Protein- and metal-dependent interactions of a prominent protein in mussel adhesive plaques
Dong Soo Hwang1, Hongbo Zeng, Admir Masic
1Materials Research Laboratory, University of California, Santa Barbara, California 93106, USA.
Abstract:
The adhesive plaques of Mytilus byssus are investigated increasingly to determine the molecular requirements for wet adhesion. Mfp-2 is the most abundant protein in the plaques, but little is known about its function. Analysis of Mfp-2 films using the surface forces apparatus detected no interaction between films or between a film and bare mica; however, addition of Ca(2+) and Fe(3+) induced significant reversible bridging (work of adhesion W(ad) approximately 0.3 mJ/m(2) to 2.2 mJ/m(2)) between two films at 0.35 m salinity. The strongest observed Fe(3+)-mediated bridging approaches the adhesion of oriented avidin-biotin complexes. Raman microscopy of plaque sections supports the co-localization of Mfp-2 and iron, which interact by forming bis- or tris-DOPA-iron complexes. Mfp-2 adhered strongly to Mfp-5, a DOPA-rich interfacial adhesive protein, but not to another interfacial protein, Mfp-3, which may in fact displace Mfp-2 from mica. In the presence of metal ions or Mfp-5, Mfp-2 adhesion was fully reversible. These results suggest that plaque cohesiveness depends on Mfp-2 complexation of metal ions, particularly Fe(3+) and also by Mfp-2 interaction with Mfp-5 at the plaque-substratum interface.
Insights
Mussel adhesive protein Mfp-2
Area of Science:
- Biomaterials science
- Marine biology
- Protein chemistry
Background:
- Mussel byssus adhesive plaques are crucial for wet adhesion.
- Mussel foot protein-2 (Mfp-2) is abundant but its function is unclear.
Purpose of the Study:
- Investigate the functional role of Mfp-2 in mussel adhesion.
- Determine the molecular interactions governing Mfp-2's adhesive properties.
Main Methods:
- Surface forces apparatus (SFA) to measure adhesion forces between Mfp-2 films.
- Raman microscopy to analyze protein-mineral interactions.
- Investigated the effect of metal ions (Ca2+, Fe3+) and other mussel foot proteins (Mfp-5, Mfp-3).
Main Results:
- Mfp-2 films showed no self-adhesion or adhesion to mica alone.
- Ca2+ and Fe3+ induced significant, reversible bridging between Mfp-2 films.
- Fe3+-mediated adhesion approached the strength of avidin-biotin interactions.
- Mfp-2 co-localized with iron and formed DOPA-iron complexes.
- Mfp-2 strongly adhered to Mfp-5 but not Mfp-3.
Conclusions:
- Mussel plaque cohesiveness relies on Mfp-2 complexing metal ions, especially Fe3+.
- Mfp-2 interaction with Mfp-5 is critical at the plaque-substrate interface.
- Adhesion mediated by Mfp-2 is reversible in the presence of metal ions or Mfp-5.
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