Invited review: Breaking barriers--attack on innate immune defences by omptin surface proteases of enterobacterial

Johanna Haiko1, Marjo Suomalainen, Teija Ojala

  • 1General Microbiology, Faculty of Biosciences, University of Helsinki, Helsinki, Finland.

Innate Immunity
|March 26, 2009
PubMed

Insights

Omptin proteases, bacterial surface proteins, have conserved structures but diverse functions. Their specific roles in pathogenesis, like immune evasion and colonization, are linked to host adaptation and outer membrane interactions.

Area of Science:

  • Microbiology
  • Biochemistry
  • Pathogenesis

Background:

  • Omptins are Gram-negative bacterial transmembrane aspartic proteases.
  • They share a conserved beta-barrel fold but exhibit varied biological functions.
  • Key omptins include OmpT (Escherichia coli), PgtE (Salmonella enterica), and Pla (Yersinia pestis).

Purpose of the Study:

  • To explore the functional differences and substrate specificities of omptins.
  • To understand how omptins contribute to bacterial pathogenesis and host adaptation.
  • To investigate the structural basis for substrate specificity and the role of lipopolysaccharide.

Main Methods:

  • Comparative analysis of omptin sequences and functions.
  • Examination of omptin interactions with host immune systems (plasminogen, complement, coagulation).
  • Investigation of omptin activity in relation to bacterial outer membrane components like lipopolysaccharide.

Main Results:

  • Omptins exhibit distinct substrate specificities and expression controls, correlating with host-specific pathogenesis.
  • Pla and PgtE actively target innate immunity, enhancing bacterial spread and multiplication.
  • OmpT functions as a housekeeping protease but also degrades antimicrobial peptides, aiding E. coli colonization.

Conclusions:

  • Omptin functional diversity reflects adaptation to host lifestyles.
  • Minor sequence variations near the catalytic cleft dictate substrate specificity.
  • Omptin activity is dependent on lipopolysaccharide association, highlighting coordinated surface proteolysis.

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