The type III toxins of Pseudomonas aeruginosa disrupt epithelial barrier function
Grace Soong1, Dane Parker, Mariah Magargee
1Department of Pediatrics and Pharmacology, College of Physicians & Surgeons, Columbia University, 650 West 168th Street, New York, NY 10032, USA.
Abstract:
The type III secreted toxins of Pseudomonas aeruginosa are important virulence factors associated with clinically important infection. However, their effects on bacterial invasion across mucosal surfaces have not been well characterized. One of the most commonly expressed toxins, ExoS, has two domains that are predicted to affect cytoskeletal integrity, including a GTPase-activating protein (GAP) domain, which targets Rho, a major regulator of actin polymerization; and an ADP-ribosylating domain that affects the ERM proteins, which link the plasma membrane to the actin cytoskeleton. The activities of these toxins, and ExoS specifically, on the permeability properties of polarized airway epithelial cells with intact tight junctions were examined. Strains expressing type III toxins altered the distribution of the tight junction proteins ZO-1 and occludin and were able to transmigrate across polarized airway epithelial monolayers, in contrast to DeltaSTY mutants. These effects on epithelial permeability were associated with the ADP-ribosylating domain of ExoS, as bacteria expressing plasmids lacking expression of the ExoS GAP activity nonetheless increased the permeation of fluorescent dextrans, as well as bacteria, across polarized airway epithelial cells. Treatment of epithelial cells with cytochalasin D depolymerized actin filaments and increased permeation across the monolayers but did not eliminate the differential effects of wild-type and toxin-negative mutants on the epithelial cells, suggesting that additional epithelial targets are involved. Confocal imaging studies demonstrated that ZO-1, occludin, and ezrin undergo substantial redistribution in human airway cells intoxicated by ExoS, -T, and -Y. These studies support the hypothesis that type III toxins enhance P. aeruginosa's invasive capabilities by interacting with multiple eukaryotic cytoskeletal components.
Insights
Pseudomonas aeruginosa type III toxins, particularly ExoS, disrupt airway epithelial barrier function by altering tight junction proteins. This facilitates bacterial invasion across mucosal surfaces, enhancing infection severity.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Pseudomonas aeruginosa is a significant pathogen causing infections.
- Type III secreted toxins are key virulence factors.
- Their impact on bacterial invasion across mucosal surfaces is not fully understood.
Purpose of the Study:
- To investigate the role of Pseudomonas aeruginosa type III toxins in bacterial invasion.
- To examine the effects of ExoS on the permeability of polarized airway epithelial cells.
- To elucidate the mechanisms by which these toxins affect epithelial barrier function.
Main Methods:
- Utilized Pseudomonas aeruginosa strains expressing type III toxins.
- Examined effects on polarized airway epithelial cell monolayers with intact tight junctions.
- Assessed alterations in tight junction proteins (ZO-1, occludin) and bacterial transmigration.
- Investigated the role of ExoS domains (GAP and ADP-ribosylating) and host cytoskeletal components (ezrin).
Main Results:
- Type III toxins altered the distribution of tight junction proteins ZO-1 and occludin.
- Bacteria expressing type III toxins transmigrated across epithelial monolayers.
- The ADP-ribosylating domain of ExoS was crucial for increased epithelial permeability.
- ExoS, -T, and -Y toxins caused redistribution of ZO-1, occludin, and ezrin in airway cells.
Conclusions:
- Type III toxins from Pseudomonas aeruginosa enhance bacterial invasion by disrupting the epithelial barrier.
- These toxins interact with multiple eukaryotic cytoskeletal components, including tight junction proteins and ezrin.
- The findings support the hypothesis that type III toxins are critical for P. aeruginosa's invasive capabilities.
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