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A Precise Pathogen Delivery and Recovery System for Murine Models of Secondary Bacterial Pneumonia
Published on: September 21, 2019
Respiratory Bacteria Stabilize and Promote Airborne Transmission of Influenza A Virus
Hannah M Rowe1, Brandi Livingston1, Elisa Margolis1
1Department of Infectious Diseases, St Jude Children's Research Hospital, Memphis, Tennessee, USA.
Abstract:
Influenza A virus (IAV) is a major pathogen of the human respiratory tract, where the virus coexists and interacts with bacterial populations comprising the respiratory tract microbiome. Synergies between IAV and respiratory bacterial pathogens promote enhanced inflammation and disease burden that exacerbate morbidity and mortality. We demonstrate that direct interactions between IAV and encapsulated bacteria commonly found in the respiratory tract promote environmental stability and infectivity of IAV. Antibiotic-mediated depletion of the respiratory bacterial flora abrogated IAV transmission in ferret models, indicating that these virus-bacterium interactions are operative for airborne transmission of IAV. Restoring IAV airborne transmission in antibiotic-treated ferrets by coinfection with Streptococcus pneumoniae confirmed a role for specific members of the bacterial respiratory community in promoting IAV transmission. These results implicate a role for the bacterial respiratory flora in promoting airborne transmission of IAV.IMPORTANCE Infection with influenza A virus (IAV), especially when complicated with a secondary bacterial infection, is a leading cause of global mortality and morbidity. Gaining a greater understanding of the transmission dynamics of IAV is important during seasonal IAV epidemics and in the event of a pandemic. Direct bacterium-virus interactions are a recently appreciated aspect of infectious disease biology. Direct interactions between IAV and specific bacterial species of the human upper respiratory tract were found to promote the stability and infectivity of IAV during desiccation stress. Viral environmental stability is an important aspect during transmission, suggesting a potential role for bacterial respiratory communities in IAV transmission. Airborne transmission of IAV was abrogated upon depletion of nasal bacterial flora with topical antibiotics. This defect could be functionally complemented by S. pneumoniae coinfection. These data suggest that bacterial coinfection may be an underappreciated aspect of IAV transmission dynamics.
Insights
Influenza A virus (IAV) transmission is promoted by interactions with respiratory bacteria. Depleting these bacteria stops IAV spread, but coinfection with *Streptococcus pneumoniae* restores transmission, highlighting bacteria
Area of Science:
- Microbiology and Virology
- Respiratory Infectious Diseases
- Microbiome-Virus Interactions
Background:
- Influenza A virus (IAV) infection, particularly with secondary bacterial coinfections, causes significant global morbidity and mortality.
- Understanding IAV transmission dynamics is crucial for managing seasonal epidemics and potential pandemics.
- Direct interactions between viruses and bacteria are an emerging area in infectious disease research.
Purpose of the Study:
- To investigate the role of respiratory tract bacteria in promoting the environmental stability and infectivity of Influenza A virus.
- To determine the impact of bacterial-virus interactions on airborne transmission of IAV.
- To elucidate the specific contribution of bacterial communities, such as *Streptococcus pneumoniae*, to IAV transmission dynamics.
Main Methods:
- Assessed the effect of direct interactions between IAV and encapsulated respiratory bacteria on viral stability and infectivity.
- Utilized ferret models to evaluate the impact of antibiotic-mediated depletion of respiratory bacterial flora on IAV airborne transmission.
- Investigated the restoration of IAV transmission in antibiotic-treated ferrets via coinfection with *Streptococcus pneumoniae*.
Main Results:
- Direct interactions between IAV and common respiratory bacteria enhance viral environmental stability and infectivity.
- Abrogation of IAV airborne transmission was observed in ferrets following antibiotic-induced depletion of the respiratory bacterial flora.
- Coinfection with *Streptococcus pneumoniae* restored airborne IAV transmission in antibiotic-treated ferrets, confirming the role of specific bacteria.
Conclusions:
- Bacterial populations within the respiratory tract play a significant role in promoting the airborne transmission of Influenza A virus.
- Direct bacterium-virus interactions enhance IAV stability and infectivity, contributing to transmission efficiency.
- Bacterial coinfections, exemplified by *Streptococcus pneumoniae*, are critical, potentially underappreciated factors in IAV transmission dynamics.
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