1887

Abstract

Rabies virus nucleoprotein (N) was produced in insect cells using the baculovirus expression system described by Préhaud . ( 178, 486–497, 1990). The protein was either purified on a CsCl gradient, resulting in a mixture of nucleo-capsid-like structures and beaded rings, as observed by electron microscopy, or on a glycerol gradient that resulted in a preparation of the rings only. The rings and nucleocapsid-like structures had the same morphological characteristics as viral nucleocapsids. N in these structures is an 84 Å long and thin molecule that is spaced at around 34 Å along the length of the nucleocapsid, identical in shape and spacing as the nucleoprotein in nucleo-capsids of rabies virus and very similar to those of vesicular stomatitis virus. The recombinant nucleocapsids contained RNA with a stoichiometry similar to that found in viral nucleocapsids. The RNA bound in the beaded rings was a subset of the insect cellular RNA. One of the RNA species was partially sequenced and, although a positive identification could not be made, could correspond to a tRNA. With respect to sensitivity to trypsin and RNase digestion, the recombinant and viral nucleocapsids behaved similar. Trypsin cleaved a 17 kDa fragment from the carboxy terminus of N with only a very small effect on the morphology of the nucleocapsids. RNase A completely digested the resident RNA in both viral and recombinant nucleocapsids into fragments of 4–5 nt long, again with no effect on the morphology of the nucleocapsids. Thus, when the RNA is cleaved, the structure must be maintained by protein-protein contacts. Experiments to remove the resident RNA from viral and recombinant rabies virus nucleocapsids failed, whereas the same methods used to eliminate the RNA from vesicular stomatitis virus nucleocapsids was successful.

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1998-12-01
2024-04-19
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References

