Molecular dynamics simulation of reversibly self-assembling shells in solution using trapezoidal particles
arXiv:1201.2264 · doi:10.1103/PhysRevE.86.051917
Abstract
The self-assembly of polyhedral shells, each constructed from 60 trapezoidal particles, is simulated using molecular dynamics. The spatial organization of the component particles in this shell is similar to the capsomer proteins forming the capsid of a T=1 virus. Growth occurs in the presence of an atomistic solvent and, under suitable conditions, achieves a high yield of complete shells. The simulations provide details of the structure and lifetime of the particle clusters that appear as intermediate states along the growth pathway, and the nature of the transitions between them. In certain respects the growth of size-60 shells from trapezoidal particles resembles the growth of icosahedral shells from triangular particles studied previously, with reversible bonding playing a major role in avoiding incorrect assembly, although the details differ due to particle shape and bond organization. The strong preference for maximal bonding exhibited by the triangular particle clusters is also apparent for trapezoidal particles, but this is now confined to early growth, and is less pronounced as shells approach completion along a variety of pathways.
8 pages, 12 figures (revised shorter version)
References in corpus (9)
- Virus shapes and buckling transitions in spherical shells
- Reversible self-assembly of patchy particles into monodisperse icosahedral clusters
- Role of reversibility in viral capsid growth: A paradigm for self-assembly
- A Precise Packing Sequence for Self-Assembled Convex Structures
- Understanding the Concentration Dependence of Viral Capsid Assembly Kinetics - the Origin of the Lag Time and Identifying the Critical Nucleus Size
- Modelling the Self-Assembly of Virus Capsids
- Stochastic kinetics of viral capsid assembly based on detailed protein structures
- Modeling capsid self-assembly: Design and analysis
- Studies of reversible capsid shell growth
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- Mechanisms of virus assembly
- The Statistical Mechanics of Dynamic Pathways to Self-assembly
- Recent advances in coarse-grained modeling of virus assembly
- Using Markov State Models to Study Self-Assembly
- Why enveloped viruses need cores -- the contribution of a nucleocapsid core to viral budding
- Studying protein assembly with reversible Brownian dynamics of patchy particles
- Role of dynamic capsomere supply for viral capsid self-assembly
- Molecular dynamics simulation: a tool for exploration and discovery using simple models
- Molecular dynamics study of T=3 capsid assembly