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Neuropathogenesis of Japanese Encephalitis in a Primate Model

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Date 2014 Aug 8
PMID 25102067
Citations 38
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Abstract

Background: Japanese encephalitis (JE) is a major cause of mortality and morbidity for which there is no treatment. In addition to direct viral cytopathology, the inflammatory response is postulated to contribute to the pathogenesis. Our goal was to determine the contribution of bystander effects and inflammatory mediators to neuronal cell death.

Methodology/principal Findings: Material from a macaque model was used to characterize the inflammatory response and cytopathic effects of JE virus (JEV). Intranasal JEV infection induced a non-suppurative encephalitis, dominated by perivascular, infiltrates of mostly T cells, alongside endothelial cell activation, vascular damage and blood brain barrier (BBB) leakage; in the adjacent parenchyma there was macrophage infiltration, astrocyte and microglia activation. JEV antigen was mostly in neurons, but there was no correlation between intensity of viral infection and degree of inflammatory response. Apoptotic cell death occurred in both infected and non-infected neurons. Interferon-α, which is a microglial activator, was also expressed by both. Tumour Necrosis Factor-α, inducible nitric oxide synthase and nitrotyrosine were expressed by microglial cells, astrocytes and macrophages. The same cells expressed matrix metalloproteinase (MMP)-2 whilst MMP-9 was expressed by neurons.

Conclusions/significance: The results are consistent with JEV inducing neuronal apoptotic death and release of cytokines that initiate microglial activation and release of pro-inflammatory and apoptotic mediators with subsequent apoptotic death of both infected and uninfected neurons. Activation of astrocytes, microglial and endothelial cells likely contributes to inflammatory cell recruitment and BBB breakdown. It appears that neuronal apoptotic death and activation of microglial cells and astrocytes play a crucial role in the pathogenesis of JE.

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References
1.
Yang T, Shiu S, Chuang P, Lin Y, Wan L, Lan Y . Japanese encephalitis virus NS2B-NS3 protease induces caspase 3 activation and mitochondria-mediated apoptosis in human medulloblastoma cells. Virus Res. 2009; 143(1):77-85. DOI: 10.1016/j.virusres.2009.03.007. View

2.
Namimatsu S, Ghazizadeh M, Sugisaki Y . Reversing the effects of formalin fixation with citraconic anhydride and heat: a universal antigen retrieval method. J Histochem Cytochem. 2005; 53(1):3-11. DOI: 10.1177/002215540505300102. View

3.
Basu A, Krady J, Enterline J, Levison S . Transforming growth factor beta1 prevents IL-1beta-induced microglial activation, whereas TNFalpha- and IL-6-stimulated activation are not antagonized. Glia. 2002; 40(1):109-20. DOI: 10.1002/glia.10118. View

4.
Harrington D, Hilmas D, Elwell M, Whitmire R, Stephen E . Intranasal infection of monkeys with Japanese encephalitis virus: clinical response and treatment with a nuclease-resistant derivative of poly (I).poly (C). Am J Trop Med Hyg. 1977; 26(6 Pt 1):1191-8. DOI: 10.4269/ajtmh.1977.26.1191. View

5.
Desai A, Shankar S, Ravi V, Chandramuki A, Gourie-Devi M . Japanese encephalitis virus antigen in the human brain and its topographic distribution. Acta Neuropathol. 1995; 89(4):368-73. DOI: 10.1007/BF00309631. View