1887

Abstract

Mutants of herpes simplex virus type 1 (HSV-1) lacking glycoproteins gG, gE, gI or the putative gJ were constructed by inserting a expression cassette within the US4, US8, US7 and US5 genes respectively. Revertant viruses were then constructed by rescue with a wild-type DNA fragment. Each of these mutant viruses, by comparison with the parental vims HSV-1 SC16, exhibited normal particle to infectivity ratios, and had no discernible phenotypic abnormalities in baby hamster kidney-21 cells following high or low multiplicity infections. Infection of mice by scarification of the ear with these mutant viruses showed the following, (i) Interruption of the US5 (gJ) gene has no effect on the ability of HSV-1 to multiply at the inoculation site or its ability to enter or multiply in the peripheral or central nervous system (CNS). This shows that the US5 gene provides a convenient site for the insertion of foreign genes for both and studies, (ii) Dismption of the US4 (gG) gene results in marginal attenuation in the mouse ear model, (iii) Dismption of the US7 (gI) or US8 (gE) genes results in pronounced attenuation; vims was rapidly cleared from the inoculation site and was barely detectable in sensory ganglia or in the CNS. The failure of gI-negative or gE-negative vimses to replicate efficiently at the inoculation site led to the investigation of vims behaviour in epithelial cells . Vimses lacking gE or gI adsorbed to and entered these cells at normal rates compared with the parental vims, but formed minute plaques. This is consistent with a failure of cell-to-cell spread by the cell contact route. This was confirmed by measurement of the rate of increase in infectious centre numbers following low multiplicity infections. The view that gE and gI influence interactions between cells at the plasma membrane was reinforced by showing that the introduction of disrupted gE or gI genes into a syncytial, but otherwise syngeneic, background resulted in a non-syncytial phenotype. We conclude that the gE-gI complex plays a part, at least in some cell types, in the interactions at the cell surface that allow transmission of the vims from infected to uninfected cells by cell contact. In syncytial strains this leads to uncontrolled membrane fusion. The observation that virions lacking gE or gI enter cells at apparently normal rates reinforces the view that cell-cell fusion is not analogous to the fusion of the virion envelope with the plasma membrane for nucleocapsid entry. It is also apparent that the phenotypes of HSV-1 mutants lacking gI or gE are similar in many respects to those reported for mutants of pseudorabies vims lacking the gE homologue.

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1994-06-01
2024-04-19
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References

