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Identification of Host Pathways Targeted by Bacterial Effector Proteins using Yeast Toxicity and Suppressor Screens
Published on: October 25, 2019
Insights into the association of the Chlamydia trachomatis type III secretion chaperone complex, Scc4:Scc1, from
Hemanthie C Wickramasinghe1, Juliette N Lincoln1, Anne E D'Armond1
1Department of Chemistry, Louisiana State University, Baton Rouge, LA, 70803, United States.
Abstract:
Chlamydia trachomatis (CT) is the bacterial pathogen responsible for causing the most common sexually transmitted disease in the United States. This obligate, intracellular Gram-negative bacterium has a type III secretion system (T3SS) to invade host cells. CopN is an important effector, plug protein that mediates early interactions between the host and Chlamydia. CopN is chaperoned by a heterodimer, T3SS chaperone complex containing Scc4 and Scc1. Scc4 is a unique, bifunctional protein that, in addition to its T3SS chaperone activity, acts as an RNA polymerase (RNAP) binding protein. We hypothesized that the two functions occur at different points in CT's developmental cycle with Scc4 acting alone in the early-to-mid stages and the Scc4:Scc1 complex chaperoning CopN in the mid-to-late stages. To study the Scc4:Scc1 complex by NMR, we previously explored various methods of associating Scc4 and Scc1 in vitro to produce the complex with chain-selective isotopic labeling. Though co-expressed Scc4 and Scc1 form a stable complex, the in vitro association studies suggest that partial protein denaturation and/or components in E. coli lysate are necessary to form the stable complex. In this study Scc4 and Scc1 were sequentially expressed in E. coli under the control of different promoters, allowing separate isotopic labeling of each chain and complex formation in vivo. Sequential expression resulted in no or unstable complex formation depending on the culture medium used. These results, taken together with previous in vitro association studies, suggest that Scc4 and Scc1 assemble co-translationally to form the stable Scc4:Scc1 complex in E. coli.
Insights
The study investigated the Chlamydia trachomatis (CT) Scc4:Scc1 chaperone complex. Results suggest Scc4 and Scc1 assemble co-translationally, challenging previous in vitro association findings for this essential bacterial protein complex.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Chlamydia trachomatis (CT) causes a common sexually transmitted disease.
- CT utilizes a type III secretion system (T3SS) for host cell invasion.
- CopN, a CT effector protein, is chaperoned by the Scc4:Scc1 complex.
Purpose of the Study:
- To investigate the assembly mechanism of the CT Scc4:Scc1 chaperone complex.
- To explore the distinct roles of Scc4 and the Scc4:Scc1 complex in CT's developmental cycle.
- To optimize methods for producing isotopically labeled Scc4:Scc1 complex for NMR studies.
Main Methods:
- Sequential expression of Scc4 and Scc1 in E. coli with differential promoter control.
- In vitro association studies of Scc4 and Scc1.
- Analysis of complex formation under varying culture conditions.
Main Results:
- Sequential expression in E. coli resulted in no or unstable Scc4:Scc1 complex formation.
- Previous in vitro studies indicated a need for partial denaturation or E. coli lysate components for complex formation.
- These findings collectively suggest co-translational assembly of the Scc4:Scc1 complex.
Conclusions:
- The Scc4:Scc1 complex likely assembles co-translationally within E. coli.
- This challenges previous in vitro assembly models.
- Understanding CT T3SS chaperone assembly is crucial for developing therapeutic strategies.
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