Monolayer culture systems with respiratory epithelial cells for evaluation of bacterial invasiveness
Yoichi Hirakata1, Hisakazu Yano, Kazuaki Arai
1Department of Infection Control and Laboratory Diagnostics, Tohoku University Graduate School of Medicine, Sendai, Japan. hiraichi@mail.tains.tohoku.ac.jp
Abstract:
Pseudomonas (P.) aeruginosa is a major opportunistic pathogen especially in immunocompromised patients. To evaluate the invasiveness of respiratory pathogens, we developed monolayer culture systems and examined the degree of invasion by P. aeruginosa and invasive Salmonella (S.) typhimurium strains using human respiratory cell lines: A549 (derived from lung cancer), BEAS-2B (normal bronchial epithelium), and Calu-3 (pleural effusion of a patient with adenocarcinoma of the lung). Cells were seeded into filter units containing 0.33 cm(2) filter membranes with 3.0 microm pores, and were incubated at 37 degrees C under 5% CO(2) for 4-10 days. By monitoring the trans-monolayer electrical resistance (TER), we judged that BEAS-2B cells (TER values: 436.2 +/- 16.8 to 628.8 +/- 66.3 Omega cm(2)) and Calu-3 cells (TER values: 490.5 +/- 25.2 to 547.8 +/- 21.6 Omega cm(2)) formed monolayers with tight junctions, but not A549 cells. On day 8 of culture, monolayer cultures were infected with bacteria, and the number of microorganisms penetrating into the basolateral medium was counted. Wild-type P. aeruginosa PAO1 (PAO1 WT) and S. typhimurium SL1344 were detected in the basolateral medium of BEAS-2B monolayer system by 3 h after inoculation, while only P. aeruginosa PAO1 WT was detected in the basolateral medium of Calu-3 monolayer, indicating poor invasiveness of S. typhimurium SL1344 in the Calu-3 system. These findings suggest that BEAS-2B or Calu-3 monolayer system could be useful for evaluating the invasiveness of respiratory pathogens. Because of the difference in bacterial invasiveness, we may need to choose a suitable cell system for each target pathogen.
Insights
Researchers developed new cell culture models to study how respiratory pathogens invade the body. The BEAS-2B and Calu-3 cell systems effectively showed differences in Pseudomonas aeruginosa and Salmonella typhimurium invasion.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Pseudomonas (P.) aeruginosa is a significant opportunistic pathogen, particularly affecting immunocompromised individuals.
- Evaluating the invasiveness of respiratory pathogens is crucial for understanding and combating infections.
Purpose of the Study:
- To develop and validate human respiratory cell monolayer systems for assessing pathogen invasiveness.
- To compare the invasion capabilities of P. aeruginosa and Salmonella (S.) typhimurium in different cell models.
Main Methods:
- Established human respiratory cell lines (A549, BEAS-2B, Calu-3) in filter-based monolayer cultures.
- Monitored trans-monolayer electrical resistance (TER) to confirm monolayer integrity and tight junction formation.
- Inoculated monolayers with P. aeruginosa PAO1 WT and S. typhimurium SL1344, quantifying bacterial penetration into the basolateral medium.
Main Results:
- BEAS-2B and Calu-3 cells formed tight junctions, confirmed by TER measurements, indicating suitable models for invasion studies.
- P. aeruginosa PAO1 WT and S. typhimurium SL1344 penetrated the BEAS-2B monolayer within 3 hours.
- P. aeruginosa PAO1 WT, but not S. typhimurium SL1344, invaded the Calu-3 monolayer, highlighting pathogen-specific invasiveness.
- A549 cells did not form tight junctions, deeming them unsuitable for this invasion model.
Conclusions:
- The BEAS-2B and Calu-3 monolayer systems are effective tools for evaluating the invasiveness of respiratory pathogens.
- Pathogen invasiveness varies significantly between different respiratory cell types, necessitating careful selection of cell models for specific pathogen studies.
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