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Published on: July 26, 2019
Sigma 54-Regulated Transcription Is Associated with Membrane Reorganization and Type III Secretion Effectors during
Katelyn R Soules1, Scott D LaBrie1, Benjamin H May1
1Department of Molecular Biosciences, University of Kansas, Lawrence, Kansas, USA.
Abstract:
Chlamydia bacteria are obligate intracellular organisms with a phylum-defining biphasic developmental cycle that is intrinsically linked to its ability to cause disease. The progression of the chlamydial developmental cycle is regulated by the temporal expression of genes predominantly controlled by RNA polymerase sigma (σ) factors. Sigma 54 (σ54) is one of three sigma factors encoded by Chlamydia for which the role and regulon are unknown. CtcC is part of a two-component signal transduction system that is requisite for σ54 transcriptional activation. CtcC activation of σ54 requires phosphorylation, which relieves inhibition by the CtcC regulatory domain and enables ATP hydrolysis by the ATPase domain. Prior studies with CtcC homologs in other organisms have shown that expression of the ATPase domain alone can activate σ54 transcription. Biochemical analysis of CtcC ATPase domain supported the idea of ATP hydrolysis occurring in the absence of the regulatory domain, as well as the presence of an active-site residue essential for ATPase activity (E242). Using recently developed genetic approaches in Chlamydia to induce expression of the CtcC ATPase domain, a transcriptional profile was determined that is expected to reflect the σ54 regulon. Computational evaluation revealed that the majority of the differentially expressed genes were preceded by highly conserved σ54 promoter elements. Reporter gene analyses using these putative σ54 promoters reinforced the accuracy of the model of the proposed regulon. Investigation of the gene products included in this regulon supports the idea that σ54 controls expression of genes that are critical for conversion of Chlamydia from replicative reticulate bodies into infectious elementary bodies.IMPORTANCE The factors that control the growth and infectious processes for Chlamydia are still poorly understood. This study used recently developed genetic tools to determine the regulon for one of the key transcription factors encoded by Chlamydia, sigma 54. Surrogate and computational analyses provide additional support for the hypothesis that sigma 54 plays a key role in controlling the expression of many components critical to converting and enabling the infectious capability of Chlamydia These components include those that remodel the membrane for the extracellular environment and incorporation of an arsenal of type III secretion effectors in preparation for infecting new cells.
Insights
This study identifies the genes controlled by sigma 54 (σ54) in *Chlamydia*, revealing its critical role in the bacteria
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Chlamydia bacteria possess a biphasic developmental cycle essential for disease, regulated by RNA polymerase sigma factors.
- Sigma 54 (σ54) is a key sigma factor in Chlamydia with an unknown role and regulon.
- CtcC, a component of a two-component system, is required for σ54 transcriptional activation.
Purpose of the Study:
- To elucidate the function and regulon of the sigma 54 (σ54) transcription factor in Chlamydia.
- To identify genes critical for Chlamydia's developmental cycle and infectious potential.
Main Methods:
- Utilized genetic approaches to induce expression of the CtcC ATPase domain in Chlamydia.
- Determined transcriptional profiles to identify the σ54 regulon.
- Employed computational analysis and reporter gene assays to validate predicted σ54 promoter elements.
Main Results:
- Identified a set of differentially expressed genes regulated by σ54, many with conserved promoter elements.
- Confirmed the role of the CtcC ATPase domain in activating σ54-dependent transcription.
- The σ54 regulon includes genes crucial for the conversion of reticulate bodies to infectious elementary bodies.
Conclusions:
- Sigma 54 (σ54) plays a pivotal role in regulating gene expression during Chlamydia's developmental cycle.
- σ54 controls essential components for Chlamydia's transition to an infectious form, including membrane remodeling and type III secretion effectors.
- Understanding the σ54 regulon provides insights into Chlamydia's growth and infectious mechanisms.
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