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Multiple domains are required for the toxic activity of Pseudomonas aeruginosa ExoU
1Department of Microbiology and Molecular Genetics, Medical College of Wisconsin, Milwaukee, Wisconsin 53226, USA.
Abstract:
Expression of ExoU by Pseudomonas aeruginosa is correlated with acute cytotoxicity in a number of epithelial and macrophage cell lines. In vivo, ExoU is responsible for epithelial injury. The absence of a known motif or significant homology with other proteins suggests that ExoU may possess a new mechanism of toxicity. To study the intracellular effects of ExoU, we developed a transient-transfection system in Chinese hamster ovary cells. Transfection with full-length but not truncated forms of ExoU inhibited reporter gene expression. Inhibition of reporter activity after cotransfection with ExoU-encoding constructs was correlated with cellular permeability and death. The toxicity of truncated versions of ExoU could be restored by coexpression of the remainder of the molecule from separate plasmids in trans. This strategy was used to map N- and C-terminal regions of ExoU that are necessary but not sufficient for toxicity. Disruption of a middle region of the protein reduces toxicity. This portion of the molecule is postulated to allow the N- and C-terminal regions to functionally complement one another. In contrast to ExoS and ExoT, native and recombinant ExoU molecules do not oligomerize or form aggregates. The complex domain structure of ExoU suggests that, like other P. aeruginosa-encoded type III effectors (ExoS and ExoT), ExoU toxicity may result from a molecule that possesses more than one activity.
Insights
Pseudomonas aeruginosa
Area of Science:
- Microbiology
- Cell Biology
- Toxicology
Background:
- Pseudomonas aeruginosa ExoU causes acute cytotoxicity and epithelial injury.
- ExoU's novel mechanism of toxicity lacks known motifs or homology.
- Understanding ExoU's function is crucial for combating bacterial infections.
Purpose of the Study:
- To investigate the intracellular effects and toxicity mechanism of Pseudomonas aeruginosa ExoU.
- To map the functional domains of ExoU responsible for its cytotoxic activity.
- To compare ExoU's behavior with other P. aeruginosa type III effectors.
Main Methods:
- Developed a transient-transfection system in Chinese hamster ovary cells.
- Utilized full-length and truncated ExoU constructs for gene expression studies.
- Employed coexpression strategies to map essential ExoU regions and assess toxicity.
Main Results:
- Full-length ExoU inhibited reporter gene expression, correlating with cell permeability and death.
- N- and C-terminal regions were identified as necessary but not sufficient for toxicity.
- Disruption of a central region reduced ExoU toxicity, suggesting functional complementation between domains.
- ExoU does not oligomerize, unlike ExoS and ExoT.
Conclusions:
- ExoU exhibits a complex domain structure, likely possessing multiple activities.
- Its toxicity mechanism is distinct from other P. aeruginosa type III effectors.
- Further research into ExoU's multi-activity nature is warranted.