  1. Baltimore D., Huang A. S., Stampfer M. 1970; Ribonucleic acid synthesis of vesicular stomatitis virus. II. An RNA polymerase in the virion. Proceedings of the National Academy of Sciences, USA 66:572–576
    [Google Scholar]
  2. Baudin F., Bach C., Cusack S., Ruigrok R. W. 1994; Structure of influenza virus RNP. I. Influenza virus nucleoprotein melts secondary structure in panhandle RNA and exposes the bases to the solvent. EMBO Journal 13:3158–3165
    [Google Scholar]
  3. Blumberg B. M., Kolakofsky D. 1981; Intracellular vesicular stomatitis virus leader RNAs are found in nucleocapsid structures. Journal of Virology 40:568–576
    [Google Scholar]
  4. Blumberg B. M., Giorgi C., Kolakofsky D. 1983; N protein of vesicular stomatitis virus specifically encapsidates leader RNA in vitro. Cell 32:559–567
    [Google Scholar]
  5. Blumberg B. M., Giorgi C., Rose K., Kolakofsky D. 1984; Preparation and analysis of the nucleocapsid proteins of vesicular stomatitis virus and Sendai virus, and analysis of the Sendai virus leader-NP gene region. Journal of General Virology 65:769–779
    [Google Scholar]
  6. Canter D. M., Jackson R. L., Perrault J. 1993; Faithful and efficient in vitro reconstitution of vesicular stomatitis virus transcription using plasmid-encoded L and P proteins. Virology 194:518–529
    [Google Scholar]
  7. Carroll A. R., Wagner R. R. 1979; Role of the membrane (M) protein in endogenous inhibition of in vitro transcription by vesicular stomatitis virus. Journal of Virology 29:134–142
    [Google Scholar]
  8. Curran J., Marq J.-B., Kolakofsky D. 1992; The Sendai virus nonstructural C proteins specifically inhibit mRNA synthesis. Virology 189:647–656
    [Google Scholar]
  9. Davis N. L., Arnheiter H., Wertz G. W. 1986; Vesicular stomatitis virus N and NS proteins form multiple complexes. Journal of Virology 59:751–754
    [Google Scholar]
  10. De B. P., Banerjee A. K. 1984; Specific interactions of vesicular stomatitis virus L and NS proteins with heterologous ribonucleoprotein template lead to mRNA synthesis in vitro. Journal of Virology 51:628–634
    [Google Scholar]
  11. Emerson S. U. 1982; Reconstitution studies detect a single polymerase entry site on the vesicular stomatitis genome. Cell 31:635–642
    [Google Scholar]
  12. Emerson S. U. 1987; Transcription of vesicular stomatitis virus. In The Rhabdoviruses pp. 245–269 Wagner R. R. Edited by New York: Plenum;
    [Google Scholar]
  13. Emerson S. U., Wagner R. R. 1972; Dissociation andreconstitution of the transcriptase and template activities of vesicular stomatitis B and T virions. Journal of Virology 10:297–309
    [Google Scholar]
  14. Emerson S. U., Yu Y. H. 1975; Both NS and L proteins are required for in vitro RNA synthesis by vesicular stomatitis virus. Journal of Virology 15:1348–1356
    [Google Scholar]
  15. England T. E., Bruce A. G., Uhlenbeck O. C. 1980; Specific labeling of 3′ termini of RNA with T4 RNA Ligase. Methods in Enzymology 65:65–74
    [Google Scholar]
  16. Flamand A., Raux H., Gaudin Y., Ruigrok R. W. H. 1993; Mechanisms of rabies virus neutralization. Virology 194:302–313
    [Google Scholar]
  17. Fu Z. F., Dietzschold B., Schumacher C. L., Wunner W. H., Ertl H. C. J., Koprowski H. 1991; Rabies virus nucleoprotein expressed in and purified from insect cells is efficacious as a vaccine. Proceedings of the National Academy of Sciences, USA 88:2001–2005
    [Google Scholar]
  18. Gaudin Y., Ruigrok R. W. H., Tuffereau C., Knossow M., Flamand A. 1992; Rabies glycoprotein is a trimer. Virology 187:627–632
    [Google Scholar]
  19. Helfman W. B., Perrault J. 1989; Redistributive properties of the vesicular stomatitis virus polymerase. Virology 171:319–330
    [Google Scholar]
  20. Honda A., Mizumoto K., Ishihama A. 1986; RNA polymerase of influenza virus. Dinucleotide primed initiation of transcription at specific positions on viral RNA. Journal of Biological Chemistry 261:5987–5991
    [Google Scholar]
  21. Horikami S. M., Curran J., Kolakofsky D., Moyer S. A. 1992; Complexes of Sendai virus NP-P and P-L proteins are required for defective interfering particle genome replication in vitro. Journal of Virology 66:4901–4908
    [Google Scholar]
  22. Howard M., Wertz G. 1989; Vesicular stomatitis virus RNA replication: a role for the NS protein. Journal of General Virology 70:2683–2694
    [Google Scholar]
  23. Ishihama A., Mizumoto K., Kawakami K., Kato A., Honda A. 1986; Proofreading function associated with the RNA-dependent RNA polymerase from influenza virus. Journal of Biological Chemistry 261:10417–10421
    [Google Scholar]
  24. Kawai A. 1977; Transcriptase activity associated with rabies virion. Journal of Virology 24:826–835
    [Google Scholar]
  25. Keene J. D., Thornton B. J., Emerson S. U. 1981; Sequence-specific contacts between the RNA polymerase of vesicular stomatitis virus and the leader RNA gene. Proceedings of the National Academy of Sciences, USA 78:6191–6195
    [Google Scholar]
  26. Kouznetzoff A. 1997 Etude de l’interaction entre la proteine N de la souche PV du virus rabique et l’ARN viral in vitro PhD thesis Université Paris 6, France:
    [Google Scholar]
  27. Kouznetzoff A., Buckle M., Tordo N. 1998; Identification of a region of the rabies virus N protein involved in direct binding to the viral RNA. Journal of General Virology 79:1005–1013
    [Google Scholar]
  28. Leppert M., Rittenhouse L., Perrault J., Summers D. F., Kolakofsky D. 1979; Plus and minus strand Leader RNAs in negative strand virus-infected cells. Cell 18:735–747
    [Google Scholar]
  29. Masters P. S., Banerjee A. K. 1986; Phosphoprotein NS of vesicular stomatitis virus : phosphorylated states and transcriptional activities of intracellular and virion forms. Virology 154:259–270
    [Google Scholar]
  30. Masters P. S., Banerjee A. K. 1988a; Resolution of multiple complexes of phosphoprotein NS with nucleocapsid protein N of vesicular stomatitis virus. Journal of Virology 62:2651–2657
    [Google Scholar]
  31. Masters P. S., Banerjee A. K. 1988b; Complex formation with vesicular stomatitis virus phosphoprotein NS prevents binding of nucleocapsid protein N to nonspecific RNA. Journal of Virology 62:2658–2664
    [Google Scholar]
  32. Maxam A. M., Gilbert W. 1977; A new method for sequencing DNA. Proceedings of the National Academy of Sciences, USA 74:560–564
    [Google Scholar]
  33. Moyer S. A., Smallwood-Kentro S., Haddad A., Prevec L. 1991; Assembly and transcription of synthetic vesicular stomatitis virus nucleocapsids. Journal of Virology 65:2170–2178
    [Google Scholar]
  34. Nakai T., Howatson A. F. 1968; The fine structure of vesicular stomatitis virus. Virology 35:268–281
    [Google Scholar]
  35. Peluso R. W. 1988; Kinetic, quantitative, and functional analysis of multiple forms of the vesicular stomatitis virus nucleocapsid protein in infected cells. Journal of Virology 62:2799–2807
    [Google Scholar]
  36. Préhaud C., Harris R. D., Fulop V., Koh C.-L., Wong J., Flamand A., Bishop D. H. L. 1990; Expression, characterization and purification of a phosphorylated rabies nucleoprotein synthesized in insect cells by baculovirus vectors. Virology 178:486–497
    [Google Scholar]
  37. Préhaud C., Nel K., Bishop D. H. L. 1992; Baculovirus expressed rabies virus M1 is not phosphorylated: It forms multiple complexes with expressed rabies N protein. Virology 189:766–770
    [Google Scholar]
  38. Ruigrok R. W. H., Baudin F. 1995; Structure of Influenza virus RNP. II. Purified, RNA-free Influenza ribonucleoprotein forms structures that are indistinguishable from the intact viral ribonucleoprotein particles. Journal of General Virology 76:1009–1014
    [Google Scholar]
  39. Thomas D., Newcomb W. W., Brown J. C., Wall J. S., Hainfeld J. F., Trus B. L., Steven A. C. 1985; Mass and molecular composition of vesicular stomatitis virus : a scanning transmission electron microscopy analysis. Journal of Virology 54:598–607
    [Google Scholar]
  40. Vidal S., Kolakofsky D. 1989; Modified model for the switch from Sendai virus transcription to replication. Journal of Virology 63:1951–1958
    [Google Scholar]
  41. Yang J., Hooper D. C., Wunner W. H., Koprowski H., Dietzschold B., Fu Z. F. 1998; The specificity of rabies virus RNA encapsidation by nucleoprotein. Virology 242:107–117
    [Google Scholar]
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