1887

Abstract

The capsid of herpes simplex virus type 1 is composed of seven proteins. VP5, VP19C, VP22a and VP23 have been shown previously to be the products of genes UL19, UL38, UL26.5 and UL18, respectively. The genes encoding VP21, VP24 and VP26 have not been identified to date. We have determined amino acid sequences of fragments of isolated capsid proteins generated by partial cleavage with CNBr. The results confirm the gene assignments for VP5, VP19C and VP23. They also show that VP26 is the product of gene UL35 and that VP24 contains the protease domain present in the N-terminal portion of the UL26-encoded protein. VP21 was not investigated, but we suggest that it is the C-terminal portion of the UL26-encoded protein remaining after release of VP24 and that it thus corresponds to a form of VP22a extended at the N terminus.

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1992-10-01
2024-04-16
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References

  1. Aitken A., Geisow M. J., Findlay J. B. C., Holmes C., Yarwood A. 1989; Peptide preparation and characterization. In Protein Sequencing: A Practical Approach pp. 43–68 Edited by Findlay J. B. C., Geisow M. J. Oxford: IRL Press;
    [Google Scholar]
  2. Baer R., Bankier A. T., Biggin M. D., Deininger P. L., Farrell P. J., Gibson T. J., Hatfull G., Hudson G. S., Satchwell S. C., Séguin C., Tuffnell P. S., Barrell B. G. 1984; DNA sequence and expression of the B95-8 Epstein-Barr virus genome. Nature, London 310:207–211
    [Google Scholar]
  3. Barker D. E., Roizman B. 1992; The unique sequence of the herpes simplex virus 1 L component contains an additional translated open reading frame designated UL49.5. Journal of Virology 66:562–566
    [Google Scholar]
  4. Barnett B. C., Dolan A., Telford E. A. R., Davison A. J., McGeoch D. J. 1992; A novel herpes simplex virus gene (UL49A) encodes a putative membrane protein with counterparts in other herpesviruses. Journal of General Virology 73:2167–2171
    [Google Scholar]
  5. Booy F. P., Newcomb W. W., Trus B. L., Brown J. C., Baker T. S., Steven A. C. 1991; Liquid-crystalline, phage-like packing of encapsidated DNA in herpes simplex virus. Cell 64:1007–1015
    [Google Scholar]
  6. Braun D. K., Pereira L., Norrild B., Roizman B. 1983; Application of denatured, electrophoretically separated, and immobilized lysates of herpes simplex virus-infected cells for detection of monoclonal antibodies and for studies of the properties of viral proteins. Journal of Virology 46:103–112
    [Google Scholar]
  7. Braun D. K., Roizman B., Pereira L. 1984a; Characterization of post-translational products of herpes simplex virus gene 35 proteins binding to the surface of full capsids but not empty capsids. Journal of Virology 49:142–153
    [Google Scholar]
  8. Braun D. K., Batterson W., Roizman B. 1984b; Identification and genetic mapping of a herpes simplex virus capsid protein that binds DNA. Journal of Virology 50:645–648
    [Google Scholar]
  9. Casjens S., King J. 1975; Virus assembly. Annual Review of Biochemistry 44:555–611
    [Google Scholar]
  10. Chee M. S., Bankier A. T., Beck S., Bohni R., Brown C. M., Cerny R., Horsnell T., Hutchison C. A. III, Kouzarides T., Martignetti J. A., Preddie E., Satchwell S. C., Tomlinson P., Weston K. M., Barrell B. G. 1990; Analysis of the proteincoding content of the sequence of human cytomegalovirus strain AD169. Current Topics in Microbiology and Immunology 154:125–169
    [Google Scholar]
  11. Cohen G. H., Ponce de Leon M., Diggelmann H., Lawrence W. C., Vernon S. K., Eisenberg R. J. 1980; Structural analysis of the capsid polypeptides of herpes simplex virus types 1 and 2. Journal of Virology 34:521–531
