The adhesion of mussel foot proteins (Mfps) to a variety of specially engineered mineral and metal oxide surfaces has previously been investigated extensively, but the relevance of these studies to adhesion in biological environments remains unknown. Most solid surfaces exposed to seawater or physiological fluids become fouled by organic conditioning films and biofilms within minutes. Understanding the binding mechanisms of Mfps to organic films with known chemical and physical properties therefore is of considerable theoretical and practical interest. Using self-assembled monolayers (SAMs) on atomically smooth gold substrates and the surface forces apparatus, we explored the force-distance profiles and adhesion energies of three different ...
Mussel (Mytilus californianus) adhesion to marine surfaces involves an intricate and adaptive synerg...
There is currently a need for improved adhesives for medical and marine applications, primarily beca...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...
Translating sticky biological molecules-such as mussel foot proteins (MFPs)-into synthetic, cost-eff...
In aqueous solutions—such as physiological fluids, seawater, or detergent solutions—both adhesion an...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Using a surface forces apparatus and an atomic force microscope, we characterized the adhesive prope...
Robust adhesion to wet, salt-encrusted, corroded and slimy surfaces has been an essential adaptation...
Mussel adhesion to mineral surfaces is widely attributed to 3,4-dihydroxyphenylalanine (Dopa) functi...
Dopa (3,4-dihydroxyphenylalanine) is recognized as a key chemical signature of mussel adhesion and h...
Protective coating of the byssus of mussels (Mytilus sp.) has been suggested as a new paradigm of me...
Mussel adhesion to mineral surfaces is widely attributed to 3,4-dihydroxyphenylalanine (Dopa) functi...
Adhesive proteins from marine mussels have long been studied for their potential biomedical applicat...
Mussels have a remarkable ability to attach their holdfast, or byssus, opportunistically to a variet...
Mussel (Mytilus californianus) adhesion to marine surfaces involves an intricate and adaptive synerg...
There is currently a need for improved adhesives for medical and marine applications, primarily beca...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...
Translating sticky biological molecules-such as mussel foot proteins (MFPs)-into synthetic, cost-eff...
In aqueous solutions—such as physiological fluids, seawater, or detergent solutions—both adhesion an...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Using a surface forces apparatus and an atomic force microscope, we characterized the adhesive prope...
Robust adhesion to wet, salt-encrusted, corroded and slimy surfaces has been an essential adaptation...
Mussel adhesion to mineral surfaces is widely attributed to 3,4-dihydroxyphenylalanine (Dopa) functi...
Dopa (3,4-dihydroxyphenylalanine) is recognized as a key chemical signature of mussel adhesion and h...
Protective coating of the byssus of mussels (Mytilus sp.) has been suggested as a new paradigm of me...
Mussel adhesion to mineral surfaces is widely attributed to 3,4-dihydroxyphenylalanine (Dopa) functi...
Adhesive proteins from marine mussels have long been studied for their potential biomedical applicat...
Mussels have a remarkable ability to attach their holdfast, or byssus, opportunistically to a variet...
Mussel (Mytilus californianus) adhesion to marine surfaces involves an intricate and adaptive synerg...
There is currently a need for improved adhesives for medical and marine applications, primarily beca...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...