  1. Adler R., Glorioso J. C., Cossman J., Levine M. 1978; Possible role of Fc receptors on cells infected and transformed by herpesvirus: escape from immune cytolysis. Infection and Immunity 21:442–447
    [Google Scholar]
  2. Bell S., Cranage M., Borysiewicz L., Minson T. 1990; Induction of immunoglobulin G Fc receptors by recombinant vaccinia viruses expressing glycoprotein E and I of herpes simplex virus type 1. Journal of Virology 64:2181–2186
    [Google Scholar]
  3. Card J. P., Whealy M. E., Robbins A. K., Moore R. Y., Enquist L. W. 1991; Two a-herpesvirus strains are transported differentially in the rodent visual system. Neuron 6:957–969
    [Google Scholar]
  4. Card J. P., Whealy M. E., Robbins A. K., Enquist L. W. 1992; Pseudorabies virus envelope glycoprotein gI influences both neurotropism and virulence during infection of the rat visual system. Journal of Virology 66:3032–3041
    [Google Scholar]
  5. Chatterjee S., Koga J., Whitley R. J. 1989; A role for herpes simplex virus type 1 glycoprotein E in induction of cell fusion. Journal of General Virology 70:2157–2162
    [Google Scholar]
  6. Chen C., Okayama H. 1987; High-efficiency transformation OF mammalian cells by plasmid DNA. Molecular and Cellular Biology 7:2745–2752
    [Google Scholar]
  7. Cross A. M., Hope R. G., Marsden H. S. 1987; Generation and properties of the glycoprotein E-related 32K/34K/35K and 55K/ 57K polypeptides encoded by herpes simplex virus type 1. Journal of General Virology 68:2093–2104
    [Google Scholar]
  8. Davison A. J., Wilkie N. M. 1983; Location and orientation of homologous sequences in the genomes of five herpesviruses. Journal of General Virology 64:1927–1942
    [Google Scholar]
  9. Desai P. J., Schaffer P. A., Minson A. C. 1988; Excretion of non-infectious virus particles lacking glycoprotein H by a temperature-sensitive mutant of herpes simplex virus type 1: evidence that gH is essential for virion infectivity. Journal of General Virology 69:1147–1156
    [Google Scholar]
  10. Forrester A., Farrell J., Wilkinson G., Kaye J., Davis-Poynter N., Minson T. 1992; Construction and properties of a mutant of herpes simplex virus type 1 with glycoprotein H coding sequences deleted. Journal of Virology 66:341–348
    [Google Scholar]
  11. Frame M. C., Purves F. C., McGeoch D. J., Marsden H. S., Leader D. P. 1987; Identification of the herpes simplex virus protein kinase as the product of viral gene US3. Journal of General Virology 68:2699–2704
    [Google Scholar]
  12. Frank I., Friedman H. 1989; A novel function of the herpes simplex virus type 1 Fc receptor: participation in bipolar bridging of antiviral immunoglobulin G. Journal of Virology 63:4479–4488
    [Google Scholar]
  13. Hill T. J., Field H. J., Blyth W. A. 1975; Acute and recurrent infection with herpes simplex virus in the mouse: a model for studying latency and recurrent disease. Journal of General Virology 28:341–353
    [Google Scholar]
  14. Johnson D. C., Frame M. C., Ligas M. W., Cross A. M., Stow N. D. 1988; Herpes simplex virus immunoglobulin G Fc receptor activity depends on a complex of two viral glycoproteins, gE and gI. Journal of Virology 62:1347–1354
    [Google Scholar]
  15. Kunkel T. A. 1985; Rapid and efficient site-specific mutagenesis without phenotypic selection. Proceedings of the National Academy of Sciences U.S.A.: 82488–492
    [Google Scholar]
  16. Ligas M. W., Johnson D. C. 1988; A herpes simplex virus mutant in which glycoprotein D sequences are replaced by β-galactosidase sequences binds to but is unable to penetrate into cells. Journal of Virology 62:1486–1494
    [Google Scholar]
  17. Liu D. X., Cavanagh D., Green P., Inglis S. C. 1991; A polycistronic mRNA specified by the coronavirus infectious bronchitis virus. Virology 184:531–544
    [Google Scholar]
  18. Longnecker R., Roizman B. 1987; Clustering of genes dispensable for growth in culture in the S component of the HSV-1 genome. Science 236:573–576
    [Google Scholar]
  19. Longnecker R., Chatterjee S., Whitley R. J., Roizman B. 1987; Identification of a herpes simplex virus 1 glycoprotein gene within a gene cluster dispensable for growth in cell culture. Proceedings of the National Academy of Sciences U.S.A.: 844303–4307
    [Google Scholar]
  20. McGeoch D. J., Dolan A., Donald S., Rixon F. J. 1985; Sequence determination and genetic content of the short unique region in the genome of herpes simplex type 1. Journal of Molecular Biology 181:1–13
    [Google Scholar]
  21. McGeoch D. J., Dalrymple M. A., Davison A. J., Dolan A., Frame M. C., 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]
  22. Maclean C. A., Efstathiou S., Elliott M. L., Jamieson F. E., McGeoch D. J. 1991; Investigation of herpes simplex virus type 1 genes encoding multiply inserted membrane proteins. Journal of General Virology 72:897–906
    [Google Scholar]
  23. Meignier B., Longnecker R., Mavromara-Nazos P., Sears A. E., Roizman B. 1988; Virulence of and establishment of latency by genetically engineered deletion mutants of herpes simplex virus type 1. Virology 162:251–254
    [Google Scholar]
  24. Minson A. C., Hodgman T. C., Digard P., Hancock D. C., Bell S. E., Buckmaster E. A. 1986; An analysis of the biological properties of monoclonal antibodies against glycoprotein D of herpes simplex virus and identification of amino acid substitutions that confer resistance to neutralization. Journal of General Virology 67:1001–1013
    [Google Scholar]
  25. Neidhardt H., Schroder C. H., Kaerner H. C. 1987; Herpes simplex virus type 1 glycoprotein E is not indispensable for viral infection. Journal of Virology 61:600–603
    [Google Scholar]
  26. Peeters B., Dewind N., Hooisma M., Wagenaar F., Gielkens A., Moormann R. 1992; Pseudorabies virus envelope glycoproteins gp50 and gll are essential for virus penetration, but only gll is involved in membrane fusion. Journal of Virology 66:894–905
    [Google Scholar]
  27. Rajcani J., Herget U., Kaerner H. C. 1990; Spread OF herpes simplex virus (HSV) strains SC 16, ANG ANGpath and its glycC minus and glyE minus mutants in DBA-2 mice. Acta virologica 34:305–320
    [Google Scholar]
  28. Richman D. D., Buckmaster A., Bell S., Hodgman C., Minson A. C. 1986; Identification of a new glycoprotein of herpes simplex virus type 1 and genetic mapping of the gene that codes for it. Journal of Virology 57:647–655
    [Google Scholar]
  29. Roizman B., Batterson W. 1985; Herpesviruses and their replication. In Virology pp 497–526 Fields B. N. Edited by New York: Raven Press;
    [Google Scholar]
  30. Russell W. C. 1962; A sensitive and precise plaque assay for herpesvirus. Nature 195:1028–1029
    [Google Scholar]
  31. Schranz P., Neidhart H., Schroder C. H., Kaerner H. C. 1989; A viable HSV-1 mutant deleted in two non-essential major glycoproteins. Virology 170:273–276
    [Google Scholar]
  32. Watson D. H., Russell W. C., Wildy P. 1963; Electron microscopy particle counts on herpesvirus using the phosphotung-state negative staining technique. Virology 19:250–260
    [Google Scholar]
  33. Watson R. J., Weis J. H., Salstrom J. S., Enquist L. W. 1982; Herpes simplex virus type 1 glycoprotein D gene: nucleotide sequence and expression in Escherichia coli. Science 218:381–384
    [Google Scholar]
  34. Weber P. C., Levine M., Glorioso J. C. 1987; Rapid identification of non-essential genes of herpes simplex virus type 1 by Tn5 mutagenesis. Science 236:576–579
    [Google Scholar]
  35. Zsak L., Zuckermann F., Sugg N., Ben-Porat T. 1992; Glycoprotein gI of pseudorabies virus promotes cell fusion and virus spread via direct cell-to-cell transmission. Journal of Virology 66:2316–2325
    [Google Scholar]
  36. Zuckermann F. A., Mettenleiter T. C., Schreurs C., Sugg N., Ben-Porat T. 1988; Complex between glycoproteins gI and gp63 of pseudorabies: its effects on virus replication. Journal of Virology 62:4622–1626
    [Google Scholar]
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