Virus-like particles (VLPs), i.e. molecular assemblies that resemble the geometry and organization of viruses, are promising platforms for therapeutics and imaging. Understanding the assembly and cellular uptake pathways of VLPs can contribute to the development of new antiviral drugs and new virus-based materials for the delivery of drugs or nucleic acid-based therapies. Here we report the assembly of capsid proteins of the cowpea chlorotic mottle virus (CCMV) around DNA into defined structures at neutral pH. Depending on the type of DNA used, we are able to create spherical structures of various diameters and rods of various lengths. In order to determine the shape dependency, the cellular uptake routes and intracellular positioning of th...
The design and engineering of biological building blocks that self-assemble into highly ordered, wel...
A study of the in vitro nanoparticle-templated assembly of a mutant of cowpea chlorotic mottle virus...
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency...
Virus-like particles (VLPs), i.e. molecular assemblies that resemble the geometry and organization o...
Various protein-based organelles exist in nature that are involved in a wide variety of different me...
Viruses provide a whole new set of building blocks for the development of new materials and as such ...
The first half of this dissertation (Chapters 1-3) deals with the in vitro self-assembly of Cowpea C...
The purpose of this review is to highlight recent scientific developments and provide an overview of...
The small spherical plant virus, cowpea chlorotic mottle virus (CCMV), provides an ideal system to e...
The inside surfaces of the protein shells of many viruses are positively charged, thereby enhancing ...
Understanding the assembly pathway of viruses can contribute to creating monodisperse virus-based ma...
The virus-like particle (VLP) of the Cowpea Chlorotic Mottle Virus (CCMV) has often been used to enc...
The virus-like particle (VLP) of the Cowpea Chlorotic Mottle Virus (CCMV) has often been used to enc...
The DNA origami technique is a widely used method to create customized, complex, spatially well-defi...
BackgroundRNA-protein interactions stabilize many viruses and also the nucleoprotein cores of envelo...
The design and engineering of biological building blocks that self-assemble into highly ordered, wel...
A study of the in vitro nanoparticle-templated assembly of a mutant of cowpea chlorotic mottle virus...
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency...
Virus-like particles (VLPs), i.e. molecular assemblies that resemble the geometry and organization o...
Various protein-based organelles exist in nature that are involved in a wide variety of different me...
Viruses provide a whole new set of building blocks for the development of new materials and as such ...
The first half of this dissertation (Chapters 1-3) deals with the in vitro self-assembly of Cowpea C...
The purpose of this review is to highlight recent scientific developments and provide an overview of...
The small spherical plant virus, cowpea chlorotic mottle virus (CCMV), provides an ideal system to e...
The inside surfaces of the protein shells of many viruses are positively charged, thereby enhancing ...
Understanding the assembly pathway of viruses can contribute to creating monodisperse virus-based ma...
The virus-like particle (VLP) of the Cowpea Chlorotic Mottle Virus (CCMV) has often been used to enc...
The virus-like particle (VLP) of the Cowpea Chlorotic Mottle Virus (CCMV) has often been used to enc...
The DNA origami technique is a widely used method to create customized, complex, spatially well-defi...
BackgroundRNA-protein interactions stabilize many viruses and also the nucleoprotein cores of envelo...
The design and engineering of biological building blocks that self-assemble into highly ordered, wel...
A study of the in vitro nanoparticle-templated assembly of a mutant of cowpea chlorotic mottle virus...
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency...