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PMID: 16789186 Published · ppublish English Journal Article

Frog virus 3 replication: induction and intracellular distribution of polypeptides in infected cells.

Journal of virology ·Vol. 33 ·No. 1 ·1980-01-00 ·Pages 28-51

Elliott RM, Kelly DC

Abstract

The synthesis of the polypeptides induced in frog virus 3-infected cells was analyzed by high-resolution sodium dodecyl sulfate-polyacrylamide gel electrophoresis of radiolabeled cell extracts. Purified frog virus 3 contained 22 polypeptides, with molecular weights in the range 9 x 10(3) to 114 x 10(3). All of the structural and an additional seven nonstructural polypeptides were detected in infected cell lysates. The following three classes of induced polypeptides (under temporal control) were observed in BHK cells: at 2 h, four alpha polypeptides; at 4 h, 13 beta polypeptides; and at 6 h, the remaining 12 gamma polypeptides. The total molecular weight of the infected cell-specific polypeptides (ICPs) was approximately 1.5 x 10(6), which accounts for about 30% of the coding capacity of the viral genome. At least 10 of the induced polypeptides were phosphorylated, but none was glycosylated or sulfated. No evidence for posttranslation cleavage of polypeptides in pulse-chase and inhibition experiments was obtained. The synthesis of gamma polypeptides was not detected in the presence of the viral DNA replication inhibitors cytosine arabinoside and hydroxyurea, but halogenated nucleotides apparently had no effect. These results suggest that alpha and beta polypeptides are "early" events and that detectable gamma polypeptide synthesis is dependent on the production of progeny viral DNA. The regulation of frog virus 3-induced polypeptide synthesis in infected BHK cells was examined by using inhibitors of protein and RNA synthesis and amino acid analogs. These experiments confirmed the existence of three sequentially synthesized, coordinately regulated classes of polypeptides, designated alpha, beta, and gamma. The requirements for the synthesis of each class were as follows: (i) alpha polypeptides did not require previous cell protein synthesis; (ii) beta polypeptides required a prescribed period of alpha polypeptide synthesis and new mRNA synthesis; and (iii) gamma polypeptides required prior synthesis of functional beta polypeptides and new mRNA synthesis. alpha polypeptide synthesis was controlled by beta and gamma polypeptides, and alpha and beta polypeptides were involved in the suppression of host cell polypeptide synthesis. Indirect evidence was obtained for the temporal regulation of frog virus 3 transcription. The intracellular distribution of virus-induced polypeptides in cells infected with frog virus 3 was investigated by using standard cell fractionation techniques. Most of the 29 induced polypeptides were bound to structures within the nucleus, and only two ICPs were not associated with purified nuclei. When isolated nuclei were incubated in an infected cell cytoplasm preparation, all of the nuclear ICPs were incorporated in vitro. All of the ICPs were associated with ribosomal and rough endoplasmic reticulum fractions of infected cells, and a number of ICPs were found on smooth intracellular membranes. Most of the ICPs were also associated with purified plasma membranes of infected cells, and one polypeptide (ICP 58) was highly enriched in the plasma membrane compared with whole cell extracts or purified frog virus 3.

Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Elliott R M
Natural Environment Research Council, Unit of Invertebrate Virology, and Department of Forestry, University of Oxford, Oxford, OX1 3UB, United Kingdom.
Kelly D C
References (77)
77 references, click to expand
  1. Effects of camptothecin on RNA synthesis in L-1210 cells.
    Biochim Biophys Acta. 1973 Jul 27;312(4):716-21 PMID: 4795244
  2. RNA synthesis in cells infected with an icosahedral cytoplasmic deoxyvirus (frog virus 3).
    J Virol. 1974 May;13(5):1083-92 PMID: 4824712
  3. The polypeptides of influenza virus. VII. Synthesis of the hemagglutinin.
    Virology. 1973 May;53(1):92-106 PMID: 4735937
  4. Viruses of amphibia.
    Curr Top Microbiol Immunol. 1969;50:107-37 PMID: 4984803
  5. Camptothecin inhibits macromolecular synthesis in mammalian cells but not in isolated mitochondria of E. coli.
    Biochem Biophys Res Commun. 1970 Dec 24;41(6):1412-20 PMID: 4992220
  6. Viruses and renal carcinoma of Rana pipiens. IV. Nucleic acid synthesis in frog virus 3-infected BHK 21/13 cells.
    Virology. 1967 Nov;33(3):491-502 PMID: 4964866
  7. Macromolecular synthesis in cells infected with frog virus 3. V. The absence of polyadenylic acid in the majority of frog virus 3-specific mRNA species.
