T Cell-, Interleukin-12-, and Gamma Interferon-Driven Viral Clearance in Measles Virus-Infected Brain Tissue
- 1 April 2011
- journal article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 85 (7), 3664-3676
- https://doi.org/10.1128/jvi.01496-10
Abstract
Genetic studies with immunocompetent mice show the importance of both T cells and gamma interferon (IFN-γ) for survival of a measles virus (MV) challenge; however, the direct role of T cells and IFN-γ within the MV-infected brain has not been addressed. Organotypic brain explants represent a successfulex vivosystem to define central nervous system (CNS)-specific mechanisms of leukocyte migration, activation, and MV clearance. Within the heterogeneous, brain-derived, primed leukocyte population which reduced MV RNA levels in brain explants by 60%, CD3 T cells are the active antiviral cells, as purified CD3-positive cells are highly antiviral and CD3-negative leukocytes are unable to reduce the viral load. Neutralization of CCL5 and CXCL10 decreases leukocyte migration to areas of infection by 70%. However, despite chemokines directing the migration of T cells to infected neurons, chemokine neutralization revealed that migration is not required for viral clearance, suggesting a cytokine-mediated antiviral mechanism. In accordance with our hypothesis, the ability of leukocytes to clear the virus is abrogated when explants are treated with anti-IFN-γ neutralizing antibodies. IFN-γ applied to infected slices in the absence of primed leukocytes reduces the viral load by more than 80%; therefore, in brain tissue, IFN-γ is both necessary and sufficient to clear MV. Secretion of IFN-γ is stimulated by interleukin-12 (IL-12) in the brain, as neutralization of IL-12 results in loss of antiviral activity and stimulation of leukocytes with IL-12/IL-18 enhances their immune effector function of viral clearance. MV-primed leukocytes can reduce both West Nile and mouse hepatitis viral RNAs, indicating that cytokine-mediated viral clearance occurs in an antigen-independent manner. The IFN-γ signal is transduced within the brain explant by the Jak/STAT signaling pathway, as inhibition of Jak kinases results in a loss of antiviral activity driven by either brain-derived leukocytes or recombinant IFN-γ. These results reveal that primed T cells directly act to clear MV infection of the brain by using a noncytolytic IL-12- and IFN-γ-dependent mechanism in the CNS and that this mechanism relies upon Jak/STAT signaling.Keywords
This publication has 84 references indexed in Scilit:
- Murine Coronavirus Induces Type I Interferon in Oligodendrocytes through Recognition by RIG-I and MDA5Journal of Virology, 2010
- Noncytolytic Clearance of Sindbis Virus Infection from Neurons by Gamma Interferon Is Dependent on Jak/Stat SignalingJournal of Virology, 2009
- Regulatory Role of CD1d in Neurotropic Virus InfectionJournal of Virology, 2008
- Neuroimmunology of central nervous system viral infections: the cells, molecules and mechanisms involvedCurrent Opinion in Pharmacology, 2008
- CXCR4 antagonism increases T cell trafficking in the central nervous system and improves survival from West Nile virus encephalitisProceedings of the National Academy of Sciences, 2008
- Inducible IL-23p19 expression in human microglia via p38 MAPK and NF-κB signal pathwaysExperimental and Molecular Pathology, 2008
- Synergistic Roles of Antibody and Interferon in Noncytolytic Clearance of Sindbis Virus from Different Regions of the Central Nervous SystemJournal of Virology, 2007
- Selective retention of herpes simplex virus-specific T cells in latently infected human trigeminal gangliaProceedings of the National Academy of Sciences, 2007
- Interleukin-10 determines viral clearance or persistence in vivoNature Medicine, 2006
- Building epithelial architecture: insights from three-dimensional culture modelsNature Reviews Molecular Cell Biology, 2002