    [Google Scholar]
  12. Costa R. H., Cohen G., Eisenberg R., Long D., Wagner E. 1984; Direct demonstration that the abundant 6-kilobase herpes simplex virus type 1 mRNA mapping between 0.23 and 0.27 map units encodes the major capsid protein VP5. Journal of Virology 49:287–292
    [Google Scholar]
  13. Davison A. J., Scott J. E. 1986a; The complete DNA sequence of varicella-zoster virus. Journal of General Virology 67:1759–1816
    [Google Scholar]
  14. Davison A. J., Scott J. E. 1986b; DNA sequence of the major capsid protein gene of herpes simplex virus type 1. Journal of General Virology 67:2279–2286
    [Google Scholar]
  15. Gibson W., Roizman B. 1972; Proteins specified by herpes simplex virus. VIII. Characterization and composition of multiple capsid forms of subtypes 1 and 2. Journal of Virology 10:1044–1052
    [Google Scholar]
  16. Gibson W., Roizman B. 1974; Proteins specified by herpes simplex virus. X. Staining and radiolabeling properties of B capsid and virion proteins in polyacrylamide gels. Journal of Virology 13:155–165
    [Google Scholar]
  17. Gibson W., Marcy A. I., Comolli J. C., Lee J. 1990; Identification of precursor to cytomegalovirus capsid assembly protein and evidence that processing results in loss of its carboxy-terminal end. Journal of Virology 64:1241–1249
    [Google Scholar]
  18. Griffin A. M. 1990; The complete sequence of the capsid p40 gene from infectious laryngotracheitis virus. Nucleic Acids Research 18:3664
    [Google Scholar]
  19. Heilman C. J. III, Zweig M., Stephenson J. R., Hampar B. 1979; Isolation of a nucleocapsid polypeptide of herpes simplex types 1 and 2 possessing immunologically type-specific and crossreactive determinants. Journal of Virology 29:34–42
    [Google Scholar]
  20. Irmiere A., Gibson W. 1985; Isolation of human cytomegalovirus intranuclear capsids, characterization of their protein constituents, and demonstration that the B-capsid assembly protein is also abundant in noninfectious enveloped particles. Journal of Virology 56:277–283
    [Google Scholar]
  21. Liu F., Roizman B. 1991a; The promoter, transcriptional unit, and coding sequence of the herpes simplex virus 1 family 35 proteins are contained within and in frame with the UL26 open reading frame. Journal of Virology 65:206–212
    [Google Scholar]
  22. Liu F., Roizman B. 1991b; The herpes simplex virus 1 gene encoding a protease also contains within its coding domain the gene encoding the more abundant substrate. Journal of Virology 65:5149–5156
    [Google Scholar]
  23. Liu F., Roizman B. 1992; Differentiation of multiple domains in the herpes simplex virus 1 protease encoded by the UL26 gene. Proceedings of the National Academy of Sciences, U.S.A. 89:2076–2080
    [Google Scholar]
  24. McGeoch D. J., Dalrymple M. A., Davison A. J., Dolan A., Frame M., McNab D., Perry L. J., Scott J. E., Taylor P. 1988; The complete DNA sequence of the long unique region in the genome of herpes simplex virus type 1. Journal of General Virology 69:1531–1574
    [Google Scholar]
  25. Matsudaira P. 1987; Sequence from picomole quantities of proteins electroblotted onto polyvinylidene difluoride membranes. Journal of Biological Chemistry 262:10035–10038
    [Google Scholar]
  26. Newcomb W. W., Brown J. C. 1989; Use of Ar+ plasma etching to localize structural proteins in the capsid of herpes simplex virus type 1. Journal of Virology 63:4697–4702
    [Google Scholar]
