Visualization and characterization of tobacco mosaic virus movement protein binding to single-stranded nucleic acids.
Open Access
- 1 April 1992
- journal article
- Published by Oxford University Press (OUP) in Plant Cell
- Vol. 4 (4), 397-411
- https://doi.org/10.1105/tpc.4.4.397
Abstract
Cell-to-cell spread of tobacco mosaic virus (TMV) is presumed to occur through plant intercellular connections, the plasmodesmata. Viral movement is an active process mediated by a specific virus-encoded P30 protein. P30 has at least two functions, to cooperatively bind single-stranded nucleic acids and to increase plasmodesmatal permeability. Here, we visualized P30 complexes with single-stranded DNA and RNA. These complexes are long, unfolded, and very thin (1.5 to 2.0 nm in diameter). Unlike TMV virions (300 x 18 nm), the complexes are compatible in size with the P30-induced increase in plasmodesmatal permeability (2.4 to 3.1 nm), making them likely candidates for the structures involved in the cell-to-cell movement of TMV. Mutational analysis using single and double deletion mutants of P30 revealed three regions potentially important for the protein function. Amino acid residues 65 to 86 possibly are required for correct folding of the active protein, and the regions between amino acid residues 112 to 185 and 185 to 268 potentially contain two independently active single-stranded nucleic acid binding domains designated binding domains A and B, respectively.Keywords
This publication has 27 references indexed in Scilit:
- How do plant virus nucleic acids move through intercellular connections?BioEssays, 1991
- Expression of cauliflower mosaic virus gene I in insect cells using a novel polyhedrin-based baculovirus expression vectorJournal of General Virology, 1990
- Basic local alignment search toolJournal of Molecular Biology, 1990
- Control of plastid gene expression: 3′ inverted repeats act as mRNA processing and stabilizing elements, but do not terminate transcriptionCell, 1987
- Use of bacteriophage T7 RNA polymerase to direct selective high-level expression of cloned genesJournal of Molecular Biology, 1986
- Salt-dependent changes in the DNA binding co-operativity of Escherichia coli single strand binding proteinJournal of Molecular Biology, 1986
- A computer program for predicting protein antigenic determinantsMolecular Immunology, 1983
- Autoregulation of gene expression: Quantitative evaluation of the expression and function of the bacteriophage T4 gene 32 (single-stranded DNA binding) protein systemJournal of Molecular Biology, 1982
- Two types of amino acid substitutions in protein evolutionJournal of Molecular Evolution, 1979
- Characterization by electron microscopy of the complex formed between T4 bacteriophage gene 32-protein and DNAJournal of Molecular Biology, 1972