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Published on: February 20, 2020
Pseudomonas aeruginosa Protease IV Exacerbates Pneumococcal Pneumonia and Systemic Disease
Jessica L Bradshaw1, Armando R Caballero1, Michael A Bierdeman1
1Department of Microbiology and Immunology, University of Mississippi Medical Center, Jackson, Mississippi, USA.
Insights
Protease IV (PIV) from Pseudomonas aeruginosa enhances Streptococcus pneumoniae virulence by cleaving IL-22. This PIV-Ply synergy increases pneumonia severity and mortality in a mouse model, highlighting new therapeutic targets.
Area of Science:
- Microbiology
- Immunology
- Pathogenesis
Background:
- Pneumonia is a leading cause of mortality and morbidity globally.
- Mixed bacterial lung infections, particularly involving *Streptococcus pneumoniae* and *Pseudomonas aeruginosa*, are increasingly severe.
- Understanding pathogen interactions is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of *P. aeruginosa* protease IV (PIV) in augmenting *S. pneumoniae* virulence.
- To elucidate the cooperative mechanisms between PIV and *S. pneumoniae* virulence factors in a murine pneumonia model.
Main Methods:
- A C57BL/6 murine model of pneumonia was used.
- Coinfections were established with *P. aeruginosa* and *S. pneumoniae* strains, including a PIV-deficient mutant.
- Intratracheal administration of PIV and bacterial strains was performed.
- IL-22 levels and host immune responses were assessed.
Main Results:
- Coinfection with *P. aeruginosa* and *S. pneumoniae* led to pneumococcal bacteremia, which was reduced with a PIV-deficient strain.
- Exogenous PIV administration with *S. pneumoniae* caused severe pneumonia, abscesses, bacteremia, and 100% mortality.
- PIV was shown to deplete IL-22 *in vivo*.
- PIV-mediated enhancement of disease severity was dependent on pneumolysin (Ply) expression.
Conclusions:
- Protease IV (PIV) from *P. aeruginosa* significantly enhances *S. pneumoniae* virulence.
- The combined action of PIV and pneumolysin (Ply) additively potentiates pneumonia and invasive disease.
- Targeting bacterial proteases and toxins represents a potential therapeutic strategy against severe pneumonia.
Abstract:
Pneumonia is a pulmonary disease affecting people of all ages and is consistently a leading cause of childhood mortality and adult hospitalizations. Streptococcus pneumoniae and Pseudomonas aeruginosa are major lung pathogens commonly associated with community-acquired and nosocomial pneumonia. Additionally, mixed lung infections involving these bacterial pathogens are increasing in prevalence and are frequently more severe than single infections. The cooperative interactions of these two pathogens that impact pulmonary disease severity are understudied. A major secreted virulence factor of P. aeruginosa, protease IV (PIV), cleaves interleukin 22 (IL-22), a cytokine essential for maintaining innate mucosal defenses against extracellular pathogens. Here, we investigate the ability of PIV to augment the virulence of a pneumococcal strain with limited virulence, S. pneumoniae EF3030, in a C57BL/6 murine model of pneumonia. We demonstrate that pulmonary coinfection involving P. aeruginosa 103-29 and S. pneumoniae EF3030 results in pneumococcal bacteremia that is abrogated during pneumococcal coinfection with a PIV-deficient strain. Furthermore, intratracheal administration of exogenous PIV and EF3030 resulted in abundant immune cell infiltration into the lung with large abscess formation, as well as severe bacteremia leading to 100% mortality. Heat-inactivated PIV did not worsen pneumonia or reliably induce bacteremia, suggesting that the specific activity of PIV is required. Our studies also show that PIV depletes IL-22 in vivo Moreover, PIV-mediated enhancement of pneumonia and disease severity was dependent on the expression of pneumolysin (Ply), a prominent virulence factor of S. pneumoniae Altogether, we reveal that PIV and Ply additively potentiate pneumonia in a murine model of lung infection.IMPORTANCES. pneumoniae remains the leading cause of bacterial pneumonia despite widespread use of pneumococcal vaccines, forcing the necessity for appropriate treatment to control pneumococcal infections. Coinfections involving S. pneumoniae with other bacterial pathogens threaten antibiotic treatment strategies and disease outcomes. Currently, there is not an effective treatment for alveolar-capillary barrier dysfunction that precedes bacteremia. An understanding of the dynamics of host-pathogen interactions during single and mixed pulmonary infections could elucidate proper treatment strategies needed to prevent or reduce invasive disease. Antibiotic treatment decreases bacterial burden in the lung but also increases acute pathology due to cytotoxins released via antibiotic-induced bacterial lysis. Therefore, targeted therapeutics that inhibit or counteract the effects of bacterial proteases and toxins are needed in order to limit pathology and disease progression. This study identifies the cooperative effect of PIV and Ply, products of separate lung pathogens that additively alter the lung environment and facilitate invasive disease.
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