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Enrichment and Detection of Clostridium perfringens Toxinotypes in Retail Food Samples
Published on: October 18, 2019
Analysis of the virulence-associated RevSR two-component signal transduction system of Clostridium perfringens
Jackie K Cheung1, Jessica A Wisniewski1, Vicki M Adams1
1Infection and Immunity Program, Biomedicine Discovery Institute and Department of Microbiology, Monash University, Clayton, Victoria 3800, Australia.
Abstract:
Clostridium perfringens is a Gram-positive, anaerobic, spore-forming bacterium that causes human gas gangrene (clostridial myonecrosis) and food poisoning. Early studies showed that virulence was regulated by the VirSR two-component signal transduction system. However, our identification of the RevR orphan response regulator indicated that more than one system was involved in controlling virulence. To further characterize this virulence-associated regulator, gel mobility shift experiments, coupled with DNase I footprinting, were used to identify the RevR DNA binding sequence. Bioinformatics analysis suggested that an orphan sensor histidine kinase, CPE1757 (renamed RevS), was the cognate sensor of RevR. Interaction between RevS and RevR was demonstrated by use of a bacterial two-hybrid system and validated by protein-protein interaction studies using biolayer interferometry. To assess the involvement of RevS in virulence regulation, the revS gene was inactivated by Targetron insertion. When isogenic wild-type, revS and complemented revS strains were tested in a mouse myonecrosis model, the revS mutant was found to be attenuated in virulence, which was similar to the attenuation observed previously with the revR mutant. However, transcriptional analysis of selected RevR-regulated genes in the revS mutant revealed a different pattern of expression to a revR mutant, suggesting that the RevSR system is more complex than originally thought. Taken together, the results have led to the identification and characterization of the two essential parts of a new regulatory network that is involved in the regulation of virulence in C. perfringens.
Insights
Researchers identified a new regulatory system, RevSR, in Clostridium perfringens. This system controls virulence, similar to the known VirSR system, impacting gas gangrene and food poisoning.
Area of Science:
- Microbiology
- Bacterial pathogenesis
- Molecular biology
Background:
- Clostridium perfringens causes gas gangrene and food poisoning.
- Virulence is partly regulated by the VirSR two-component system.
- An orphan regulator, RevR, suggested additional regulatory mechanisms.
Purpose of the Study:
- To characterize the RevR regulator and identify its cognate sensor.
- To investigate the role of the newly identified RevSR system in C. perfringens virulence.
Main Methods:
- Gel mobility shift and DNase I footprinting to identify RevR DNA binding sites.
- Bioinformatics and bacterial two-hybrid system to identify and confirm RevS as RevR's sensor.
- Biolayer interferometry for protein-protein interaction validation.
- Targetron insertion to create a revS mutant and virulence assessment in a mouse model.
Main Results:
- The RevR DNA binding sequence was identified.
- CPE1757 was identified as RevR's cognate sensor and renamed RevS.
- RevS interacts with RevR, forming the RevSR system.
- A revS mutant showed attenuated virulence in a mouse myonecrosis model, similar to the revR mutant.
- Transcriptional analysis revealed distinct gene expression patterns between revS and revR mutants, indicating complexity.
Conclusions:
- The RevSR two-component system is essential for C. perfringens virulence.
- The RevSR system represents a novel regulatory network controlling virulence in C. perfringens.
- The interaction between RevS and RevR suggests a complex regulatory mechanism beyond initial assumptions.
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