    Virology. 1976 Sep;73(2):543-7 PMID: 960576
  8. Macromolecular synthesis in cells infected by frog virus 3. IV. Regulation of virus-specific RNA synthesis.
    Virology. 1976 Apr;70(2):399-410 PMID: 944493
  9. Frog virus 3 replication: electron microscope observations on the terminal stages of infection in chronically infected cell cultures.
    J Gen Virol. 1975 Sep;28(3):391-407 PMID: 1236936
  10. Preparation and properties of an inhibitory extract from frog virus 3 particles.
    J Virol. 1973 May;11(5):694-701 PMID: 4736109
  11. Proteins specified by herpes simplex virus. XI. Identification and relative molar rates of synthesis of structural and nonstructural herpes virus polypeptides in the infected cell.
    J Virol. 1973 Dec;12(6):1347-65 PMID: 4357511
  12. Lipids of plasma membranes of monkey and hamster kidney cells and of parainfluenza virions grown in these cells.
    Virology. 1969 Jun;38(2):255-68 PMID: 4306590
  13. Regulation of herpesvirus macromolecular synthesis. I. Cascade regulation of the synthesis of three groups of viral proteins.
    J Virol. 1974 Jul;14(1):8-19 PMID: 4365321
  14. Intracellular degradation of HeLa and adenovirus type 2 DNA induced by camptothecin.
    Biochem Biophys Res Commun. 1971 Nov 5;45(3):723-7 PMID: 5128180
  15. Effects of temperature on frog polyhedral cytoplasmic deoxyribovirus multiplication: thermosensitivity of initiation, replication, and encapsidation of viral DNA.
    Virology. 1970 Nov;42(3):576-89 PMID: 5529978
  16. Effect of gamma-rays on infectivity and capacity for nuclear-associated and cytoplasmic DNA replication of FV 3 in chick embryo fibroblasts.
    Radiat Res. 1970 Oct;44(1):178-86 PMID: 5528821
  17. Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
    Nature. 1970 Aug 15;227(5259):680-5 PMID: 5432063
  18. Selective inhibition of a nuclear RNA polymerase in cells infected with frog virus.
    Nature. 1970 Jul 18;227(5255):294-5 PMID: 5428203
  19. The selective interruption of nucleolar RNA synthesis in HeLa cells by cordycepin.
    J Cell Biol. 1969 May;41(2):510-20 PMID: 5783871
  20. Viruses and renal carcinoma of Rana pipiens. VI. Interrelationships of macromolecular synthesis and infectious virus production in frog virus 3-infected BHK 21/13 cells.
    Virology. 1968 Feb;34(2):240-9 PMID: 5643637
  21. Electron microscopic studies of detergent-treated HeLa cell nuclei.
    J Mol Biol. 1966 May;17(1):131-5 PMID: 5961145
  22. Viruses and renal carcinoma of Rana pipiens. II. Ultrastructural studies and sequential development of virus isolated from normal and tumor tissue.
    Virology. 1966 May;29(1):149-56 PMID: 5936627
  23. Chemical and enzymatic characteristics of cytoplasmic membranes of poliovirus-infected HeLa cells.
    Virology. 1972 Jan;47(1):30-8 PMID: 4333575
  24. Cleavage of viral precursor proteins in vivo and in vitro.
    J Virol. 1972 Oct;10(4):751-9 PMID: 4343549
  25. Proteins of polyhedal cytoplasmic deoxyvirus. II. Nucleotide phosphohydrolase activity associated with frog virus 3.
    J Virol. 1971 May;7(5):619-24 PMID: 4327890
  26. The effect of frog virus 3 on the biological activity of various RNA viruses.
    J Gen Virol. 1973 Oct;21:201-4 PMID: 4357374
  27. Phosphorylation of animal virus proteins by a virion protein kinase.
    J Virol. 1973 Sep;12(3):511-22 PMID: 4355852
  28. The role of cytoplasmic membranes in poliovirus biosynthesis.
    Virology. 1970 Sep;42(1):100-11 PMID: 4318974
  29. Synthesis of proteins in cells infected with herpesvirus. IX. Sulfated proteins.
    Virology. 1973 Sep;55(1):94-102 PMID: 4269636
  30. Macromolecular synthesis in cells infected by frog virus 3. I. Virus-specific protein synthesis and its regulation.
    Virology. 1974 Jul;60(1):237-50 PMID: 4276315
  31. Poly (A) sequences of vaccinia virus messenger RNA: nature, mode of addition and function during translation in vitra and in vivo.
