Self-assembling protein nanocontainers are promising candidates for an increasingly wide scope of purposes. Their applications range from drug delivery vehicles and imaging agents to nanocompartments for controlled enzymatic activity. In order to exploit their full potential in these different fields, characterization of their properties is vital. For example, their mechanical properties give insight into the stability of a particle as a function of their internal content. The mechanics can be probed by atomic force microscopy nanoindentation, and while this single particle method is increasingly used to probe material properties of viral nanocages, it has hardly been used to characterize nonviral nanocages. Here we report nanoindentation s...
Single-particle nanoindentation by atomic force microscopy (AFM) is an emergent technique to charact...
Understanding how highly symmetric, robust, monodisperse protein nano-cages self-assemblecan have ma...
Tesis doctoral inédita leída en la Universidad Autónoma de Madrid, Facultad de Ciencias, Departament...
Self-assembling protein nanocontainers are promising candidates for an increasingly wide scope of pu...
Self-assembling protein nanocontainers are promising candidates for an increasingly wide scope of pu...
The archetypical protein nanoshell is the capsid that surrounds viral genomes. These capsids protect...
Self-assembling, protein-based bidimensional lattices are being developed as functionalizable, highl...
Artificial protein cages have great potential in a number of areas including cargo capture and deliv...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Single-particle nanoindentation by atomic force microscopy (AFM) is an emergent technique to charact...
Understanding how highly symmetric, robust, monodisperse protein nano-cages self-assemblecan have ma...
Tesis doctoral inédita leída en la Universidad Autónoma de Madrid, Facultad de Ciencias, Departament...
Self-assembling protein nanocontainers are promising candidates for an increasingly wide scope of pu...
Self-assembling protein nanocontainers are promising candidates for an increasingly wide scope of pu...
The archetypical protein nanoshell is the capsid that surrounds viral genomes. These capsids protect...
Self-assembling, protein-based bidimensional lattices are being developed as functionalizable, highl...
Artificial protein cages have great potential in a number of areas including cargo capture and deliv...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, t...
Single-particle nanoindentation by atomic force microscopy (AFM) is an emergent technique to charact...
Understanding how highly symmetric, robust, monodisperse protein nano-cages self-assemblecan have ma...
Tesis doctoral inédita leída en la Universidad Autónoma de Madrid, Facultad de Ciencias, Departament...