Protein cages, such as viruses, are well-defined biological nanostructures which are highly symmetrical and monodisperse. They are found in various shapes and sizes and can encapsulate or template non-native materials. Furthermore, the proteins can be chemically or genetically modified giving them new properties. For these reasons, these protein structures have received increasing attention in the field of polymer–protein hybrid materials over the past years, however, advances are still to be made. This Viewpoint highlights the different ways polymers and protein cages or their subunits have been combined to understand self-assembly and create functional materials
<p> In this thesis it is demonstrated that it is possible to use Protein-based Polymers (PbPs) as sy...
Abstract Like natural viruses, manmade protein cages for drug delivery are to be ideally formed by r...
AbstractWe would like to introduce bionanoparticles with their unique multifunctional and self-assem...
Proteins and protein-based assemblies represent the most structurally and functionally diverse molec...
Polymers and their self-assembled structures constitute an essential part of life: Advances in synth...
We have developed virus-based protein cage functional materials for catalysis and optical coatings. ...
Protein capsids are specialized and versatile natural macromolecules with exceptional properties. Th...
Proteins that self-assemble into polyhedral shell-like structures are useful molecular containers bo...
Protein capsids are specialized and versatile natural macromolecules with exceptional properties. Th...
Protein cages are nanocompartments with a well-defined structure and monodisperse size. They are com...
Protein cages are nanocompartments with a well-defined structure and monodisperse size. They are com...
Protein aggregation and protein self-assembly is an important occurrence in natural systems, and is ...
The combination of addressable synthetic macromolecules with proteins of precise structure and funct...
Protein aggregation and protein self-assembly is an important occurrence in natural systems, and is ...
In this thesis it is demonstrated that it is possible to use Protein-based Polymers (PbPs) as ...
<p> In this thesis it is demonstrated that it is possible to use Protein-based Polymers (PbPs) as sy...
Abstract Like natural viruses, manmade protein cages for drug delivery are to be ideally formed by r...
AbstractWe would like to introduce bionanoparticles with their unique multifunctional and self-assem...
Proteins and protein-based assemblies represent the most structurally and functionally diverse molec...
Polymers and their self-assembled structures constitute an essential part of life: Advances in synth...
We have developed virus-based protein cage functional materials for catalysis and optical coatings. ...
Protein capsids are specialized and versatile natural macromolecules with exceptional properties. Th...
Proteins that self-assemble into polyhedral shell-like structures are useful molecular containers bo...
Protein capsids are specialized and versatile natural macromolecules with exceptional properties. Th...
Protein cages are nanocompartments with a well-defined structure and monodisperse size. They are com...
Protein cages are nanocompartments with a well-defined structure and monodisperse size. They are com...
Protein aggregation and protein self-assembly is an important occurrence in natural systems, and is ...
The combination of addressable synthetic macromolecules with proteins of precise structure and funct...
Protein aggregation and protein self-assembly is an important occurrence in natural systems, and is ...
In this thesis it is demonstrated that it is possible to use Protein-based Polymers (PbPs) as ...
<p> In this thesis it is demonstrated that it is possible to use Protein-based Polymers (PbPs) as sy...
Abstract Like natural viruses, manmade protein cages for drug delivery are to be ideally formed by r...
AbstractWe would like to introduce bionanoparticles with their unique multifunctional and self-assem...