Bacterial factors required for Streptococcus pneumoniae coinfection with influenza A virus
Yi-Yin Chen1, Ching-Tai Huang2, Shiao-Wen Li3
1Department of Pediatrics, Chang Gung Children's Hospital, Chang Gung Memorial Hospital, College of Medicine, Chang Gung University, Taoyuan, Taiwan.
Background:
Streptococcus pneumoniae is a common cause of post-influenza secondary bacterial infection, which results in excessive morbidity and mortality. Although 13-valent pneumococcal conjugate vaccine (PCV13) vaccination programs have decreased the incidence of pneumococcal pneumonia, PCV13 failed to prevent serotype 3 pneumococcal disease as effectively as other vaccine serotypes. We aimed to investigate the mechanisms underlying the co-pathogenesis of influenza virus and serotype 3 pneumococci.
Methods:
We carried out a genome-wide screening of a serotype 3 S. pneumoniae transposon insertion mutant library in a mouse model of coinfection with influenza A virus (IAV) to identify the bacterial factors required for this synergism.
Results:
Direct, high-throughput sequencing of transposon insertion sites identified 24 genes required for both coinfection and bacterial infection alone. Targeted deletion of the putative aminotransferase (PA) gene decreased bacterial growth, which was restored by supplementation with methionine. The bacterial burden in a coinfection with the PA gene deletion mutant and IAV in the lung was lower than that in a coinfection with wild-type pneumococcus and IAV, but was significantly higher than that in an infection with the PA gene deletion mutant alone. These data suggest that IAV infection alters host metabolism to benefit pneumococcal fitness and confer higher susceptibility to pneumococcal infection. We further demonstrated that bacterial growth was increased by supplementation with methionine or IAV-infected mouse lung homogenates.
Conclusions:
The data indicates that modulation of host metabolism during IAV infection may serve as a potential therapeutic intervention against secondary bacterial infections caused by serotype 3 pneumococci during IAV outbreaks in the future.
Insights
Influenza A virus infection alters host metabolism, increasing susceptibility to Streptococcus pneumoniae serotype 3. Methionine supplementation or IAV-infected lung homogenates boost bacterial growth, suggesting metabolic intervention for secondary infections.
Area of Science:
- Microbiology
- Virology
- Immunology
Background:
- *Streptococcus pneumoniae* is a leading cause of secondary bacterial pneumonia post-influenza, contributing significantly to morbidity and mortality.
- The 13-valent pneumococcal conjugate vaccine (PCV13) shows reduced efficacy against serotype 3 *S. pneumoniae* compared to other serotypes.
- Understanding the synergistic pathogenesis of influenza A virus (IAV) and serotype 3 pneumococci is crucial for developing targeted interventions.
Purpose of the Study:
- To identify bacterial factors contributing to the synergistic virulence of *S. pneumoniae* serotype 3 during IAV coinfection.
- To elucidate the mechanisms by which IAV coinfection enhances pneumococcal disease severity.
Main Methods:
- Genome-wide screening of a *S. pneumoniae* serotype 3 transposon insertion mutant library in a mouse model of IAV coinfection.
- High-throughput sequencing to identify bacterial genes essential for coinfection and monoinfection.
- Targeted gene deletion and in vivo growth assays to validate identified genes and their role in coinfection.
Main Results:
- Identified 24 genes essential for both coinfection and bacterial monoinfection.
- Deletion of the putative aminotransferase (PA) gene reduced bacterial growth, which was restored by methionine supplementation.
- IAV infection enhances pneumococcal growth by altering host metabolism, increasing susceptibility to serotype 3 *S. pneumoniae*.
Conclusions:
- IAV infection creates a host metabolic environment favorable for *S. pneumoniae* serotype 3 fitness.
- Methionine or IAV-infected lung homogenates promote pneumococcal growth, highlighting metabolic pathways as therapeutic targets.
- Modulating host metabolism during IAV infection offers a potential strategy to combat secondary pneumococcal infections.
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