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PMID: 22589708 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Virus capsid dissolution studied by microsecond molecular dynamics simulations.

PLoS computational biology ·Vol. 8 ·No. 5 ·2012-00-00 ·Pages e1002502

Larsson DS, Liljas L, van der Spoel D

Abstract

Dissolution of many plant viruses is thought to start with swelling of the capsid caused by calcium removal following infection, but no high-resolution structures of swollen capsids exist. Here we have used microsecond all-atom molecular simulations to describe the dynamics of the capsid of satellite tobacco necrosis virus with and without the 92 structural calcium ions. The capsid expanded 2.5% upon removal of the calcium, in good agreement with experimental estimates. The water permeability of the native capsid was similar to that of a phospholipid membrane, but the permeability increased 10-fold after removing the calcium, predominantly between the 2-fold and 3-fold related subunits. The two calcium binding sites close to the icosahedral 3-fold symmetry axis were pivotal in the expansion and capsid-opening process, while the binding site on the 5-fold axis changed little structurally. These findings suggest that the dissociation of the capsid is initiated at the 3-fold axis.

MeSH Terms
Binding Sites Calcium/chemistry Capsid/chemistry,ultrastructure Computer Simulation Models, Biological Models, Chemical Models, Molecular Molecular Conformation Tobacco necrosis satellite virus/chemistry,ultrastructure
Chemicals
Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Larsson Daniel S D
Department of Cell and Molecular Biology, Uppsala University, Uppsala, Sweden.
Liljas Lars
van der Spoel David
References (33)
33 references, click to expand
  1. Electrostatic properties of cowpea chlorotic mottle virus and cucumber mosaic virus capsids.
    Biopolymers. 2006 Jun 5;82(2):106-20 PMID: 16278831
  2. Crystal structure of an empty capsid of turnip yellow mosaic virus.
    J Mol Biol. 2004 Aug 27;341(5):1205-14 PMID: 15321716
  3. Characterization of the five-fold Ca2+ binding site of satellite tobacco necrosis virus using Eu3+ luminescence spectroscopy: a marked size-selectivity among rare earth ions.
    Biophys Chem. 1992 Apr;42(3):249-56 PMID: 1581521
  4. Molecular dynamics simulations of the complete satellite tobacco mosaic virus.
    Structure. 2006 Mar;14(3):437-49 PMID: 16531228
  5. Coherent diffraction of a single virus particle: the impact of a water layer on the available orientational information.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Mar;83(3 Pt 1):031907 PMID: 21517525
  6. Sequential removal of Ca2+ from satellite tobacco necrosis virus. Crystal structure of two EDTA-treated forms.
    J Mol Biol. 1990 Mar 20;212(2):331-43 PMID: 2108252
  7. Structure of RNA in satellite tobacco necrosis virus. A low resolution neutron diffraction study using 1H2O/2H2O solvent contrast variation.
    J Mol Biol. 1987 Mar 5;194(1):129-41 PMID: 3612799
  8. The use of molecular-replacement phases for the refinement of the human rhinovirus 14 structure.
    Acta Crystallogr A. 1988 May 1;44 ( Pt 3):270-82 PMID: 2856083
  9. Structure of satellite tobacco necrosis virus after crystallographic refinement at 2.5 A resolution.
    J Mol Biol. 1984 Aug 25;177(4):735-67 PMID: 6481804
  10. Conformation of a pentacosapeptide representing the RNA-binding N-terminus of cowpea chlorotic mottle virus coat protein in the presence of oligophosphates: a two-dimensional proton nuclear magnetic resonance and distance geometry study.
    Biochemistry. 1992 Sep 29;31(38):9177-82 PMID: 1390704
