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Determining the Ice-binding Planes of Antifreeze Proteins by Fluorescence-based Ice Plane Affinity
Published on: January 15, 2014
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.
Abstract:
A novel role for antifreeze proteins (AFPs) may reside in an exceptionally large 1.5-MDa adhesin isolated from an Antarctic Gram-negative bacterium, Marinomonas primoryensis. MpAFP was purified from bacterial lysates by ice adsorption and gel electrophoresis. We have previously reported that two highly repetitive sequences, region II (RII) and region IV (RIV), divide MpAFP into five distinct regions, all of which require mM Ca(2+) levels for correct folding. Also, the antifreeze activity is confined to the 322-residue RIV, which forms a Ca(2+)-bound beta-helix containing thirteen Repeats-In-Toxin (RTX)-like repeats. RII accounts for approximately 90% of the mass of MpAFP and is made up of ∼120 tandem 104-residue repeats. Because these repeats are identical in DNA sequence, their number was estimated here by pulsed-field gel electrophoresis. Structural homology analysis by the Protein Homology/analogY Recognition Engine (Phyre2) server indicates that the 104-residue RII repeat adopts an immunoglobulin beta-sandwich fold that is typical of many secreted adhesion proteins. Additional RTX-like repeats in RV may serve as a non-cleavable signal sequence for the type I secretion pathway. Immunodetection shows both repeated regions are uniformly distributed over the cell surface. We suggest that the development of an AFP-like domain within this adhesin attached to the bacterial outer surface serves to transiently bind the host bacteria to ice. This association would keep the bacteria within the upper reaches of the water column where oxygen and nutrients are potentially more abundant. This novel envirotactic role would give AFPs a third function, after freeze avoidance and freeze tolerance: that of transiently binding an organism to ice.
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.

