These in vitro and in vivo data indicate that PGE2 plays a critical role in inhibition of Mtb replication.