  11. Structural studies on the empty capsids of Physalis mottle virus.
    J Mol Biol. 2001 Apr 6;307(4):1035-47 PMID: 11286554
  12. Structure of EDTA-treated satellite tobacco necrosis virus at pH 6.5.
    J Mol Biol. 1988 May 20;201(2):353-63 PMID: 3138417
  13. Structural determinants of water permeability through the lipid membrane.
    J Gen Physiol. 2008 Jan;131(1):69-76 PMID: 18166626
  14. Water transport mechanisms: water movement through lipid bilayers, pores, and plasma membranes.
    Science. 1988 Apr 8;240(4849):228 PMID: 17800923
  15. GROMACS 4:  Algorithms for Highly Efficient, Load-Balanced, and Scalable Molecular Simulation.
    J Chem Theory Comput. 2008 Mar;4(3):435-47 PMID: 26620784
  16. The capsid of the small RNA phage PRR1 is stabilized by metal ions.
    J Mol Biol. 2008 Nov 21;383(4):914-22 PMID: 18786545
  17. The EDTA-treated expanded satellite tobacco necrosis virus: biochemical properties and crystallization.
    Virology. 1986 Jul 15;152(1):207-18 PMID: 18640639
  18. Ordered duplex RNA controls capsid architecture in an icosahedral animal virus.
    Nature. 1993 Jan 14;361(6408):176-9 PMID: 8421524
  19. Tomato bushy stunt virus at 2.9 A resolution.
    Nature. 1978 Nov 23;276(5686):368-73 PMID: 19711552
  20. Water and glycerol permeabilities of aquaporins 1-5 and MIP determined quantitatively by expression of epitope-tagged constructs in Xenopus oocytes.
    J Biol Chem. 1997 Jun 27;272(26):16140-6 PMID: 9195910
  21. Physical principles in the construction of regular viruses.
    Cold Spring Harb Symp Quant Biol. 1962;27:1-24 PMID: 14019094
  22. Mechanical properties of the icosahedral shell of southern bean mosaic virus: a molecular dynamics study.
    Biophys J. 2009 Feb 18;96(4):1350-63 PMID: 19217853
  23. Cytoplasmic free calcium in Riccia fluitans L. and Zea mays L.: Interaction of Ca(2+) and pH?
    Planta. 1988 Nov;176(2):248-55 PMID: 24220780
  24. Structures of the native and swollen forms of cowpea chlorotic mottle virus determined by X-ray crystallography and cryo-electron microscopy.
    Structure. 1995 Jan 15;3(1):63-78 PMID: 7743132
  25. Structure of southern bean mosaic virus at 2.8 A resolution.
    Nature. 1980 Jul 3;286(5768):33-9 PMID: 19711553
  26. Comparison of multiple Amber force fields and development of improved protein backbone parameters.
    Proteins. 2006 Nov 15;65(3):712-25 PMID: 16981200
  27. Canonical sampling through velocity rescaling.
    J Chem Phys. 2007 Jan 7;126(1):014101 PMID: 17212484
  28. Primary changes of the mechanical properties of Southern Bean Mosaic Virus upon calcium removal.
    Biophys J. 2010 Feb 17;98(4):687-95 PMID: 20159165
  29. Structure of satellite tobacco necrosis virus at 3.0 A resolution.
    J Mol Biol. 1982 Jul 25;159(1):93-108 PMID: 7131560
  30. Molecular modeling of the RNA binding N-terminal part of cowpea chlorotic mottle virus coat protein in solution with phosphate ions.
    Biophys J. 1996 Dec;71(6):2920-32 PMID: 8968565
  31. Swelling of isometric and of bacilliform plant virus nucleocapsids is required for virus-specific protein synthesis in vitro.
    Virology. 1986 Jan 15;148(1):210-7 PMID: 18640565
  32. Improved side-chain torsion potentials for the Amber ff99SB protein force field.
    Proteins. 2010 Jun;78(8):1950-8 PMID: 20408171
  33. Construction and crystal structure of recombinant STNV capsids.
    J Mol Biol. 2011 Oct 14;413(1):41-50 PMID: 21839089
Article Info
Journal
PLoS computational biology
Abbr.
PLoS Comput Biol
ISSN
1553-7358
Published
2012-00-00
Epub
2012-00-10
Pages
e1002502
Language
English
Region
United States
NLM ID
101238922
PMCID
PMC3349721
Subset
IM
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