Literature DB >> 12842616

Development and characterization of a model system to study amphibian immune responses to iridoviruses.

Jennifer Gantress1, Gregory D Maniero, Nicholas Cohen, Jacques Robert.   

Abstract

The recent realization that viruses within the family Iridoviridae may contribute to the worldwide decline in amphibians makes it urgent to understand amphibian antiviral immune defenses. We present evidence that establishes the frog Xenopus laevis as an important model with which to study anti-iridovirus immunity. Adults resist high doses of FV3 infection, showing only transitory signs of pathology. By contrast, naturally MHC class-I-deficient tadpoles are highly susceptible to FV3 infection. Monitoring of viral DNA by PCR indicates a preferential localization of FV3 DNA in the kidney, with the inbred MHC homozygous J strain appearing to be more susceptible. Clearance of virus as measured by detection of FV3 DNA and also the disappearance of pathological and behavioral symptoms of infection, acceleration of viral clearance, and detection of IgY anti-FV3 antibodies after a second injection of FV3 are all consistent with the involvement of both cellular and humoral adaptive antiviral immune responses.

Entities:  

Mesh:

Year:  2003        PMID: 12842616     DOI: 10.1016/s0042-6822(03)00151-x

Source DB:  PubMed          Journal:  Virology        ISSN: 0042-6822            Impact factor:   3.616


  47 in total

1.  Phylogeny, life history, and ecology contribute to differences in amphibian susceptibility to ranaviruses.

Authors:  Jason T Hoverman; Matthew J Gray; Nathan A Haislip; Debra L Miller
Journal:  Ecohealth       Date:  2011-11-10       Impact factor: 3.184

2.  Developmental exposure to chemicals associated with unconventional oil and gas extraction alters immune homeostasis and viral immunity of the amphibian Xenopus.

Authors:  Jacques Robert; Connor C McGuire; Susan Nagel; B Paige Lawrence; Francisco De Jesús Andino
Journal:  Sci Total Environ       Date:  2019-03-26       Impact factor: 7.963

3.  Broad distribution of Ranavirus in free-ranging Rana dybowskii in Heilongjiang, China.

Authors:  Kai Xu; Dong-Ze Zhu; Ying Wei; Lisa M Schloegel; Xiao-Feng Chen; Xiao-Long Wang
Journal:  Ecohealth       Date:  2010-03-09       Impact factor: 3.184

Review 4.  Expanding the genetic toolkit in Xenopus: Approaches and opportunities for human disease modeling.

Authors:  Panna Tandon; Frank Conlon; J David Furlow; Marko E Horb
Journal:  Dev Biol       Date:  2016-04-22       Impact factor: 3.582

5.  Negative effects of low dose atrazine exposure on the development of effective immunity to FV3 in Xenopus laevis.

Authors:  Jason Sifkarovski; Leon Grayfer; Francisco De Jesús Andino; B Paige Lawrence; Jacques Robert
Journal:  Dev Comp Immunol       Date:  2014-06-28       Impact factor: 3.636

6.  CD91 up-regulates upon immune stimulation in Xenopus adult but not larval peritoneal leukocytes.

Authors:  Shauna Marr; Ana Goyos; Jennifer Gantress; Gregory D Maniero; Jacques Robert
Journal:  Immunogenetics       Date:  2004-12-08       Impact factor: 2.846

7.  Self-referent MHC type matching in frog tadpoles.

Authors:  Jandouwe Villinger; Bruce Waldman
Journal:  Proc Biol Sci       Date:  2008-05-22       Impact factor: 5.349

8.  Mechanisms of amphibian macrophage development: characterization of the Xenopus laevis colony-stimulating factor-1 receptor.

Authors:  Leon Grayfer; Eva-Stina Edholm; Jacques Robert
Journal:  Int J Dev Biol       Date:  2014       Impact factor: 2.203

9.  Introduction of ranavirus to isolated wood frog populations could cause local extinction.

Authors:  Julia E Earl; Matthew J Gray
Journal:  Ecohealth       Date:  2014-06-25       Impact factor: 3.184

10.  Evidence for directional selection at a novel major histocompatibility class I marker in wild common frogs (Rana temporaria) exposed to a viral pathogen (Ranavirus).

Authors:  Amber G F Teacher; Trenton W J Garner; Richard A Nichols
Journal:  PLoS One       Date:  2009-02-25       Impact factor: 3.240

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