Single-molecule mechanics of mussel adhesion
Top Cited Papers
- 29 August 2006
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (35), 12999-13003
- https://doi.org/10.1073/pnas.0605552103
Abstract
The glue proteins secreted by marine mussels bind strongly to virtually all inorganic and organic surfaces in aqueous environments in which most adhesives function poorly. Studies of these functionally unique proteins have revealed the presence of the unusual amino acid 3,4-dihydroxy-l-phenylalanine (dopa), which is formed by posttranslational modification of tyrosine. However, the detailed binding mechanisms of dopa remain unknown, and the chemical basis for mussels’ ability to adhere to both inorganic and organic surfaces has never been fully explained. Herein, we report a single-molecule study of the substrate and oxidation-dependent adhesive properties of dopa. Atomic force microscopy (AFM) measurements of a single dopa residue contacting a wet metal oxide surface reveal a surprisingly high strength yet fully reversible, noncovalent interaction. The magnitude of the bond dissociation energy as well as the inability to observe this interaction with tyrosine suggests that dopa is critical to adhesion and that the binding mechanism is not hydrogen bond formation. Oxidation of dopa, as occurs during curing of the secreted mussel glue, dramatically reduces the strength of the interaction to metal oxide but results in high strength irreversible covalent bond formation to an organic surface. A new picture of the interfacial adhesive role of dopa emerges from these studies, in which dopa exploits a remarkable combination of high strength and chemical multifunctionality to accomplish adhesion to substrates of widely varying composition from organic to metallic.Keywords
This publication has 31 references indexed in Scilit:
- New Peptidomimetic Polymers for Antifouling SurfacesJournal of the American Chemical Society, 2005
- Biology of TiO2–oligonucleotide nanocompositesNature Materials, 2003
- Adhesion of Mytilus edulis Foot Protein 1 on Silica: Ionic Effects on BiofoulingBiotechnology Progress, 2002
- Reversible Unfolding of Single RNA Molecules by Mechanical ForceScience, 2001
- Self-Assembly Is Not the Only Reaction Possible between Alkyltrichlorosilanes and Surfaces: Monomolecular and Oligomeric Covalently Attached Layers of Dichloro- and Trichloroalkylsilanes on SiliconLangmuir, 2000
- Reverse Engineering of Bioadhesion in Marine MusselsAnnals of the New York Academy of Sciences, 1999
- How Strong Is a Covalent Bond?Science, 1999
- Single molecule force spectroscopy by AFM indicates helical structure of poly(ethylene-glycol) in waterNew Journal of Physics, 1999
- Surface Complexation at the TiO2(anatase)/Aqueous Solution Interface: Chemisorption of CatecholJournal of Colloid and Interface Science, 1996
- Polyphenolic Substance of Mytilus edulis : Novel Adhesive Containing L-Dopa and HydroxyprolineScience, 1981