Mechanical properties of viruses.
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Summary
This chapter describes what is known on the mechanical properties of virus particles, their structural determinants, and possible biological implications, of which several examples are provided.
- Type
- review
- Published
- 2013-01-01
- Cited by
- 26
- References
- 71
- OpenAlex
- https://openalex.org/W19822677
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:570156
Keywords
Virology, Biology
References
- Buckling of actin-coated membranes under application of a local force.
- Microrheology of human lung epithelial cells measured by atomic force microscopy.
- Virus particle dynamics.
- Emerging topics in physical virology
- Fatigue of structures and materials
- The push–pull mechanism of bacteriophage Ø29 DNA injection
- Structure-derived insights into virus assembly.
- A stiffness switch in human immunodeficiency virus.
- Mechanical deformation of spherical viruses with icosahedral symmetry.
- Geometry of phage head construction.
- Observed Hysteresis of Virus Capsid Disassembly Is Implicit in Kinetic Models of Assembly*
- DNA-mediated anisotropic mechanical reinforcement of a virus
- Bending and puncturing the influenza lipid envelope.
- Discrete fracture patterns of virus shells reveal mechanical building blocks
- Mechanical elasticity as a physical signature of conformational dynamics in a virus particle
- Manipulation of individual viruses: friction and mechanical properties.
- Bacteriophage capsids: tough nanoshells with complex elastic properties.
- Monitoring dynamics of human adenovirus disassembly induced by mechanical fatigue
- Mechanical properties of murine leukemia virus particles: effect of maturation.
- The Influenza Virus Mechanical Properties Are Dominated By Its Lipid Envelope
Cited by
- Nanoindentation of Isometric Viruses on Deterministically Corrugated Substrates.
- Assembly, Engineering and Applications of Virus-Based Protein Nanoparticles.
- Amino Acid Side Chains Buried along Intersubunit Interfaces in a Viral Capsid Preserve Low Mechanical Stiffness Associated with Virus Infectivity.
- Kinetics of Surface-Driven Self-Assembly and Fatigue-Induced Disassembly of a Virus-Based Nanocoating.
- Structural basis for biologically relevant mechanical stiffening of a virus capsid by cavity-creating or spacefilling mutations
- Mechanical stiffening of human rhinovirus by cavity-filling antiviral drugs.
- The RNA-Binding Protein of a Double-Stranded RNA Virus Acts like a Scaffold Protein
- Effect of dsDNA on the Assembly Pathway and Mechanical Strength of SV40 VP1 Virus-like Particles.
- Intermittency of Deformation and the Elastic Limit of an Icosahedral Virus under Compression.
- On virus growth and form
- Mechanical Characterization of Liposomes and Extracellular Vesicles, a Protocol
- C22 podovirus infectivity is associated with intermediate stiffness
- Physics of viral dynamics
- Mechanistic Studies and Formulation Mitigations of Adeno-Associated Virus Capsid Rupture during Freezing and Thawing: Mechanisms of Freeze/Thaw Induced AAV Rupture.
- On the Potential for Viruses as Nano Microwave Transmitters
- Thermoresponsive C22 phage stiffness modulates the phage infectivity
- Physical virology: how physics is enabling a better understanding of recent viral invaders
- Physical Virology in Spain
- Elasticity, an often-overseen parameter in the development of nanoscale drug delivery systems
- Insights on the Mechanical Properties of SARS-CoV-2 Particles and the Effects of the Photosensitizer Hypericin
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