1887

Abstract

The complete nucleotide sequence of rice dwarf phytoreovirus (RDV) genome segment S11 was determined. S11 is 1067 nucleotides long. There is an inverted repeat of 10 bp adjacent to the conserved 5′-terminal hexanucleotide (5′ GGUAAA 3′) and 3′-terminal tetranucleotide (5′ UAGU 3′) sequences. A single large open reading frame found in the plus strand of S11 begins with the first AUG codon (bases 6 to 8) and extends for 567 bases. Evolutionary relatedness between RDV S11 and wound tumour phytoreovirus S12 based on amino acid sequence similarity (25.8%) was found. In addition to the first AUG triplet, RDV S11 possesses a second in-phase AUG triplet (positions 30 to 32) nearby, which conforms to the Kozak consensus sequence. Two forms of the protein were identified by using an transcription and translation system in which a tailored full-length cDNA was the initial template. The abolition of the first AUG codon by site-directed mutagenesis resulted in disappearance of the larger translation product. These results strongly suggest that the two products are translated from the first and second AUG codons. Whether the two proteins are expressed is at present unclear.

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1991-09-01
2024-05-17
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References

  1. Anzola J. V., Xu Z., Asamizu T., Nuss D. 1987; Segment-specific inverted repeats found adjacent to conserved terminal sequences in wound tumor virus genome and defective interfering RNAs. Proceedings of the National Academy of Sciences, U.S.A 84:8301–8305
    [Google Scholar]
  2. Anzola J. V., Dall D. J., Xu Z., Nuss D. L. 1989; Complete nucleotide sequence of wound tumor virus genomic segments encoding nonstructural polypeptides. Virology 171:222–228
    [Google Scholar]
  3. Asamizu T., Summers D., Motika M. B., Anzola J. V., Nuss D. L. 1985; Molecular cloning and characterization of the genome of wound tumor virus: a tumor-inducing plant reovirus. Virology 144:398–409
    [Google Scholar]
  4. Boccardo G., Milne R. G. 1984; Plant reovirus group. CMI/AAB Descriptions of Plant Viruses no. 294
    [Google Scholar]
  5. Bullock W. O., Fernandez J. M., Short J. M. 1987; XL1-Blue: a high efficiency plasmid transforming recA Escherichia coli strain with beta-galactosidase selection. Biotechniques 5:376–379
    [Google Scholar]
  6. Chan W. K., Penaranda M. E., Crawford S. E., Estes M. K. 1986; Two glycoproteins are produced from the rotavirus neutralization gene. Virology 151:243–252
    [Google Scholar]
  7. Dall D. J., Anzola J. V., Xu Z., Nuss D. 1989; Complete nucleotide sequence of wound tumor virus genomic segment S11. Nucleic Acids Research 17:3599
    [Google Scholar]
  8. DeBorde D. C., Naeve C. W., Herlocher M. L., Maassab H. F. 1986; Resolution of a common RNA sequencing ambiguity by terminal deoxynucleotidyl transferase. Analytical Biochemistry 157:275–282
    [Google Scholar]
  9. Fukumoto F., Omura T., Minobe Y. 1989; Nucleotide sequence of segment S9 of the rice dwarf virus genome. Archives of Virology 107:135–139
    [Google Scholar]
  10. Hayashi N., Minobe Y. 1990; Segment 5 of the rice dwarf virus genome encodes a protein highly conserved within the phytoreoviruses. Journal of General Virology 71:3081–3083
    [Google Scholar]
  11. Kano H., Koizumi M., Noda H., Mizuno H., Tsukihara T., Ishikawa K., Hibino H., Omura T. 1990; Nucleotide sequence of rice dwarf virus (RDV) genome segment S3 coding for 114K major core protein. Nucleic Acids Research 18:6700
    [Google Scholar]
  12. Kozak M. 1981; Possible role of flanking nucleotides in recognition of the AUG initiator codon by eukaryotic ribosomes. Nucleic Acids Research 9:5233–5252
    [Google Scholar]
  13. Kozak M. 1987; An analysis of 5′-noncoding sequences from 699 vertebrate messenger RNAs. Nucleic Acids Research 15:8125–8148
    [Google Scholar]
  14. Maniatis T., Fritsch E. F., Sambrook J. 1982 Molecular Cloning: A Laboratory Manual New York: Cold Spring Harbor Laboratory:
    [Google Scholar]
