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Mussel adhesion – essential footwork

Journal of Experimental Biology · 2017 · Vol. 220(4) · pp. 517–530
J. Herbert Waite

Abstract

Robust adhesion to wet, salt-encrusted, corroded and slimy surfaces has been an essential adaptation in the life histories of sessile marine organisms for hundreds of millions of years, but it remains a major impasse for technology. Mussel adhesion has served as one of many model systems providing a fundamental understanding of what is required for attachment to wet surfaces. Most polymer engineers have focused on the use of 3,4-dihydroxyphenyl-l-alanine (Dopa), a peculiar but abundant catecholic amino acid in mussel adhesive proteins. The premise of this Review is that although Dopa does have the potential for diverse cohesive and adhesive interactions, these will be difficult to achieve in synthetic homologs without a deeper knowledge of mussel biology; that is, how, at different length and time scales, mussels regulate the reactivity of their adhesive proteins. To deposit adhesive proteins onto target surfaces, the mussel foot creates an insulated reaction chamber with extreme reaction conditions such as low pH, low ionic strength and high reducing poise. These conditions enable adhesive proteins to undergo controlled fluid-fluid phase separation, surface adsorption and spreading, microstructure formation and, finally, solidification.

Polymer Surface Interaction StudiesMarine Biology and Environmental ChemistryAdhesion, Friction, and Surface InteractionsMusselAdhesiveAdhesionByssusSalt (chemistry)NanotechnologyMaterials scienceChemistryChemical engineeringEcology

MeSH terms

AdhesivenessAdhesivesAmino Acid SequenceAnimalsDihydroxyphenylalanineHydrogen-Ion ConcentrationOsmolar ConcentrationProteinsTensile StrengthWettabilityBivalvia

Funding

  • National Science Foundation
  • National Institutes of Health
Citations
640
FWCI
24.59
field-weighted impact
References
120
Percentile
100%
vs. same field & year
Citations per year
Cited by
Hydrogel Adhesion: A Supramolecular Synergy of Chemistry, Topology, and Mechanics
Advanced Functional Materials · 2019 · 963 citations
References
The formation mechanism of phase inversion membranes
Desalination · 1977 · 631 citations
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