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A Precise Pathogen Delivery and Recovery System for Murine Models of Secondary Bacterial Pneumonia
Published on: September 21, 2019
Lower respiratory tract infection induced by a genetically modified picornavirus in its natural murine host
Louis A Rosenthal1, Renee J Szakaly, Svetlana P Amineva
1Department of Medicine, University of Wisconsin School of Medicine and Public Health, Madison, Wisconsin, United States of America. lar@medicine.wisc.edu
Abstract:
Infections with the picornavirus, human rhinovirus (HRV), are a major cause of wheezing illnesses and asthma exacerbations. In developing a murine model of picornaviral airway infection, we noted the absence of murine rhinoviruses and that mice are not natural hosts for HRV. The picornavirus, mengovirus, induces lethal systemic infections in its natural murine hosts, but small genetic differences can profoundly affect picornaviral tropism and virulence. We demonstrate that inhalation of a genetically attenuated mengovirus, vMC(0), induces lower respiratory tract infections in mice. After intranasal vMC(0) inoculation, lung viral titers increased, peaking at 24 h postinoculation with viral shedding persisting for 5 days, whereas HRV-A01a lung viral titers decreased and were undetectable 24 h after intranasal inoculation. Inhalation of vMC(0), but not vehicle or UV-inactivated vMC(0), induced an acute respiratory illness, with body weight loss and lower airway inflammation, characterized by increased numbers of airway neutrophils and lymphocytes and elevated pulmonary expression of neutrophil chemoattractant CXCR2 ligands (CXCL1, CXCL2, CXCL5) and interleukin-17A. Mice inoculated with vMC(0), compared with those inoculated with vehicle or UV-inactivated vMC(0), exhibited increased pulmonary expression of interferon (IFN-α, IFN-β, IFN-λ), viral RNA sensors [toll-like receptor (TLR)3, TLR7, nucleotide-binding oligomerization domain containing 2 (NOD2)], and chemokines associated with HRV infection in humans (CXCL10, CCL2). Inhalation of vMC(0), but not vehicle or UV-inactivated vMC(0), was accompanied by increased airway fluid myeloperoxidase levels, an indicator of neutrophil activation, increased MUC5B gene expression, and lung edema, a sign of infection-related lung injury. Consistent with experimental HRV inoculations of nonallergic, nonasthmatic human subjects, there were no effects on airway hyperresponsiveness after inhalation of vMC(0) by healthy mice. This novel murine model of picornaviral airway infection and inflammation should be useful for defining mechanisms of HRV pathogenesis in humans.
Insights
A new mouse model using a modified mengovirus (vMC(0)) successfully mimics lower respiratory tract infections and inflammation seen in human rhinovirus (HRV) infections, aiding asthma research.
Area of Science:
- Virology and Immunology
- Respiratory Pathogenesis
- Murine Models of Infection
Background:
- Human rhinovirus (HRV) infections cause significant respiratory illness, including wheezing and asthma exacerbations.
- Existing murine models are limited as mice are not natural hosts for HRV, hindering research into HRV pathogenesis.
Purpose of the Study:
- To develop and characterize a novel murine model for studying picornavirus-induced lower respiratory tract infections and inflammation.
- To investigate the utility of a genetically attenuated mengovirus (vMC(0)) for modeling HRV-like respiratory disease in mice.
Main Methods:
- Mice were intranasally inoculated with a genetically attenuated mengovirus (vMC(0)) or control substances.
- Viral titers, inflammatory markers (neutrophils, lymphocytes, cytokines, chemokines), gene expression (IFNs, viral sensors, MUC5B), and lung injury indicators were assessed.
- Airway hyperresponsiveness was measured in healthy mice following vMC(0) inhalation.
Main Results:
- Inhalation of vMC(0) induced acute lower respiratory tract infections with sustained viral shedding and characteristic inflammation.
- vMC(0) infection led to increased pulmonary expression of interferons, viral RNA sensors, and chemokines associated with HRV infection.
- Inflammation markers, including neutrophil activation and lung edema, were elevated, but airway hyperresponsiveness was not observed in healthy mice.
Conclusions:
- The vMC(0)-induced murine model effectively replicates key features of picornaviral lower respiratory tract infection and inflammation.
- This model provides a valuable tool for dissecting the mechanisms underlying HRV pathogenesis and host responses in the respiratory tract.
- The model's findings align with human HRV infection studies, suggesting its relevance for future research.

