Carboxylate interactions involved in the disassembly of tobacco mosaic tobamovirus.

@article{Lu1996CarboxylateII,
  title={Carboxylate interactions involved in the disassembly of tobacco mosaic tobamovirus.},
  author={B Lu and Gerald Stubbs and James N. Culver},
  journal={Virology},
  year={1996},
  volume={225 1},
  pages={
          11-20
        }
}
Structural studies of tobacco mosaic tobamovirus (TMV) have identified two coat protein (CP) intersubunit carboxyl-carboxylate interactions and one CP carboxylate-RNA phosphate interaction whose electrostatic repulsion is believed to drive virion disassembly. In this study, the involvement of each interaction in the disassembly process was examined. Site-directed mutagenesis was used to replace selected negatively charged CP residues, E or D, with neutral residues, Q or N, respectively… 
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Elucidation of the viral disassembly switch of tobacco mosaic virus
TLDR
Two cryo‐EM structures of the helical TMV assembly at 2.0 and 1.9 Å resolution are presented and conformational details of the disassembly switch mechanism are identified: in high Ca2+/acidic pH environment, the virion is stabilized between neighboring subunits through carboxyl groups E95 and E97 in close proximity to aCa2+ binding site that is shared between two subunits.
Elucidation of the viral disassembly switch of tobacco mosaic virus
TLDR
High-resolution cryo-EM structures of the helical TMV assembly revealed the conformational details for one of the reference systems of viral assembly/disassembly and provide the mechanistic explanation of a plethora of experimental results that were acquired over decades.
Coat protein interactions involved in tobacco mosaic tobamovirus cross-protection.
TLDR
Findings support a model for CP-mediated resistance in which the protecting CP recoats the challenge virus RNA as it disassembles.
Tobacco mosaic virus particle structure and the initiation of disassembly.
  • G. Stubbs
  • Biology
    Philosophical transactions of the Royal Society of London. Series B, Biological sciences
  • 1999
TLDR
Examination of the structures of TMV, cucumber green mottle mosaic virus and ribgrass mosaic virus, and site-directed mutagenesis experiments in which carboxylate groups were changed to the corresponding amides showed that initial stages of disassembly are driven by complex electrostatic interactions involving at least seven car boxylate side-chains and a phosphate group.
Comparison of Tobamovirus Coat Protein Structural Features That Affect Elicitor Activity in Pepper, Eggplant, and Tobacco
Specific mutations designed to affect the tertiary, quaternary, and surface structures of the tobacco mosaic tobamovirus (TMV) coat protein (CP) were compared for their effect on CP elicitor activity
Conformational behavior of coat protein in plants and association with coat protein-mediated resistance against TMV
TLDR
The finding indicates the essential structural changes caused by the mutation in CP subunits, which are critically responsible for CP-MR, and provides an in silico insight into the effects of these transitions overCP-MR.
Tobacco mosaic virus assembly and disassembly: determinants in pathogenicity and resistance.
  • J. Culver
  • Biology
    Annual review of phytopathology
  • 2002
TLDR
Both the structure and assembly of the TMV CP function as determinants in the induction of disease and resistance responses, including cross-protection, systemic virus movement, hypersensitive disease resistance, and symptom development.
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