  27. Newcomb W. W., Brown J. C. 1991; Structure of the herpes simplex virus capsid: effects of extraction with guanidine hydrochloride and partial reconstitution of extracted capsids. Journal of Virology 65:613–620
    [Google Scholar]
  28. Perdue M. L., Kemp M. C., Randall C. C., O’Callaghan D. J. 1974; Studies of the molecular anatomy of the L-M cell strain of equine herpes virus type 1: proteins of the nucleocapsid and intact virion. Virology 59:201–216
    [Google Scholar]
  29. Pertuiset B., Boccara M., Cebrian J., Berthelot N., Chousterman S., Puvion-Dutilleul F., Sisman J., Sheldrick P. 1989; Physical mapping and nucleotide sequence of a herpes simplex virus type 1 gene required for capsid assembly. Journal of Virology 63:2169–2179
    [Google Scholar]
  30. Preston V. G., Coates J. A. V., Rixon F. J. 1983; Identification and characterization of a herpes simplex virus gene product required for encapsidation of virus DNA. Journal of Virology 45:1056–1064
    [Google Scholar]
  31. Preston V. G., Rixon F. J., McDougall I. M., McGregor M., Al Kobaisi M. F. 1992; Processing of the herpes simplex virus assembly protein ICP35 near its carboxy terminal end requires the product of the whole UL26 reading frame. Virology 186:87–98
    [Google Scholar]
  32. Rixon F. J., Cross A. M., Addison C., Preston V. G. 1988; The products of herpes simplex virus type 1 gene UL26 which are involved in DNA packaging are strongly associated with empty but not with full capsids. Journal of General Virology 69:2879–2891
    [Google Scholar]
  33. Rixon F. J., Davison M. D., Davison A. J. 1990; Identification of the genes encoding two capsid proteins of herpes simplex virus type 1 by direct amino acid sequencing. Journal of General Virology 71:1211–1214
    [Google Scholar]
  34. Schӓgger H., von Jagow G. 1987; Tricine-sodium dodecyl sulfate-polyacrylamide gel electrophoresis for the separation of proteins in the range from 1 to 100 kDa. Analytical Biochemistry 166:368–379
    [Google Scholar]
  35. Schrag J. D., Venkataram Prasad B. V., Rixon F. J., Chiu W. 1989; Three-dimensional structure of the HSV1 nucleocapsid. Cell 56:651–660
    [Google Scholar]
  36. Sherman G., Bachenheimer S. L. 1988; Characterization of intranuclear capsids made by ts morphogenic mutants of HSV-1. Virology 163:471–480
    [Google Scholar]
  37. Telford E. A. R., Watson M. S., McBride K., Davison A. J. 1992; The DNA sequence of equine herpesvirus 1. Virology 189:304–316
    [Google Scholar]
  38. Vernon S. K., Ponce de Leon M., Cohen G. H., Eisenberg R. J., Rubin B. A. 1981; Morphological components of herpesvirus. III. Localization of herpes simplex virus type 1 nucleocapsid polypeptides by immune electron microscopy. Journal of General Virology 54:39–46
    [Google Scholar]
  39. Welch A. R., McNally L. M., Gibson W. 1991a; Cytomegalovirus assembly protein nested gene family: four 3′-coterminal transcripts encode four in-frame, overlapping proteins. Journal of Virology 65:4091–4100
    [Google Scholar]
  40. Welch A. R., Woods A. S., McNally L. M., Cotter R. J., Gibson W. 1991b; A herpesvirus maturational proteinase, assemblin: identification of its gene, putative active site domain, and cleavage site. Proceedings of the National Academy of Sciences, U.S.A. 88:10792–10796
    [Google Scholar]
  41. Weller S. K., Carmichael E. P., Aschman D. P., Goldstein D. J., Schaffer P. A. 1987; Genetic and phenotypic characterization of mutants in four essential genes that map to the left half of HSV-1 UL DNA. Virology 161:198–210
    [Google Scholar]
  42. Wildy P., Russell W. C., Horne R. W. 1960; The morphology of herpes virus. Virology 12:204–222
    [Google Scholar]
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