Re-evaluation of a bacterial antifreeze protein as an adhesin with ice-binding activity

Shuaiqi Guo1, Christopher P Garnham, John C Whitney

  • 1Protein Function Discovery Group and the Department of Biomedical and Molecular Sciences, Queen's University, Kingston, Ontario, Canada.

Plos One
|November 13, 2012
PubMed

Insights

Antifreeze proteins (AFPs) in Marinomonas primoryensis have a new role: a large adhesin helps bacteria bind to ice for nutrient seeking. This expands the known functions of AFPs beyond freeze avoidance and tolerance.

Area of Science:

  • Microbiology
  • Biochemistry
  • Structural Biology

Background:

  • Antifreeze proteins (AFPs) are known for freeze avoidance and tolerance.
  • Marinomonas primoryensis is an Antarctic Gram-negative bacterium.
  • A large adhesin, MpAFP, was previously identified in M. primoryensis.

Purpose of the Study:

  • To investigate the structure and function of the large adhesin (MpAFP) from M. primoryensis.
  • To determine the role of specific regions within MpAFP, particularly Region II (RII) and Region IV (RIV).
  • To explore a potential novel function of AFPs in bacterial behavior.

Main Methods:

  • Purification of MpAFP using ice adsorption and gel electrophoresis.
  • Analysis of protein structure and homology using the Protein Homology/analogY Recognition Engine (Phyre2) server.
  • Estimation of repeat numbers in RII using pulsed-field gel electrophoresis.
  • Immunodetection to visualize protein distribution on the cell surface.

Main Results:

  • MpAFP is a 1.5-MDa adhesin with distinct regions, requiring Ca(2+) for folding.
  • Antifreeze activity is localized to RIV, a Ca(2+)-bound beta-helix with RTX-like repeats.
  • RII comprises ~90% of MpAFP mass, with ~120 tandem 104-residue repeats adopting an immunoglobulin beta-sandwich fold.
  • Both RII and RIV are distributed on the bacterial cell surface.
  • RII repeats are homologous to secreted adhesion proteins, and RTX-like repeats in RV may act as a type I secretion signal.

Conclusions:

  • MpAFP possesses a novel antifreeze protein-like domain within a larger adhesin structure.
  • This adhesin facilitates transient binding of bacteria to ice, suggesting an envirotactic role.
  • This finding expands the known functions of AFPs to include ice-binding for nutrient and oxygen seeking, in addition to freeze avoidance and tolerance.

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