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Updated: May 1, 2026

A Murine Model of Dengue Virus-induced Acute Viral Encephalitis-like Disease
Published on: April 28, 2019
A mouse model for Betacoronavirus subgroup 2c using a bat coronavirus strain HKU5 variant
Abstract:
Cross-species transmission of zoonotic coronaviruses (CoVs) can result in pandemic disease outbreaks. Middle East respiratory syndrome CoV (MERS-CoV), identified in 2012, has caused 182 cases to date, with ~43% mortality, and no small animal model has been reported. MERS-CoV and Pipistrellus bat coronavirus (BtCoV) strain HKU5 of Betacoronavirus (β-CoV) subgroup 2c share >65% identity at the amino acid level in several regions, including nonstructural protein 5 (nsp5) and the nucleocapsid (N) protein, which are significant drug and vaccine targets. BtCoV HKU5 has been described in silico but has not been shown to replicate in culture, thus hampering drug and vaccine studies against subgroup 2c β-CoVs. We report the synthetic reconstruction and testing of BtCoV HKU5 containing the severe acute respiratory syndrome (SARS)-CoV spike (S) glycoprotein ectodomain (BtCoV HKU5-SE). This virus replicates efficiently in cell culture and in young and aged mice, where the virus targets airway and alveolar epithelial cells. Unlike some subgroup 2b SARS-CoV vaccines that elicit a strong eosinophilia following challenge, we demonstrate that BtCoV HKU5 and MERS-CoV N-expressing Venezuelan equine encephalitis virus replicon particle (VRP) vaccines do not cause extensive eosinophilia following BtCoV HKU5-SE challenge. Passage of BtCoV HKU5-SE in young mice resulted in enhanced virulence, causing 20% weight loss, diffuse alveolar damage, and hyaline membrane formation in aged mice. Passaged virus was characterized by mutations in the nsp13, nsp14, open reading frame 5 (ORF5) and M genes. Finally, we identified an inhibitor active against the nsp5 proteases of subgroup 2c β-CoVs. Synthetic-genome platforms capable of reconstituting emerging zoonotic viral pathogens or their phylogenetic relatives provide new strategies for identifying broad-based therapeutics, evaluating vaccine outcomes, and studying viral pathogenesis. IMPORTANCE The 2012 outbreak of MERS-CoV raises the specter of another global epidemic, similar to the 2003 SARS-CoV epidemic. MERS-CoV is related to BtCoV HKU5 in target regions that are essential for drug and vaccine testing. Because no small animal model exists to evaluate MERS-CoV pathogenesis or to test vaccines, we constructed a recombinant BtCoV HKU5 that expressed a region of the SARS-CoV spike (S) glycoprotein, thereby allowing the recombinant virus to grow in cell culture and in mice. We show that this recombinant virus targets airway epithelial cells and causes disease in aged mice. We use this platform to (i) identify a broad-spectrum antiviral that can potentially inhibit viruses closely related to MERS-CoV, (ii) demonstrate the absence of increased eosinophilic immune pathology for MERS-CoV N protein-based vaccines, and (iii) mouse adapt this virus to identify viral genetic determinants of cross-species transmission and virulence. This study holds significance as a strategy to control newly emerging viruses.
Insights
Researchers developed a novel recombinant bat coronavirus (BtCoV HKU5-SE) to study Middle East respiratory syndrome coronavirus (MERS-CoV) pathogenesis and vaccine efficacy in a mouse model. This platform aids in identifying antivirals and understanding viral virulence factors.
Area of Science:
- Virology and Molecular Biology
- Infectious Diseases and Epidemiology
- Vaccinology and Drug Discovery
Background:
- Zoonotic coronaviruses (CoVs) pose pandemic threats, exemplified by MERS-CoV, lacking a small animal model for research.
- MERS-CoV and Pipistrellus bat coronavirus (BtCoV) HKU5 share significant sequence identity in key drug/vaccine target regions.
- Replication-deficient BtCoV HKU5 has hindered studies on subgroup 2c β-CoVs, including MERS-CoV.
Purpose of the Study:
- To synthetically reconstruct and test a functional BtCoV HKU5 expressing the SARS-CoV spike glycoprotein ectodomain (BtCoV HKU5-SE).
- To establish a small animal model for evaluating MERS-CoV pathogenesis, vaccine outcomes, and identifying therapeutic targets.
- To investigate the potential of BtCoV HKU5-SE as a vaccine platform and identify viral determinants of virulence and cross-species transmission.
Main Methods:
- Synthetic reconstruction of BtCoV HKU5-SE, incorporating the SARS-CoV spike glycoprotein ectodomain.
- In vitro replication studies in cell culture and in vivo studies in young and aged mice.
- Vaccine efficacy assessment using MERS-CoV nucleocapsid (N) protein-expressing Venezuelan equine encephalitis virus replicon particles (VRPs) and challenge with BtCoV HKU5-SE.
- Viral adaptation studies through mouse passage and genomic sequencing to identify mutations associated with enhanced virulence.
Main Results:
- BtCoV HKU5-SE replicated efficiently in cell culture and targeted airway and alveolar epithelial cells in young and aged mice.
- BtCoV HKU5 and MERS-CoV N-expressing VRP vaccines did not induce significant eosinophilia upon challenge, unlike some SARS-CoV vaccines.
- Passage of BtCoV HKU5-SE in mice led to increased virulence, characterized by weight loss and lung pathology in aged mice, with identified mutations in nsp13, nsp14, ORF5, and M genes.
- An inhibitor targeting nsp5 proteases of subgroup 2c β-CoVs was identified.
Conclusions:
- Synthetic-genome platforms enable the study of emerging zoonotic viruses and their relatives, facilitating drug and vaccine development.
- BtCoV HKU5-SE serves as a valuable model for MERS-CoV research, demonstrating potential for vaccine strategies and identifying virulence factors.
- The identified nsp5 protease inhibitor offers a potential therapeutic avenue against emerging subgroup 2c β-CoVs.

