Literature DB >> 9416509

The role of antibody in recovery from alphavirus encephalitis.

D Griffin1, B Levine, W Tyor, S Ubol, P Desprès.   

Abstract

Alphaviruses infect neurons in the brain and spinal cord and cause acute encephalomyelitis in a variety of mammals. The outcome of infection is determined by whether the neurons survive infection and this, in turn, is determined by the virulence of the virus and the age of the host at the time of infection. We have been studying Sindbis virus (SV) infection of mice as a model system for alphavirus-induced encephalomyelitis. Investigation of intracerebral infection of weanling mice with two different strains of SV has allowed us to analyze the role of the immune response in protection from fatal disease (virulent NSV strain) and in clearance of virus from the nervous system during non-fatal disease (less virulent SV AR339 strain). Neutralizing and non-neutralizing antibodies to the E1 and E2 surface glycoproteins can protect mice from fatal NSV infection when given before or after infection, while T cells are not protective. The mechanism of antibody-mediated protection is not known, but it is likely that more than one mechanism is involved and that different mechanisms are involved in pre-infection and post-infection treatment protection. Clearance of infectious virus from the nervous system of mice during recovery from non-fatal disease is accomplished by antibodies to the E2 glycoprotein. The process does not involve damage to the infected neurons and is independent of complement and mononuclear cells. Bivalent antibody is required and binds to the surface of the infected cell. Initially, release of virus by budding from the cell surface is prevented and, subsequently, intracellular virus replication is inhibited possibly through antiviral mechanisms induced in co-operation with interferon. This non-lytic mechanism for control of virus infection results in the prolonged presence of viral RNA in tissue and the need for prolonged intrathecal synthesis of antiviral antibody by B cells within the central nervous system.

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Year:  1997        PMID: 9416509     DOI: 10.1111/j.1600-065x.1997.tb01013.x

Source DB:  PubMed          Journal:  Immunol Rev        ISSN: 0105-2896            Impact factor:   12.988


  49 in total

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3.  CXCR3-dependent plasma blast migration to the central nervous system during viral encephalomyelitis.

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4.  The spleen is the major source of antidonor antibody-secreting cells in murine heart allograft recipients.

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5.  Prevention of virus persistence and protection against immunopathology after Borna disease virus infection of the brain by a novel Orf virus recombinant.

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Review 6.  Encephalitic alphaviruses.

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7.  CD4+ T cells provide protection against acute lethal encephalitis caused by Venezuelan equine encephalitis virus.

Authors:  Nadezhda E Yun; Bi-Hung Peng; Andrea S Bertke; Viktoriya Borisevich; Jennifer K Smith; Jeanon N Smith; Allison L Poussard; Milagros Salazar; Barbara M Judy; Michele A Zacks; D Mark Estes; Slobodan Paessler
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8.  NKG2D receptor signaling enhances cytolytic activity by virus-specific CD8+ T cells: evidence for a protective role in virus-induced encephalitis.

Authors:  Kevin B Walsh; Lewis L Lanier; Thomas E Lane
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9.  AIDS vaccination studies using an ex vivo feline immunodeficiency virus model: detailed analysis of the humoral immune response to a protective vaccine.

Authors:  P Mazzetti; S Giannecchini; D Del Mauro; D Matteucci; P Portincasa; A Merico; C Chezzi; M Bendinelli
Journal:  J Virol       Date:  1999-01       Impact factor: 5.103

10.  Improved efficacy of a gene optimised adenovirus-based vaccine for venezuelan equine encephalitis virus.

Authors:  Amanda J Williams; Lyn M O'Brien; Robert J Phillpotts; Stuart D Perkins
Journal:  Virol J       Date:  2009-07-31       Impact factor: 4.099

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