Anaerobic microbiota promote pathogen association with the airway epithelium
Patrick J Moore1, Leslie A Kent1, Ryan C Hunter1,2
1Department of Microbiology & Immunology, University of Minnesota, 689 23rd Avenue SE, Minneapolis, MN 55455, USA.
Abstract:
Introduction. Chronic rhinosinusitis (CRS) is a prevalent condition characterized by mucus stasis, persistent inflammation and infection of the paranasal sinuses. CRS often involves infection by the bacterium Pseudomonas aeruginosa, especially in individuals with cystic fibrosis or a history of antibiotic use. While P. aeruginosa is a well-established opportunistic pathogen that deploys a diverse array of virulence factors to drive airway infections, its persistence in the airway mucosa is also likely influenced by its local microbial ecology. For instance, anaerobic bacterial genera, such as Streptococcus, Veillonella and Prevotella, are also commonly found in CRS and may contribute to pathogen establishment.Hypothesis. Although anaerobes are common members of the CRS microbiota, their role in promoting P. aeruginosa association with the airway epithelium remains poorly defined. We hypothesized that anaerobes facilitate P. aeruginosa attachment by degrading mucin glycoproteins that decorate the epithelial surface.Aim. To determine whether CRS-associated anaerobic microbiota enhance P. aeruginosa colonization of the airways through mucin modification.Methodology. Using a novel dual oxic-anoxic culture platform, Calu-3 epithelial cells were co-cultured with a CRS-derived anaerobic microbial community. Inflammatory gene expression, mucin integrity and subsequent P. aeruginosa epithelial association were assessed. Additionally, mucins isolated from anaerobe-treated cells were evaluated for their ability to promote P. aeruginosa attachment in vitro.Results. Anaerobe exposure increased epithelial inflammatory marker gene expression and led to degradation of mucin glycoproteins. Anaerobe pre-treatment significantly enhanced P. aeruginosa association with the epithelial surface. Moreover, mucins isolated from anaerobe-treated cells promoted greater pathogen attachment in vitro compared to intact mucins.Conclusion. CRS-associated anaerobic microbiota can remodel the sinonasal microenvironment in ways that enhance P. aeruginosa epithelial association. These findings highlight the importance of polymicrobial interactions in CRS pathogenesis and suggest that targeting anaerobe-mediated mucin degradation may represent a novel therapeutic strategy for chronic airway disease.
Insights
Anaerobic bacteria common in chronic rhinosinusitis (CRS) degrade airway mucins, facilitating Pseudomonas aeruginosa colonization. This study reveals how these polymicrobial interactions worsen CRS and suggests targeting mucin degradation for new therapies.
Area of Science:
- Microbiology and Immunology
- Respiratory Medicine
- Pathogen-Host Interactions
Background:
- Chronic rhinosinusitis (CRS) involves persistent sinus inflammation and mucus stasis.
- Pseudomonas aeruginosa frequently infects CRS patients, particularly those with cystic fibrosis or prior antibiotic use.
- The role of anaerobic bacteria, common in CRS, in promoting P. aeruginosa persistence is unclear.
Purpose of the Study:
- To investigate if anaerobic bacteria associated with CRS enhance P. aeruginosa colonization.
- To determine if anaerobes promote P. aeruginosa attachment via mucin glycoprotein modification.
Main Methods:
- Utilized a dual oxic-anoxic culture system with Calu-3 epithelial cells and a CRS-derived anaerobic community.
- Assessed inflammatory gene expression, mucin integrity, and P. aeruginosa epithelial association.
- Evaluated the ability of anaerobe-treated mucins to promote P. aeruginosa attachment in vitro.
Main Results:
- Anaerobe exposure increased epithelial inflammatory markers and degraded mucin glycoproteins.
- Pre-treatment with anaerobes significantly enhanced P. aeruginosa association with epithelial cells.
- Mucins from anaerobe-treated cells promoted greater P. aeruginosa attachment compared to intact mucins.
Conclusions:
- CRS-associated anaerobic microbiota remodel the sinonasal environment, increasing P. aeruginosa epithelial association.
- Polymicrobial interactions are crucial in CRS pathogenesis.
- Targeting anaerobe-mediated mucin degradation offers a potential therapeutic strategy for chronic airway diseases.
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