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Vibrio parahaemolyticus ExsE is requisite for initial adhesion and subsequent type III secretion system 1-dependent
Daniel P Erwin1, Seth D Nydam1, Douglas R Call2,1
1Department of Veterinary Microbiology and Pathology, Washington State University, Pullman, WA, USA.
Abstract:
Vibrio parahaemolyticus pandemic serotype O3 : K6 causes acute gastroenteritis, wound infections and septicaemia in humans. This organism encodes two type III secretion systems (T3SS1 and T3SS2); host-cell cytotoxicity has been attributed to T3SS1. Synthesis and secretion of T3SS1 proteins is positively regulated by ExsA, which is presumptively regulated by the ExsCDE pathway, similar to Pseudomonas aeruginosa. Herein we deleted the putative exsE from V. parahaemolyticus and found constitutive expression of the T3SS1 in broth culture as expected. More importantly, however, in a cell culture model, the ΔexsE strain was unable to induce cytotoxicity, as measured by release of lactate dehydrogenase (LDH), or autophagy, as measured by LC3 conversion. This is markedly different from P. aeruginosa, where deletion of exsE has no effect on host-cell cytolysis. Swarming and cytoadhesion were reduced for the deletion mutant and could be recovered along with T3SS1-induced HeLa cell cytotoxicity by in cis expression of exsE in the ΔexsE strain. Loss of adhesion and swarming motility was associated with the loss of flagella biogenesis in the exsE-deficient strain. Mouse mortality was unaffected by the deletion of exsE compared with a wild-type control, suggesting that additional adhesins are important for intoxication in vivo. Based on these data, we conclude that ExsE contributes to the negative regulation of T3SS1 and, in addition, contributes to regulation of an adherence phenotype that is requisite for translocation of effector proteins into HeLa cells.
Insights
The ExsE protein in Vibrio parahaemolyticus negatively regulates the type III secretion system 1 (T3SS1) and is crucial for bacterial adherence and host cell cytotoxicity. Deleting ExsE impairs T3SS1 function and adhesion.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- Vibrio parahaemolyticus O3:K6 causes severe human infections.
- The bacterium utilizes two type III secretion systems (T3SS1 and T3SS2), with T3SS1 linked to cytotoxicity.
- T3SS1 expression is regulated by the ExsA protein, likely via the ExsCDE pathway.
Purpose of the Study:
- To investigate the role of the putative ExsE protein in V. parahaemolyticus.
- To determine ExsE's function in regulating T3SS1 and its impact on host cell interactions.
Main Methods:
- Deletion of the exsE gene in V. parahaemolyticus.
- Assessing T3SS1 expression in broth culture.
- Evaluating cytotoxicity (LDH release) and autophagy (LC3 conversion) in a HeLa cell model.
- Analyzing swarming motility and cytoadhesion.
- Restoring exsE expression in the complemented strain.
- Observing mouse mortality.
Main Results:
- Deletion of exsE led to constitutive T3SS1 expression in broth.
- The ΔexsE mutant showed reduced cytotoxicity and autophagy induction in HeLa cells.
- Swarming motility and cytoadhesion were significantly decreased in the ΔexsE strain.
- Loss of adhesion and motility correlated with impaired flagella biogenesis.
- Complementation with exsE restored T3SS1-mediated cytotoxicity and adhesion.
- Mouse mortality was not affected by exsE deletion.
Conclusions:
- ExsE negatively regulates T3SS1 in V. parahaemolyticus.
- ExsE is essential for bacterial adherence and T3SS1 effector translocation into host cells.
- The role of ExsE in V. parahaemolyticus differs significantly from its role in Pseudomonas aeruginosa regarding host cell cytolysis.
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