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Published on: June 14, 2020
Murine coronavirus neuropathogenesis: determinants of virulence
Timothy J Cowley1, Susan R Weiss
1Department of Microbiology, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104-6076, USA.
Abstract:
Murine coronavirus, mouse hepatitis virus (MHV), causes various diseases depending on the strain and route of inoculation. Both the JHM and A59 strains, when inoculated intracranially or intranasally, are neurovirulent. Comparison of the highly virulent JHM isolate, JHM.SD, with less virulent JHM isolates and with A59 has been used to determine the mechanisms and genes responsible for high neuropathogenicity of MHV. The focus of this review is on the contributions of viral spread, replication, and innate and adaptive immunity to MHV neuropathogenesis. JHM.SD spreads more quickly among neurons than less neurovirulent MHVs, and is able to spread in the absence of the canonical MHV receptor, CEACAM1a. The observation that JHM.SD infects more cells and expresses more antigen, but produces less infectious virus per cell than A59, implies that efficient replication is not always a correlate of high neurovirulence. This is likely due to the unstable nature of the JHM.SD spike protein (S). JHM.SD induces a generally protective innate immune response; however, the strong neutrophil response may be more pathogenic than protective. In addition, JHM.SD induces only a minimal T-cell response, whereas the strong T-cell response and the concomitant interferon-γ (IFN-γ) induced by the less neurovirulent A59 is protective. Differences in the S and nucleocapsid (N) proteins between A59 and JHM.SD contribute to JHM.SD neuropathogenicity. The hemmagglutinin-esterase (HE) protein may enhance neuropathogenicity of some MHV isolates, but is unlikely a major contributor to the high neuroviruence of JHM.SD. Further data suggest that neither the internal (I) protein nor nonstructural proteins ns4, and ns2 are significant contributors to neurovirulence.
Insights
Mouse hepatitis virus (MHV) neuropathogenesis involves viral spread, replication, and immune responses. Highly virulent MHV strains spread rapidly, but efficient replication doesn't always correlate with neurovirulence, influenced by viral proteins and host immunity.
Area of Science:
- Virology
- Neuroscience
- Immunology
Background:
- Murine coronavirus, mouse hepatitis virus (MHV), causes diverse diseases.
- Neurovirulent strains like JHM and A59 infect the central nervous system.
- Understanding MHV neuropathogenesis requires examining viral factors and host immunity.
Purpose of the Study:
- To review mechanisms and genes contributing to MHV neuropathogenicity.
- To analyze the roles of viral spread, replication, and immunity in MHV-induced neurological disease.
- To compare highly virulent JHM.SD with less virulent MHV strains.
Main Methods:
- Comparative analysis of MHV strains (JHM.SD, other JHM isolates, A59).
- Investigation of viral spread, replication efficiency, and protein expression.
- Assessment of innate and adaptive immune responses, including neutrophil and T-cell activity.
Main Results:
- JHM.SD exhibits faster neuronal spread than less virulent MHVs, independent of the CEACAM1a receptor.
- High antigen expression in JHM.SD does not correlate with high infectious virus production per cell.
- JHM.SD induces a strong neutrophil response, potentially pathogenic, and a weak T-cell response, unlike the protective response to A59.
Conclusions:
- Viral spread dynamics and immune evasion are key to JHM.SD neuropathogenicity.
- Spike (S) and nucleocapsid (N) proteins contribute to JHM.SD's neurovirulence.
- Efficient replication is not a prerequisite for high neurovirulence; host immune response significantly modulates disease outcome.
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