  15. Mizusawa S., Nishimura S., Seela F. 1986; Improvement of the dideoxy chain termination method of DNA sequencing by use of deoxy-7-deazaguanosine triphosphate in place of dGTP. Nucleic Acids Research 14:1319–1324
    [Google Scholar]
  16. Nakashima K., Kakutani T., Minobe Y. 1990; Sequence analysis and product assignment of segment 7 of the rice dwarf virus genome. Journal of General Virology 71:725–729
    [Google Scholar]
  17. Norrander J., Kempe T., Messing J. 1983; Construction of improved Ml3 vectors using oligodeoxynucleotide-directed mutagenesis. Gene 26:101–106
    [Google Scholar]
  18. Nuss D. L., Dall D. J. 1990; Structural and functional properties of plant reovirus genomes. Advances in Virus Research 38:249–306
    [Google Scholar]
  19. Omura T., Minobe Y., Tsuchizaki T. 1988; Nucleotide sequence of segment S10 of the rice dwarf virus genome. Journal of General Virology 69:227–231
    [Google Scholar]
  20. Omura T., Ishikawa K., Hirano H., Ugaki M., Minobe Y., Tsuchizaki T., Kato H. 1989; The outer capsid protein of rice dwarf virus is encoded by genome segment S8. Journal of General Virology 70:2759–2764
    [Google Scholar]
  21. Saiki R. K., Gelfand D. H., Stoffe S., Sharf S. J., Higuchi R., Horn G. T., Mullis K. B., Erlich H. A. 1988; Primer-directed enzymatic amplification of DNA with a thermostable DNA polymerase. Science 239:487–491
    [Google Scholar]
  22. Sanger F., Nicklen S., Coulson A. R. 1977; DNA sequencing with chain-terminating inhibitors. Proceedings of the National Academy of Sciences, U.S.A 74:5463–5467
    [Google Scholar]
  23. Sano Y., Nozu Y., Inoue H. 1978; The interaction of sodium dodecyl sulfate with cucumber green mottle mosaic virus protein and tobacco mosaic virus protein. Archives of Biochemistry and Biophysics 186:307–316
    [Google Scholar]
  24. Schwartz R. W., Dayhoff M. O. 1978 Atlas of Protein Sequence and Structure vol 5 supplement 3 pp 353–358 Washington, D.C.: National Biomedical Research Foundation;
    [Google Scholar]
  25. Shirako Y., Ehara Y. 1986; Comparison of the in vitro translation products of wild-type and a deletion mutant of soil-borne wheat mosaic virus. Journal of General Virology 67:1237–1245
    [Google Scholar]
  26. Short J. M., Fernandez J. M., Sorge A., Huse W. D. 1988; ZAP: a bacteriophage expression vector with in vivo excision properties. Nucleic Acids Research 16:7583–7600
    [Google Scholar]
  27. Suzuki N., Watanabe Y., Kusano T., Kitagawa Y. 1989; Nucleotide sequence of rice dwarf virus segment 5. Nucleic Acids Research 17:8858
    [Google Scholar]
  28. Suzuki N., Watanabe Y., Kusano T., Kitagawa Y. 1990a; Sequence analysis of rice dwarf phytoreovirus segment S4, S5, and S6: comparison with the equivalent wound tumor virus segments. Virology 179:446–454
    [Google Scholar]
  29. Suzuki N., Watanabe Y., Kusano T., Kitagawa Y. 1990b; Sequence analysis of rice dwarf phytoreovirus segment S3 transcript encoding for a major structural core protein of 114 kDa. Virology 179:455–459
    [Google Scholar]
  30. Uyeda I., Matsumura T., Sano T., Ohshima K., Shikata E. 1987; Nucleotide sequence of rice dwarf virus genome segment 10. Proceedings of the Japan Academy 63:227–230
    [Google Scholar]
  31. Uyeda I., Kudo H., Takahashi T., Sano T., Ohshima K., Matsumura T., Shikata E. 1989; Nucleotide sequence of rice dwarf virus genome segment 9. Journal of General Virology 70:1297–1330
    [Google Scholar]
  32. Xu Z., Anzola J. V., Nuss D. L. 1989; Assignment of wound tumor virus nonstructural polypeptides to cognate dsRNA genome segments by in vitro expression of tailored full-length cDNA clones. Virology 168:73–78
    [Google Scholar]
  33. Yamada N., Uyeda I., Kudo H., Shikata E. 1990; Nucleotide sequence of rice dwarf virus genome segment 3. Nucleic Acids Research 18:6419
    [Google Scholar]
  34. Yanisch-Perron C., Vieira J., Messing J. 1985; Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp 18 and pUC19 vectors. Gene 33:103–119
    [Google Scholar]
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