Literature DB >> 18086377

N(2)O(3) enhances the nitrosative potential of IFNgamma-primed macrophages in response to Salmonella.

Bruce D McCollister1, Jesse T Myers, Jessica Jones-Carson, Maroof Husain, Travis J Bourret, Andrés Vázquez-Torres.   

Abstract

We show here that the nitric oxide (NO)-detoxifying Hmp flavohemoprotein increases by 3-fold the transcription of the Salmonella pathogenicity island 2 (SPI2) in macrophages expressing a functional inducible NO synthase (iNOS). However, Hmp does not prevent NO-related repression of SPI2 transcription in IFNgamma-primed phagocytes, despite preserving intracellular transcription of sdhA sdhB subunits of Salmonella succinate dehydrogenase within both control and IFNgamma-primed phagocytes. To shed light into the seemingly paradoxical role that Hmp plays in protecting intracellular SPI2 expression in various populations of macrophages, N(2)O(3) was quantified as an indicator of the nitrosative potential of Salmonella-infected phagocytes in different states of activation. Hmp was found to prevent the formation of 300nM N(2)O(3)/h/bacteria in IFNgamma-primed macrophages, accounting for about a 60% reduction of the nitrosative power of activated phagocytes. Utilization of the vacuolar ATPase inhibitor bafilomycin indicates that a fourth of the approximately 200nM N(2)O(3)/h sustained by IFNgamma-primed macrophages is generated in endosomal compartments via condensation of HNO(2). In sharp contrast, control macrophages infected with wild-type Salmonella produce as little N(2)O(3) as iNOS-deficient controls. Collectively, these findings indicate that the NO-metabolizing activity of Salmonella Hmp is functional in both control and IFNgamma-primed macrophages. Nonetheless, a substantial amount of the NO generated by IFNgamma-primed macrophages gives rise to N(2)O(3), a species that not only enhances the nitrosative potential of activated phagocytes but also avoids detoxification by Salmonella Hmp.

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Year:  2007        PMID: 18086377      PMCID: PMC2329578          DOI: 10.1016/j.imbio.2007.09.019

Source DB:  PubMed          Journal:  Immunobiology        ISSN: 0171-2985            Impact factor:   3.144


  47 in total

1.  Maintenance of nitric oxide and redox homeostasis by the salmonella flavohemoglobin hmp.

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2.  Necessity and sufficiency of beta interferon for nitric oxide production in mouse peritoneal macrophages.

Authors:  X Zhang; E W Alley; S W Russell; D C Morrison
Journal:  Infect Immun       Date:  1994-01       Impact factor: 3.441

3.  Role of transcription factor NF-kappa B/Rel in induction of nitric oxide synthase.

Authors:  Q W Xie; Y Kashiwabara; C Nathan
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4.  Mouse model of X-linked chronic granulomatous disease, an inherited defect in phagocyte superoxide production.

Authors:  J D Pollock; D A Williams; M A Gifford; L L Li; X Du; J Fisherman; S H Orkin; C M Doerschuk; M C Dinauer
Journal:  Nat Genet       Date:  1995-02       Impact factor: 38.330

5.  Generation of nitric oxide and induction of major histocompatibility complex class II antigen in macrophages from mice lacking the interferon gamma receptor.

Authors:  R Kamijo; D Shapiro; J Le; S Huang; M Aguet; J Vilcek
Journal:  Proc Natl Acad Sci U S A       Date:  1993-07-15       Impact factor: 11.205

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Authors:  M Fujihara; N Ito; J L Pace; Y Watanabe; S W Russell; T Suzuki
Journal:  J Biol Chem       Date:  1994-04-29       Impact factor: 5.157

7.  Requirement for transcription factor IRF-1 in NO synthase induction in macrophages.

Authors:  R Kamijo; H Harada; T Matsuyama; M Bosland; J Gerecitano; D Shapiro; J Le; S I Koh; T Kimura; S J Green
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8.  Vesicle membrane association of nitric oxide synthase in primary mouse macrophages.

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9.  Expression of the nitric oxide synthase gene in mouse macrophages activated for tumor cell killing. Molecular basis for the synergy between interferon-gamma and lipopolysaccharide.

Authors:  R B Lorsbach; W J Murphy; C J Lowenstein; S H Snyder; S W Russell
Journal:  J Biol Chem       Date:  1993-01-25       Impact factor: 5.157

10.  Role of interferon regulatory factor 1 in induction of nitric oxide synthase.

Authors:  E Martin; C Nathan; Q W Xie
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2.  The 4-cysteine zinc-finger motif of the RNA polymerase regulator DksA serves as a thiol switch for sensing oxidative and nitrosative stress.

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3.  Nitric oxide protects bacteria from aminoglycosides by blocking the energy-dependent phases of drug uptake.

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5.  Redox sensor SsrB Cys203 enhances Salmonella fitness against nitric oxide generated in the host immune response to oral infection.

Authors:  Maroof Husain; Jessica Jones-Carson; Miryoung Song; Bruce D McCollister; Travis J Bourret; Andrés Vázquez-Torres
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6.  Low-molecular-weight thiol-dependent antioxidant and antinitrosative defences in Salmonella pathogenesis.

Authors:  Miryoung Song; Maroof Husain; Jessica Jones-Carson; Lin Liu; Calvin A Henard; Andrés Vázquez-Torres
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7.  The NsrR regulon in nitrosative stress resistance of Salmonella enterica serovar Typhimurium.

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10.  Nitric oxide antagonizes the acid tolerance response that protects Salmonella against innate gastric defenses.

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