Biochemical, structural and molecular dynamics analyses of the potential virulence factor RipA from Yersinia pestis

Rodrigo Torres1, Robert V Swift, Nicholas Chim

  • 1Department of Molecular Biology and Biochemistry, University of California Irvine, Irvine, California, United States of America.

Plos One
|October 4, 2011
PubMed

Insights

Yersinia pestis RipA, essential for intracellular survival, functions as a butyryl-CoA transferase. Its structure reveals a tetrameric state, offering insights for designing inhibitors against this virulence pathway.

Area of Science:

  • Microbiology
  • Structural Biology
  • Biochemistry

Background:

  • Pathogens evade host immunity, with some surviving in macrophages.
  • Yersinia pestis, causing plague, survives intracellularly via the rip operon.
  • The rip operon lowers nitric oxide (NO) levels in macrophages.

Purpose of the Study:

  • Investigate the function and structure of RipA from Yersinia pestis.
  • Determine RipA's role in pathogen intracellular survival.
  • Provide a structural basis for inhibitor design.

Main Methods:

  • Bioinformatics analysis of the rip operon conservation.
  • Biochemical assays to determine RipA's enzymatic activity.
  • X-ray crystallography to determine RipA's 3D structure.
  • Molecular dynamics simulations to study RipA's conformational dynamics.

Main Results:

  • RipA functions as a butyryl-CoA transferase, not 4-hydroxybutyrate-CoA transferase.
  • The X-ray crystal structure revealed RipA as a unique tetramer.
  • Molecular dynamics simulations support tetramer formation and suggest a CoA binding gating mechanism.

Conclusions:

  • RipA's structure and function are elucidated, supporting its role in virulence.
  • The rip operon likely produces butyrate, an anti-inflammatory agent reducing NO levels.
  • The study provides a structural framework for developing RipA-targeted inhibitors.

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