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Induction of Cellular Differentiation and Single Cell Imaging of Vibrio parahaemolyticus Swimmer and Swarmer Cells
Published on: May 15, 2017
Vibrio parahaemolyticus VtrA is a membrane-bound regulator and is activated via oligomerization
Ryu Okada1, Shigeaki Matsuda1, Tetsuya Iida1
1Department of Bacterial Infections, Research Institute for Microbial Diseases, Osaka University, Suita, Osaka, Japan.
Abstract:
Vibrio parahaemolyticus is a Gram-negative pathogen that causes food-borne gastroenteritis. A major virulence determinant of the organism is a type III secretion system (T3SS2) encoded on a pathogenicity island, Vp-PAI. Vp-PAI gene expression is regulated by two transcriptional regulators, VtrA and VtrB, whose N-terminal regions share homology with an OmpR-family DNA-binding domain. VtrA activates the gene expression of VtrB, which in turn activates Vp-PAI gene expression; however, the mechanism of this transcriptional activation by VtrA is not well understood. In this study, we determined that VtrA is a membrane protein with a transmembrane (TM) domain, which was required for its transcriptional regulatory activity. Although the N-terminal region of VtrA alone is insufficient for its transcriptional regulatory activity, forced oligomerization using the leucine-zipper dimerization domain of yeast GCN4 conferred transcriptional regulatory activity and a greater affinity for the promoter region of vtrB. A ToxR-based assay demonstrated that VtrA oligomerizes in vivo. We also showed that bile, a host-derived activator of VtrA, induces the oligomerization of VtrA, which requires the C-terminal domain. The promoter region of vtrB contained repetitive T-rich DNA elements, which are important for vtrB transcriptional activation and are conserved among T3SS2-possessing Vibrio species. These findings propose that VtrA is active as oligomers, which may facilitate its N-terminus binding the target DNA, thus enhancing its transcriptional regulatory activity.
Insights
Vibrio parahaemolyticus transcriptional regulator VtrA requires oligomerization for activity. Bile induces VtrA oligomerization, enhancing its binding to the vtrB promoter, crucial for virulence gene expression.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Vibrio parahaemolyticus causes foodborne illness via its type III secretion system (T3SS2).
- T3SS2 expression is regulated by VtrA and VtrB, transcriptional regulators with OmpR-like DNA-binding domains.
- The precise mechanism of VtrA-mediated transcriptional activation remains unclear.
Purpose of the Study:
- To elucidate the mechanism of VtrA's transcriptional regulatory activity.
- To investigate the role of VtrA's domains and oligomerization in regulating vtrB gene expression.
- To understand how host factors like bile influence VtrA function.
Main Methods:
- Site-directed mutagenesis to identify functional domains of VtrA.
- Forced oligomerization assays using a yeast GCN4 leucine-zipper domain.
- In vivo oligomerization assessment using a ToxR-based system.
- DNA-binding affinity studies using the vtrB promoter region.
Main Results:
- VtrA possesses a transmembrane domain essential for its regulatory function.
- Forced oligomerization of VtrA restored/enhanced its transcriptional activity and vtrB promoter binding.
- VtrA undergoes oligomerization in vivo, which is induced by bile and dependent on its C-terminal domain.
- Bile-induced VtrA oligomerization enhances binding to repetitive T-rich elements in the vtrB promoter.
Conclusions:
- VtrA functions as an oligomer to effectively bind the vtrB promoter.
- Membrane localization and bile-induced oligomerization are critical for VtrA's role in V. parahaemolyticus virulence.
- This oligomerization model provides a framework for understanding T3SS2 regulation in Vibrio species.
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