A reaction landscape identifies the intermediates critical for self‐assembly of virus capsids and other polyhedral structures
- 1 June 2005
- journal article
- Published by Wiley in Protein Science
- Vol. 14 (6) , 1518-1525
- https://doi.org/10.1110/ps.041314405
Abstract
The capsids of spherical viruses may contain from tens to hundreds of copies of the capsid protein(s). Despite their complexity, these particles assemble rapidly and with high fidelity. Subunit and capsid represent unique end states. However, the number of intermediate states in these reactions can be enormous-a situation analogous to the protein folding problem. Approaches to accurately model capsid assembly are still in their infancy. In this paper, we describe a sail-shaped reaction landscape, defined by the number of subunits in each species, the predicted prevalence of each species, and species stability. Prevalence can be calculated from the probability of synthesis of a given intermediate and correlates well with the appearance of intermediates in kinetics simulations. In these landscapes, we find that only those intermediates along the leading edge make a significant contribution to assembly. Although the total number of intermediates grows exponentially with capsid size, the number of leading-edge intermediates grows at a much slower rate. This result suggests that only a minute fraction of intermediates needs to be considered when describing capsid assembly.Keywords
This publication has 42 references indexed in Scilit:
- Self-assembly of polyhedral shells: A molecular dynamics studyPhysical Review E, 2004
- A tiling approach to virus capsid assembly explaining a structural puzzle in virologyJournal of Theoretical Biology, 2003
- Folding and binding cascades: Dynamic landscapes and population shiftsProtein Science, 2000
- Supramolecular self-assembly: molecular dynamics modeling of polyhedral shell formationComputer Physics Communications, 1999
- Local Rules Simulation of the Kinetics of Virus Capsid Self-AssemblyBiophysical Journal, 1998
- To Build a Virus CapsidJournal of Molecular Biology, 1994
- Calculation of the free energy of association for protein complexesProtein Science, 1992
- Pressure-induced dissociation of brome mosaic virusJournal of Molecular Biology, 1988
- Self-assembly of brome mosaic virus capsidsJournal of Molecular Biology, 1983
- Physical Principles in the Construction of Regular VirusesCold Spring Harbor Symposia on Quantitative Biology, 1962