Literature DB >> 22973027

Gamma interferon (IFN-γ) receptor restricts systemic dengue virus replication and prevents paralysis in IFN-α/β receptor-deficient mice.

Tyler R Prestwood1, Malika M Morar, Raphaël M Zellweger, Robyn Miller, Monica M May, Lauren E Yauch, Steven M Lada, Sujan Shresta.   

Abstract

We previously reported that mice lacking alpha/beta and gamma interferon receptors (IFN-α/βR and -γR) uniformly exhibit paralysis following infection with the dengue virus (DENV) clinical isolate PL046, while only a subset of mice lacking the IFN-γR alone and virtually no mice lacking the IFN-α/βR alone develop paralysis. Here, using a mouse-passaged variant of PL046, strain S221, we show that in the absence of the IFN-α/βR, signaling through the IFN-γR confers approximately 140-fold greater resistance against systemic vascular leakage-associated dengue disease and virtually complete protection from dengue-induced paralysis. Viral replication in the spleen was assessed by immunohistochemistry and flow cytometry, which revealed a reduction in the number of infected cells due to IFN-γR signaling by 2 days after infection, coincident with elevated levels of IFN-γ in the spleen and serum. By 4 days after infection, IFN-γR signaling was found to restrict DENV replication systemically. Clearance of DENV, on the other hand, occurred in the absence of IFN-γR, except in the central nervous system (CNS) (brain and spinal cord), where clearance relied on IFN-γ from CD8(+) T cells. These results demonstrate the roles of IFN-γR signaling in protection from initial systemic and subsequent CNS disease following DENV infection and demonstrate the importance of CD8(+) T cells in preventing DENV-induced CNS disease.

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Year:  2012        PMID: 22973027      PMCID: PMC3497655          DOI: 10.1128/JVI.06743-11

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  49 in total

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Review 2.  Dengue virus infection: epidemiology, pathogenesis, clinical presentation, diagnosis, and prevention.

Authors:  I Kautner; M J Robinson; U Kuhnle
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3.  Immunohistochemical characterization of a new monoclonal antibody reactive with dengue virus-infected cells in frozen tissue using immunoperoxidase technique.

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4.  Retrospective study on dengue fatal cases.

Authors:  M P Miagostovich; R G Ramos; A F Nicol; R M Nogueira; T Cuzzi-Maya; A V Oliveira; R S Marchevsky; R P Mesquita; H G Schatzmayr
Journal:  Clin Neuropathol       Date:  1997 Jul-Aug       Impact factor: 1.368

5.  Identification of a major determinant of mouse neurovirulence of dengue virus type 2 using stably cloned genomic-length cDNA.

Authors:  R C Gualano; M J Pryor; M R Cauchi; P J Wright; A D Davidson
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7.  Dengue in China: a clinical review.

Authors:  F X Qiu; D J Gubler; J C Liu; Q Q Chen
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  55 in total

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Review 5.  Mouse models of dengue virus infection for vaccine testing.

Authors:  Vanessa V Sarathy; Gregg N Milligan; Nigel Bourne; Alan D T Barrett
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6.  CD8+ T Cells Can Mediate Short-Term Protection against Heterotypic Dengue Virus Reinfection in Mice.

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7.  Zika virus inhibits type-I interferon production and downstream signaling.

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10.  Identification of Zika virus epitopes reveals immunodominant and protective roles for dengue virus cross-reactive CD8+ T cells.

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