The effects of changes in the loading rate during the forced dissociation of single bonds have been studied for a wide variety of interactions. Less is known on the loading rate dependent behaviour of more complex systems that consist of multiple bonds. Here we focus on viral nanoparticles, in particular the protein shell (capsid) that protects the viral genome. As model systems we use the well-studied capsids of the plant virus Cowpea Chlorotic Mottle Virus (CCMV) and of the bacteriophages φ29 and HK97. By applying an atomic force microscopy (AFM) nanoindentation approach we study the loading rate dependency of their mechanical properties. Our AFM results show very diverse behaviour for the different systems. In particular, we find that no...
AbstractThe mechanical properties of viral shells are crucial for viral assembly and infection. To s...
The mechanical properties of virus capsids correlate with local conformational dynamics in the capsi...
Virus capsids are protein shells that protect the virus genome, and determination of their mechanica...
Viruses are nanoscale infectious agents constructed of a proteinaceous capsid that protects the pack...
A coarse-grained model is used to study the mechanical response of 35 virus capsids of symmetries T ...
AbstractA series of recent nanoindentation experiments on the protein shells (capsids) of viruses ha...
Viruses are nanosized, genome-filled protein containers with remarkable thermodynamic and mechanical...
Viruses are increasingly being studied from the perspective of fundamental physics at the nanoscale ...
Self-assembling, protein-based bidimensional lattices are being developed as functionalizable, highl...
The elastic properties of capsids of the cowpea chlorotic mottle virus have been examined at pH 4.8 ...
Atomic force microscopy has recently provided highly precise measurements of mechanical properties o...
The archetypical protein nanoshell is the capsid that surrounds viral genomes. These capsids protect...
AbstractAtomic force microscopy has recently provided highly precise measurements of mechanical prop...
The current rapid growth in the use of nanosized particles is fueled in part by our increased unders...
Single-particle nanoindentation by atomic force microscopy (AFM) is an emergent technique to charact...
AbstractThe mechanical properties of viral shells are crucial for viral assembly and infection. To s...
The mechanical properties of virus capsids correlate with local conformational dynamics in the capsi...
Virus capsids are protein shells that protect the virus genome, and determination of their mechanica...
Viruses are nanoscale infectious agents constructed of a proteinaceous capsid that protects the pack...
A coarse-grained model is used to study the mechanical response of 35 virus capsids of symmetries T ...
AbstractA series of recent nanoindentation experiments on the protein shells (capsids) of viruses ha...
Viruses are nanosized, genome-filled protein containers with remarkable thermodynamic and mechanical...
Viruses are increasingly being studied from the perspective of fundamental physics at the nanoscale ...
Self-assembling, protein-based bidimensional lattices are being developed as functionalizable, highl...
The elastic properties of capsids of the cowpea chlorotic mottle virus have been examined at pH 4.8 ...
Atomic force microscopy has recently provided highly precise measurements of mechanical properties o...
The archetypical protein nanoshell is the capsid that surrounds viral genomes. These capsids protect...
AbstractAtomic force microscopy has recently provided highly precise measurements of mechanical prop...
The current rapid growth in the use of nanosized particles is fueled in part by our increased unders...
Single-particle nanoindentation by atomic force microscopy (AFM) is an emergent technique to charact...
AbstractThe mechanical properties of viral shells are crucial for viral assembly and infection. To s...
The mechanical properties of virus capsids correlate with local conformational dynamics in the capsi...
Virus capsids are protein shells that protect the virus genome, and determination of their mechanica...