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Published on: March 1, 2019
The nsp3 macrodomain promotes virulence in mice with coronavirus-induced encephalitis
Anthony R Fehr1, Jeremiah Athmer1, Rudragouda Channappanavar1
1Department of Microbiology, University of Iowa, Iowa City, Iowa, USA.
Unlabelled:
All coronaviruses encode a macrodomain containing ADP-ribose-1"-phosphatase (ADRP) activity within the N terminus of nonstructural protein 3 (nsp3). Previous work showed that mouse hepatitis virus strain A59 (MHV-A59) with a mutated catalytic site (N1348A) replicated similarly to wild-type virus but was unable to cause acute hepatitis in mice. To determine whether this attenuated phenotype is applicable to multiple disease models, we mutated the catalytic residue in the JHM strain of MHV (JHMV), which causes acute and chronic encephalomyelitis, using a newly developed bacterial artificial chromosome (BAC)-based MHV reverse genetics system. Infection of mice with the macrodomain catalytic point mutant virus (N1347A) resulted in reductions in lethality, weight loss, viral titers, proinflammatory cytokine and chemokine expression, and immune cell infiltration in the brain compared to mice infected with wild-type virus. Specifically, macrophages were most affected, with approximately 2.5-fold fewer macrophages at day 5 postinfection in N1347A-infected brains. Tumor necrosis factor (TNF) and interferon (IFN) signaling were not required for effective host control of mutant virus as all N1347A virus-infected mice survived the infection. However, the adaptive immune system was required for protection since N1347A virus was able to cause lethal encephalitis in RAG1(-/-) (recombination activation gene 1 knockout) mice although disease onset was modestly delayed. Overall, these results indicate that the BAC-based MHV reverse genetics system will be useful for studies of JHMV and expand upon previous studies, showing that the macrodomain is critical for the ability of coronaviruses to evade the immune system and promote viral pathogenesis.
Importance:
Coronaviruses are an important cause of human and veterinary diseases worldwide. Viral processes that are conserved across a family are likely to be good targets for the development of antiviral therapeutics and vaccines. The macrodomain is a ubiquitous structural domain and is also conserved among all coronaviruses. The coronavirus macrodomain has ADP-ribose-1"-phosphatase activity; however, its function during infection remains unclear as does the reason that coronaviruses have maintained this enzymatic activity throughout evolution. For MHV, this domain has now been shown to promote multiple types of disease, including hepatitis and encephalitis. These data indicate that this domain is vital for the virus to replicate and cause disease. Understanding the mechanism used by this enzyme to promote viral pathogenesis will open up novel avenues for therapies and may give further insight into the role of macrodomain proteins in the host cell since these proteins are found in all living organisms.
Insights
Coronaviruses use a macrodomain in nsp3 for pathogenesis. Mutating this domain in mouse hepatitis virus (MHV) reduces disease severity and lethality, highlighting its role in immune evasion and viral spread.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Coronaviruses possess a conserved macrodomain in nonstructural protein 3 (nsp3) with ADP-ribose-1"-phosphatase (ADRP) activity.
- The precise function of this macrodomain during coronavirus infection and its evolutionary significance remain incompletely understood.
- Previous studies indicated that mutations in the MHV-A59 macrodomain catalytic site attenuated virulence, but its role in other disease models was unclear.
Purpose of the Study:
- To investigate the role of the coronavirus macrodomain in viral pathogenesis using a JHMV encephalomyelitis model.
- To determine if the attenuated phenotype observed in MHV-A59 extends to other MHV strains and disease models.
- To leverage a novel bacterial artificial chromosome (BAC)-based reverse genetics system for JHMV studies.
Main Methods:
- A JHMV mutant (N1347A) with a catalytically inactive macrodomain was generated using a BAC-based reverse genetics system.
- Infection of susceptible mice with wild-type and mutant JHMV strains.
- Assessment of clinical signs, viral titers, cytokine/chemokine expression, immune cell infiltration (particularly macrophages), and survival rates.
- Infection of RAG1(-/-) mice to evaluate the role of the adaptive immune system.
Main Results:
- The JHMV N1347A mutant exhibited significantly reduced lethality, weight loss, and viral loads compared to wild-type JHMV.
- Mutant virus infection led to decreased expression of proinflammatory cytokines (TNF, IFN) and reduced immune cell infiltration in the brain, notably fewer macrophages.
- All mice infected with the N1347A mutant survived, indicating that TNF and IFN signaling are not essential for controlling this mutant virus.
- However, the adaptive immune system is crucial, as RAG1(-/-) mice infected with N1347A developed lethal encephalitis, albeit with delayed onset.
Conclusions:
- The macrodomain of JHMV is critical for promoting viral pathogenesis, including encephalitis.
- The BAC-based reverse genetics system is a valuable tool for studying JHMV.
- The coronavirus macrodomain plays a key role in evading the host immune system, facilitating viral spread and disease progression.
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