Purification of potato virus X, white clover mosaic virus, tobacco mosaic virus and ribosomes by column chromatography.
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Tobacco mosaic virus was methylated, using various concentrations of dimethylsulfate. The methylated virus sample with still intact particles was subjected to sequential analysis. The sites and the degree of methylation were determined in the tryptic peptides. Tyrosine 139 and cysteine 27 are more accessible to methylation than tyrosine 72, lysine 68 and tyrosine 2. A limited number of carboxyl groups was also methylated. The ability of methylated and original tobacco mosaic virus to initiate the formation of humoral antibodies and the capacity to induce a delayed-type hypersensitivity reaction were investigated in STU mice. Original tobacco mosaic virus could not induce a delayed-type hypersensitivity reaction but methylated tobacco mosaic virus induced a delayed-type reaction, not depending on whether the virus particles were intact or disintegrated. This phenomenon was strictly linked with the presence of methylester groups.
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Tobacco mosaic virus (TMV) particles are rod-like, 300 nm long and 18 nm in diameter. TMV consists of 2140 protein subunits, each with a relative molecular mass of 17420 (158 residues), arranged on a helix of pitch 2.3 nm with 16 1/3 subunits per turn. Winding through this helix is a single strand of RNA 6400 nucleotides long. Three bases are bound to each protein subunit. TMV has a central hole of diameter 4.0 nm. Assembly of TMV occurs by the threading of the RNA through the central hole of the growing rodlet of viral coat protein and involves a preassembled double disk as intermediate. Given the structure of the subunit, such a mechanism requires that the segment of polypeptide chain which separates the nucleic acid binding site from the lumen of the cylinder should be able to move out of the way during the assembly process. Evidence from diffraction studies and from proton nuclear magnetic resonance spectroscopy points to a segment of about 20 amino acid residues being very flexible in the disk. In the helical virus these residues take on a well-defined conformation which completely shields the nucleic acid from the central channel.
Tobacco mosaic virus produces two proteins that contain domains similar to the methyltransferase (MT) and helicase (HEL)-like domains of the replicase-associated proteins of other RNA viruses. The more abundant 126-kDa protein contains only the MT and HEL-like domains, whereas the 183-kDa readthrough protein additionally contains the polymerase domain. We examined the functions of these proteins by constructing a bipartite system to express the 126- and 183-kDa proteins from separate RNAs. Mutants expressing the 183-kDa protein recognized promoters for negative- and positive-stranded RNA synthesis, transcribed subgenomic mRNAs, capped RNAs, synthesized proteins, moved cell to cell within the plant, and replicated defective RNAs (dRNAs). The principal function of the 126-kDa protein was to increase the rate of replication approximately tenfold. The 126-kDa protein appeared to function primarily in cis, and production of the 126-kDa protein in trans did not enhance replication of the helper virus. dRNAs producing a functional 126-kDa protein were replicated efficiently by helper viruses that produced only the 183-kDa protein but not by wild-type virus, suggesting that efficient replication required the 183-kDa protein to form a heterodimer with the 126-kDa protein already bound to the target dRNA.
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This paper reports experimental results on the dielectrophoretic (DEP) behaviour on two nonenveloped plant viruses of different geometrical shapes, namely Cow Pea Mosaic Virus (CPMV) and Tobacco Mosaic Virus (TMV). The DEP properties of carboxy-modified latex beads of the same size are also reported. The DEP properties of single particles were obtained from measurement of the frequency at which the DEP force on a particle goes to zero (the crossover frequency). The DEP behaviour of particle ensembles was also measured using image processing. The dielectric properties of the particles were evaluated from the DEP data. The surface conductance was found to be 0.3 nS for CPMV, 0.38 nS for TMV, and 0.52 nS for 27 nm diameter carboxy-latex beads. Data analysis has shown that the optimal condition for separation of TMV and CPMV is a low-conductivity suspending medium - below 1 mS/m.
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The size and shape of A-protein of tobacco mosaic virus coat protein (TMVP) and cucumber green mottle mosaic virus coat protein (CGMMVP) were evaluated by means of small-angle X-ray scattering (SAXS) using a synchrotron radiation source, complemented by electron microscopic observations. The results imply that TMV and CGMMV A-proteins are composed of three and two subunits, respectively, stacked in the shape of an isosceles triangular prism at lower ionic strength. Considering the difference of the A-protein structure at higher and lower ionic strength, the globular core structure was proposed as a subunit which might be modeled as a thin isosceles triangular prism composed of four globular cores joined by rather flexible segments. These cores correspond probably to four helical regions in a subunit, and rearrange their relative positions according to the external conditions. A slight rearrangement of core positions in a subunit may result in the formation of A-proteins of various shapes.
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