Nature has evolved several molecular strategies to ensure adhesion in aqueous environments, where artificial adhesives typically fail. One recently-unveiled molecular design for wet-resistant adhesion is the cohesive cross-beta structure characteristic of amyloids, complementing the well-established surface-binding strategy of mussel adhesive proteins based on 3,4-l-dihydroxyphenylalanine (Dopa). Structural proteins that self-assemble into cross beta-sheet networks are the suckerins discovered in the sucker ring teeth of squids. Here, light is shed on the wet adhesion of cross-beta motifs by producing recombinant suckerin-12, naturally lacking Dopa, and investigating its wet adhesion properties. Surprisingly, the adhesion forces measured on...
When it comes to underwater adhesion, shellfish are the true experts. Mussels, barnacles, and oyster...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...
Nature has evolved several molecular strategies to ensure adhesion in aqueous environments, where ar...
Using a surface forces apparatus and an atomic force microscope, we characterized the adhesive prope...
Underwater adhesion is a challenging task for most synthetic adhesives. Efforts to overcome this cha...
Interfacial water constitutes a formidable barrier to strong surface bonding, hampering the developm...
Bio-adhesives play a pivotal role in a wide range of medical applications. However, there are some p...
Marine biology is continually producing materials with properties unmatched by human technology. The...
Intensive studies have found that 3,4-dihydroxyphenylalanine (Dopa) is one of the key molecules for ...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Nature has developed protein‐based adhesives whose underwater performance has attracted much researc...
Mussels strongly adhere to a variety of surfaces by secreting byssal threads that contain mussel foo...
Production of novel protein-based materials has become a widespread and valuable field of research w...
Mussel underwater adhesion is a model phenomenon important for the understanding of broader biologic...
When it comes to underwater adhesion, shellfish are the true experts. Mussels, barnacles, and oyster...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...
Nature has evolved several molecular strategies to ensure adhesion in aqueous environments, where ar...
Using a surface forces apparatus and an atomic force microscope, we characterized the adhesive prope...
Underwater adhesion is a challenging task for most synthetic adhesives. Efforts to overcome this cha...
Interfacial water constitutes a formidable barrier to strong surface bonding, hampering the developm...
Bio-adhesives play a pivotal role in a wide range of medical applications. However, there are some p...
Marine biology is continually producing materials with properties unmatched by human technology. The...
Intensive studies have found that 3,4-dihydroxyphenylalanine (Dopa) is one of the key molecules for ...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
Nature has developed protein‐based adhesives whose underwater performance has attracted much researc...
Mussels strongly adhere to a variety of surfaces by secreting byssal threads that contain mussel foo...
Production of novel protein-based materials has become a widespread and valuable field of research w...
Mussel underwater adhesion is a model phenomenon important for the understanding of broader biologic...
When it comes to underwater adhesion, shellfish are the true experts. Mussels, barnacles, and oyster...
Sessile marine mussels must "dry" underwater surfaces before adhering to them. Synthetic adhesives h...
The 3,4-dihydroxyphenylalanine (Dopa)-containing proteins of marine mussels provide attractive desig...