    Virology. 1975 Jan;63(1):1-14 PMID: 1078615
  32. Sulfated components of enveloped viruses.
    J Virol. 1975 Oct;16(4):859-66 PMID: 170420
  33. Vaccinia virus polypeptide synthesis: sequential appearance and stability of pre- and post-replicative polypeptides.
    J Gen Virol. 1974 Dec;25(3):433-44 PMID: 4216621
  34. Vaccinia virus replication in enucleate BSC-1 cells: particle production and synthesis of viral DNA and proteins.
    J Virol. 1974 Feb;13(2):488-93 PMID: 4204192
  35. Structure and synthesis of bacteriophage PM2, with particular emphasis on the viral lipid bilayer.
    Curr Top Microbiol Immunol. 1974;(68):107-59 PMID: 4614956
  36. Purification and properties of a virion protein kinase.
    J Biol Chem. 1976 May 25;251(10):3176-84 PMID: 5456
  37. Impairment of host cell ribonucleic acid polymerase II after infection with frog virus 3.
    J Virol. 1972 Apr;9(4):698-700 PMID: 4553680
  38. High resolution two-dimensional electrophoresis of proteins.
    J Biol Chem. 1975 May 25;250(10):4007-21 PMID: 236308
  39. Lipid composition of frog virus 3.
    Virology. 1974 Sep;61(1):256-69 PMID: 4472187
  40. Budding of frog virus 3 studied by immunological and cytochemical methods in electron microscopy.
    Intervirology. 1974;3(5-6):305-18 PMID: 4475038
  41. Synthesis of proteins in cells infected with herpesvirus. XI. Sulfated, structural glycoproteins.
    Virology. 1976 Apr;70(2):561-3 PMID: 178100
  42. Characterization of a virion protein kinase as a virus-specified enzyme.
    J Biol Chem. 1976 May 25;251(10):3185-90 PMID: 178663
  43. Virus-specific RNA and DNA in nuclei of cells infected with fowlpox virus.
    Virology. 1976 Jan;69(1):1-14 PMID: 174286
  44. A film detection method for tritium-labelled proteins and nucleic acids in polyacrylamide gels.
    Eur J Biochem. 1974 Jul 1;46(1):83-8 PMID: 4850204
  45. Vaccinia virus infection of HeLa cells. I. Synthesis of vaccinia DNA in host cell nuclei.
    J Virol. 1975 Feb;15(2):305-15 PMID: 123010
  46. Frog virus 3 deoxyribonucleic acid.
    J Gen Virol. 1974 Aug;24(2):339-48 PMID: 4852099
  47. [New data on the structure and the budding of FV3 (frog virus 3) (author's transl)].
    Ann Microbiol (Paris). 1975 Dec;126(4):447-60 PMID: 1241755
  48. Frog virus 3 replication: electron microscope observations on the sequence of infection in chick embryo fibroblasts.
    J Gen Virol. 1975 Jan;26(1):71-86 PMID: 1168241
  49. Proteins of polyhedral cytoplasmic deoxyviruses. I. The structural polypeptides of FV 3 .
    Virology. 1971 Jul;45(1):200-7 PMID: 5165250
  50. Inhibition of host-specific DNA and RNA synthesis in KB cells following infection with frog virus 3.
    J Gen Virol. 1971 Sep;12(3):293-301 PMID: 5165854
  51. Viruses and renal carcinoma of Rana pipiens. I. The isolation and properties of virus from normal and tumor tissue.
    Virology. 1966 May;29(1):133-48 PMID: 5936626
  52. Phosphonoacetic Acid inhibition of frog virus 3 replication.
    J Virol. 1980 Jan;33(1):539-42 PMID: 16789189
  53. Frog Virus 3 Replication: Analysis of Structural and Nonstructural Polypeptides in Infected BHK Cells by Acidic and Basic Two-Dimensional Gel Electrophoresis.
    J Virol. 1980 Jan;33(1):18-27 PMID: 16789185
  54. Effects of glucosamine, 2-deoxyglucose, and tunicamycin on glycosylation, sulfation, and assembly of influenza viral proteins.
