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Updated: Jun 22, 2025

Growing a Cystic Fibrosis-Relevant Polymicrobial Biofilm to Probe Community Phenotypes
Published on: April 19, 2024
Dpr-mediated H2O2 resistance contributes to streptococcus survival in a cystic fibrosis airway model system
Rendi R Rogers1, Christopher A Kesthely1, Fabrice Jean-Pierre1
1Department of Microbiology and Immunology, Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.
Abstract:
The cystic fibrosis (CF) lung environment is conducive to the colonization of bacteria as polymicrobial biofilms, which are associated with poor clinical outcomes for persons with CF (pwCF). Streptococcus spp. are highly prevalent in the CF airway, but its role in the CF lung microbiome is poorly understood. Some studies have shown Streptococcus spp. to be associated with better clinical outcomes for pwCF, while others show that high abundance of Streptococcus spp. is correlated with exacerbations. Our lab previously reported a polymicrobial culture system consisting of four CF-relevant pathogens that can be used to study microbial behavior in a more clinically relevant setting. Here, we use this model system to identify genetic pathways that are important for Streptococcus sanguinis survival in the context of the polymicrobial community. We identified genes related to reactive oxygen species as differentially expressed in S. sanguinis monoculture versus growth of this microbe in the mixed community. Genetic studies identified Dpr as important for S. sanguinis survival in the community. We show that Dpr, a DNA-binding ferritin-like protein, and PerR, a peroxide-responsive transcriptional regulator of Dpr, are important for protecting S. sanguinis from phenazine-mediated toxicity in co-culture with Pseudomonas aeruginosa and when exposed to hydrogen peroxide, both of which mimic the CF lung environment. Characterizing such interactions in a clinically relevant model system contributes to our understanding of microbial behavior in the context of polymicrobial biofilm infections.
Importance:
Streptococcus spp. are recognized as a highly prevalent pathogen in cystic fibrosis (CF) airway infections. However, the role of this microbe in clinical outcomes for persons with CF is poorly understood. Here, we leverage a polymicrobial community system previously developed by our group to model CF airway infections as a tool to investigate a Pseudomonas-Streptococcus interaction involving reactive oxygen species (ROS). We show that protection against ROS is required for Streptococcus sanguinis survival in a clinically relevant polymicrobial system. Using this model system to study interspecies interactions contributes to our broader understanding of the complex role of Streptococcus spp. in the CF lung.
Insights
Streptococcus sanguinis requires protection against reactive oxygen species for survival in cystic fibrosis lung biofilms. DNA-binding ferritin-like protein Dpr and regulator PerR are key to this protection, especially against Pseudomonas aeruginosa.
Area of Science:
- Microbiology
- Infectious Diseases
- Biofilm Research
Background:
- Cystic fibrosis (CF) lung infections involve polymicrobial biofilms, impacting patient outcomes.
- Streptococcus spp. are common in CF airways, but their role in disease progression is unclear.
- A previously established CF polymicrobial culture model allows for studying interspecies interactions.
Purpose of the Study:
- To identify genetic factors enabling Streptococcus sanguinis survival within a CF polymicrobial community.
- To investigate the interaction between Streptococcus sanguinis and Pseudomonas aeruginosa concerning reactive oxygen species (ROS).
Main Methods:
- Utilized a four-pathogen CF polymicrobial culture system.
- Performed genetic studies to identify key survival genes in S. sanguinis.
- Assessed the role of Dpr and PerR in S. sanguinis protection against ROS and P. aeruginosa.
Main Results:
- Identified genes related to reactive oxygen species (ROS) as differentially expressed in S. sanguinis monoculture versus polymicrobial growth.
- Dpr, a DNA-binding ferritin-like protein, was found crucial for S. sanguinis survival in the polymicrobial community.
- Dpr and its regulator PerR protect S. sanguinis from phenazine toxicity from Pseudomonas aeruginosa and hydrogen peroxide exposure.
Conclusions:
- Protection against reactive oxygen species is essential for Streptococcus sanguinis survival in CF polymicrobial biofilms.
- The Dpr-PerR system is vital for S. sanguinis to withstand oxidative stress in the CF lung environment.
- This research enhances understanding of Streptococcus spp. interactions within the complex CF lung microbiome.
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