A mouse model for Betacoronavirus subgroup 2c using a bat coronavirus strain HKU5 variant

Mbio
|March 27, 2014
PubMed

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.

Related Concept Videos