Viral genome structures are optimal for capsid assembly
arXiv:1305.3556 · doi:10.7554/eLife.00632
Abstract
Understanding how virus capsids assemble around their nucleic acid (NA) genomes could promote efforts to block viral propagation or to reengineer capsids for gene therapy applications. We develop a coarse-grained model of capsid proteins and NAs with which we investigate assembly dynamics and thermodynamics. In contrast to recent theoretical models, we find that capsids spontaneously `overcharge'; i.e., the negative charge of the NA exceeds the positive charge on capsid. When applied to specific viruses, the optimal NA lengths closely correspond to the natural genome lengths. Calculations based on linear polyelectrolytes rather than base-paired NAs underpredict the optimal length, demonstrating the importance of NA structure to capsid assembly. These results suggest that electrostatics, excluded volume, and NA tertiary structure are sufficient to predict assembly thermodynamics and that the ability of viruses to selectively encapsidate their genomic NAs can be explained, at least in part, on a thermodynamic basis.
25 pages, 14 figures. Accepted for publication in eLife
References in corpus (4)
Cited by in corpus (26)
- Strong scaling of general-purpose molecular dynamics simulations on GPUs
- Mechanisms of virus assembly
- Recent advances in coarse-grained modeling of virus assembly
- Electrostatic Correlations and the Polyelectrolyte Self Energy
- Limiting the valence: advancements and new perspectives on patchy colloids, soft functionalized nanoparticles and biomolecules
- Minimal coarse-grained models for molecular self-organisation in biology
- RNA topology remolds electrostatic stabilization of viruses
- Using Markov State Models to Study Self-Assembly
- Critical adsorption of polyelectrolytes onto charged Janus nanospheres
- Synonymous mutations reduce genome compactness in icosahedral ssRNA viruses
- The role of the encapsulated cargo in microcompartment assembly
- Effects of RNA branching on the electrostatic stabilization of viruses
- Biophysical Modeling of SARS-CoV-2 Assembly: Genome Condensation and Budding
- Impact of a non-uniform charge distribution on virus assembly
- The effect of RNA stiffness on the self-assembly of virus particles
- Functional analysis of the N-terminal basic motif of a eukaryotic satellite RNA virus capsid protein in replication and packaging
- RNA Base Pairing Determines the Conformations of RNA Inside Spherical Viruses
- Hierarchical assembly is more robust than egalitarian assembly in synthetic capsids
- Adsorption of annealed branched polymers on curved surfaces
- Effect of the charge distribution of virus coat proteins on the length of packaged RNAs
- Varieties of charge distributions in coat proteins of ssRNA+ viruses
- Self Consistent Field Theory of Virus Assembly
- Molecular dynamics characterization of the free and encapsidated RNA2 of CCMV with the oxRNA model
- Viral RNA as a branched polymer
- Pathways for virus assembly around nucleic acids
- The role of packaging sites in efficient and specific virus assembly