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Updated: Jun 5, 2025

Cystic Fibrosis Aggregate Biofilm Model to Study Infection-relevant Gene Expression
Published on: April 18, 2025
Exploring aggregation genes in a P. aeruginosa chronic infection model
Alexa D Gannon1, Jenet Matlack1,2, Sophie E Darch1
1Department of Molecular Medicine, Morsani College of Medicine, University of South Florida, Tampa, Florida, USA.
Abstract:
Bacterial aggregates are observed in both natural and artificial environments. In the context of disease, aggregates have been isolated from chronic and acute infections. Pseudomonas aeruginosa (Pa) aggregates contribute significantly to chronic infections, particularly in the lungs of people with cystic fibrosis (CF). Unlike the large biofilm structures observed in vitro, Pa in CF sputum forms smaller aggregates (~10-1,000 cells), and the mechanisms behind their formation remain underexplored. This study aims to identify genes essential and unique to Pa aggregate formation in a synthetic CF sputum media (SCFM2). We cultured Pa strain PAO1 in SCFM2 and LB, both with and without mucin, and used RNA sequencing (RNA-seq) to identify differentially expressed genes. The presence of mucin revealed 13 significantly differentially expressed (DE) genes, predominantly downregulated, with 40% encoding hypothetical proteins unique to aggregates. Using high-resolution microscopy, we assessed the ability of mutants to form aggregates. Notably, no mutant exhibited a completely planktonic phenotype. Instead, we identified multiple spatial phenotypes described as "normal," "entropic," or "impaired." Entropic mutants displayed tightly packed, raft-like structures, while impaired mutants had loosely packed cells. Predictive modeling linked the prioritized genes to metabolic shifts, iron acquisition, surface modification, and quorum sensing. Co-culture experiments with wild-type PAO1 revealed further spatial heterogeneity and the ability to "rescue" some mutant phenotypes, suggesting cooperative interactions during growth. This study enhances our understanding of Pa aggregate biology, specifically the genes and pathways unique to aggregation in CF-like environments. Importantly, it provides insights for developing therapeutic strategies targeting aggregate-specific pathways.
Importance:
This study identifies genes essential for the formation of Pseudomonas aeruginosa (Pa) aggregates in cystic fibrosis (CF) sputum, filling a critical gap in understanding their specific biology. Using a synthetic CF sputum model (SCFM2) and RNA sequencing, 13 key genes were identified, whose disruption led to distinct spatial phenotypes observed through high-resolution microscopy. The addition of wild-type cells either rescued the mutant phenotype or increased spatial heterogeneity, suggesting cooperative interactions are involved in aggregate formation. This research advances our knowledge of Pa aggregate biology, particularly the unique genes and pathways involved in CF-like environments, offering valuable insights for developing targeted therapeutic strategies against aggregate-specific pathways.
Insights
Researchers identified key genes essential for Pseudomonas aeruginosa (Pa) aggregate formation in cystic fibrosis (CF) sputum. Understanding these unique aggregation pathways offers new therapeutic targets for chronic CF lung infections.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Bacterial aggregates, particularly Pseudomonas aeruginosa (Pa), are significant in chronic infections like cystic fibrosis (CF).
- Pa aggregates in CF sputum are small (~10-1,000 cells), and their formation mechanisms are poorly understood.
- Existing in vitro models do not fully replicate the in vivo environment of CF sputum.
Purpose of the Study:
- To identify genes essential and unique to Pa aggregate formation in a synthetic CF sputum medium (SCFM2).
- To understand the role of specific genes in Pa aggregation phenotypes.
- To explore cooperative interactions in Pa aggregate development.
Main Methods:
- Cultured Pa strain PAO1 in synthetic CF sputum media (SCFM2) and Luria-Bertani (LB) broth, with and without mucin.
- Utilized RNA sequencing (RNA-seq) to identify differentially expressed genes in response to mucin.
- Employed high-resolution microscopy to analyze aggregate formation in gene mutants.
- Conducted predictive modeling and co-culture experiments to understand gene function and interactions.
Main Results:
- Identified 13 significantly differentially expressed genes in SCFM2 with mucin, many downregulated and encoding hypothetical proteins.
- Observed distinct spatial phenotypes (normal, entropic, impaired) in mutants, with no completely planktonic mutants.
- Linked prioritized genes to metabolic shifts, iron acquisition, surface modification, and quorum sensing.
- Co-culture experiments revealed spatial heterogeneity and rescue of mutant phenotypes by wild-type Pa, indicating cooperative interactions.
Conclusions:
- This study elucidates genes and pathways critical for Pa aggregation in CF-like environments.
- Identified unique genetic factors contributing to Pa aggregate formation.
- Provides foundational insights for developing novel therapeutic strategies targeting Pa aggregate-specific pathways in CF infections.

