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.

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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