    Virology. 1978 Feb;84(2):303-19 PMID: 622804
  55. A viral-induced protein in the nuclei of cells infected with fowlpox virus.
    Virology. 1978 Jan;84(1):236-41 PMID: 202082
  56. On the association of virus proteins with the nuclei of cells infected with herpes simplex virus.
    J Gen Virol. 1978 Jun;39(3):519-29 PMID: 207819
  57. Requirement of cell nucleus for African swine fever virus replication in Vero cells.
    J Virol. 1977 Mar;21(3):902-5 PMID: 403300
  58. Serological relationships of an iridescent virus (type 25) recently isolated from Tipula sp. with two other iridescent viruses (types 2 and 22).
    Virology. 1977 Sep;81(2):309-16 PMID: 408970
  59. Macromolecular synthesis in cells infected by frog virus 3. IX. Two temporal classes of early viral RNA.
    Virology. 1978 May 15;86(2):443-53 PMID: 566482
  60. Macromolecular synthesis in cells infected by frog virus 3. VII. Transcriptional and post-transcriptional regulation of virus gene expression.
    J Virol. 1977 Oct;24(1):326-42 PMID: 561861
  61. Macromolecular synthesis in cells infected by frog virus 3. VI. Frog virus 3 replication is dependent on the cell nucleus.
    J Virol. 1977 Feb;21(2):802-5 PMID: 556785
  62. Macromolecular synthesis in cells infected by frog virus 3. VIII. The nucleus is a site of frog virus 3 DNA and RNA synthesis.
    Virology. 1978 Jan;84(1):32-50 PMID: 619492
  63. 3'-Terminal addition to HeLa cell nuclear and cytoplasmic poly (A).
    J Mol Biol. 1977 Jun 15;113(1):219-35 PMID: 881735
  64. Polypeptide phosphorylation in adenovirus-infected cells.
    J Gen Virol. 1977 Jan;34(1):19-35 PMID: 833577
  65. Effect of non-permissive temperature on protein synthesis of frog virus 3 infected cells.
    Boll Ist Sieroter Milan. 1976 Sep 30;55(4):267-71 PMID: 1016578
  66. Virus-associated nucleases: location and properties of deoxyribonucleases and ribonucleases in purified frog virus 3.
    J Virol. 1972 Aug;10(2):202-10 PMID: 4342238
  67. Deoxyribonucleic acid synthesis in FV-3-infected mammalian cells.
    J Virol. 1968 Oct;2(10):1006-15 PMID: 5749374
  68. DNA-dependent RNA polymerase activity associated with subviral particles of polyhedral cytoplasmic dexoyribovirus.
    J Virol. 1974 Aug;14(2):231-8 PMID: 4858785
  69. Fibrillar bodies in hepatocyte nuclei during the course of the toxic hepatitis produced by frog virus 3 in mice.
    J Ultrastruct Res. 1975 Feb;50(2):167-73 PMID: 163907
  70. Proteins specified by herpes simplex virus. Staining and radiolabeling properties of B capsid and virion proteins in polyacrylamide gels.
    J Virol. 1974 Jan;13(1):155-65 PMID: 4129836
  71. The biochemistry of icosahedral cytoplasmic deoxyviruses.
    Curr Top Microbiol Immunol. 1974;(68):77-105 PMID: 4375019
  72. Icosahedral cytoplasmic deoxyriboviruses.
    J Gen Virol. 1973 Jun;20:Suppl:17-41 PMID: 4583798
  73. Early virus protein synthesis in vaccinia virus-infected cells.
    J Gen Virol. 1973 May;19(2):201-6 PMID: 4268458
  74. Vaccinia as a model for membrane biogenesis.
    Virology. 1968 Aug;35(4):564-83 PMID: 5677800
  75. Lipid and protein arrangement in bacteriophage PM2.
    Nat New Biol. 1971 Feb 17;229(7):197-201 PMID: 5281012
  76. Inhibition of cleavage of large poliovirus-specific precursor proteins in infected HeLa cells by inhibitors of proteolytic enzymes.
    J Virol. 1972 Oct;10(4):880-4 PMID: 4343551
  77. The lipid content of two iridescent viruses.
    J Gen Virol. 1973 Nov;21(2):417-23 PMID: 4357753
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
1980-01-00
Pages
28-51
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC288521
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