Functional recruitment of the human complement inhibitor C4BP to Yersinia pseudotuberculosis outer membrane protein

Derek K Ho1, Rauna Riva, Vesa Kirjavainen

  • 1Infection Biology Program, Department of Bacteriology and Immunology, Haartman Institute, University of Helsinki, FIN-00014 Helsinki, Finland. derek.ho@helsinki.fi

Insights

The Yersinia pseudotuberculosis Ail protein binds and functionally utilizes C4b-binding protein (C4BP) to resist complement-mediated attack. This interaction is crucial for serum resistance in pathogenic Yersiniae.

Area of Science:

  • Microbiology
  • Immunology
  • Molecular Biology

Background:

  • Ail is a key outer membrane protein in pathogenic Yersiniae, mediating serum resistance.
  • Yersiniae pathogens cause serious infections, necessitating understanding their immune evasion mechanisms.

Purpose of the Study:

  • To investigate the interaction between Yersinia pseudotuberculosis Ail and C4b-binding protein (C4BP).
  • To determine if this interaction contributes to serum resistance in Yersiniae.

Main Methods:

  • Demonstrated Ail-C4BP binding using various Y. pseudotuberculosis strains and serotypes.
  • Disrupted the ail gene to assess its role in C4BP binding and serum resistance.
  • Performed cofactor assays to evaluate C4BP functionality.
  • Expressed Ail in E. coli to confirm its role in serum resistance and C4BP binding.
  • Utilized C4BP mutants to identify binding domains.

Main Results:

  • Y. pseudotuberculosis Ail binds C4BP across different serotypes, independent of YadA.
  • Disruption of the ail gene abolished C4BP binding.
  • Bound C4BP was functional, cleaving C4b in the presence of factor I.
  • Ail conferred serum resistance and C4BP binding when expressed in E. coli.
  • Complement control protein domains 6-8 of C4BP are critical for Ail binding.

Conclusions:

  • Y. pseudotuberculosis Ail actively recruits and functionally utilizes C4BP to evade complement-mediated killing.
  • Ail-mediated C4BP recruitment is a significant mechanism for serum resistance in Yersiniae.
  • This interaction highlights a novel immune evasion strategy employed by pathogenic bacteria.

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