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PMID: 12796511 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Relationship of herpes simplex virus genome configuration to productive and persistent infections.

Jackson SA, DeLuca NA

Abstract

Infection of susceptible cells by herpes simplex virus (HSV) can lead to productive infection or to latency, where the genomes persist in the nuclei of peripheral neurons in a quiescent state. Using the HSV strain d109, which does not express any viral genes and thus establishes a quiescent state in most cells, we observed that a fraction of genomes circularized upon infection. The expression of infected cell protein (ICP) 0, which is known to be involved in reactivation from latency and the promotion of productive infection, inhibited the formation of circular genomes. Circular genomes were not observed upon infection of fully permissive cells by wild-type virus, in either the presence or absence of viral DNA replication. However, productive infection in the absence of ICP0 resulted in the accumulation of a subpopulation of circular genomes. The proportion of circular genomes formed during infection with an ICP0 mutant was greater at low multiplicity of infection, a condition in which ICP0 mutants replicate poorly. In the complete absence of viral gene expression, it was found that only circular genomes persisted in cells. These results suggest that circularization of the HSV genome may not occur early in the productive phase of wild-type HSV infection, but rather during establishment of a quiescent state or latency, providing a possible strategy for long-term persistence. Additionally, the circularization and possible fate of HSV genomes are regulated by an activity of ICP0.

MeSH Terms
Animals Blotting, Southern Cell Line Chlorocebus aethiops Genome, Viral Green Fluorescent Proteins Herpes Simplex/genetics,pathology Humans Immediate-Early Proteins/genetics,physiology Luminescent Proteins/metabolism Microscopy, Phase-Contrast Recombinant Fusion Proteins/metabolism Simplexvirus/genetics Tumor Cells, Cultured Ubiquitin-Protein Ligases Vero Cells
Chemicals
Immediate-Early Proteins Luminescent Proteins Recombinant Fusion Proteins Green Fluorescent Proteins Ubiquitin-Protein Ligases Vmw110 protein, Human herpesvirus 1
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Jackson Sara A
Department of Molecular Genetics and Biochemistry, University of Pittsburgh School of Medicine, Pittsburgh, PA 15261, USA.
DeLuca Neal A
References (48)
48 references, click to expand
  1. Stability and circularization of herpes simplex virus type 1 genomes in quiescently infected PC12 cultures.
    J Gen Virol. 2002 Dec;83(Pt 12):2943-50 PMID: 12466470
  2. Anatomy of herpes simplex virus DNA. II. Size, composition, and arrangement of inverted terminal repetitions.
    J Virol. 1975 Jun;15(6):1487-97 PMID: 167196
  3. Inverted repetitions in the chromosome of herpes simplex virus.
    Cold Spring Harb Symp Quant Biol. 1975;39 Pt 2:667-78 PMID: 169022
  4. Anatomy of herpes simplex virus DNA: evidence for four populations of molecules that differ in the relative orientations of their long and short components.
    Proc Natl Acad Sci U S A. 1975 Nov;72(11):4243-7 PMID: 172900
  5. Appearance in vivo of single-stranded complementary ends on parental herpesvirus DNA.
    Proc Natl Acad Sci U S A. 1976 Aug;73(8):2674-8 PMID: 183205
  6. A partial denaturation map of herpes simplex virus type 1 DNA: evidence for inversions of the unique DNA regions.
    J Gen Virol. 1976 Oct;33(1):125-33 PMID: 185323
  7. Herpes simplex virus resistance and sensitivity to phosphonoacetic acid.
    J Virol. 1977 Feb;21(2):584-600 PMID: 189089
  8. Structure of the joint region and the termini of the DNA of herpes simplex virus type 1.
    J Virol. 1978 Aug;27(2):374-87 PMID: 211266
  9. The structure and isomerization of herpes simplex virus genomes.
    Cell. 1979 Mar;16(3):481-94 PMID: 222462
  10. BamI, KpnI, and SalI restriction enzyme maps of the DNAs of herpes simplex virus strains Justin and F: occurrence of heterogeneities in defined regions of the viral DNA.
    J Virol. 1979 Nov;32(2):429-41 PMID: 228068
  11. Early events in herpes simplex virus type 1 infection: photosensitivity of fluorescein isothiocyanate-treated virions.
    Proc Natl Acad Sci U S A. 1981 Feb;78(2):912-6 PMID: 6262783
  12. Detection of HSV-1 genome in central nervous system of latently infected mice.
    Nature. 1983 Apr 7;302(5908):523-5 PMID: 6300686
  13. Detection of circular and linear herpesvirus DNA molecules in mammalian cells by gel electrophoresis.
    J Virol. 1984 Apr;50(1):248-54 PMID: 6321792
  14. A noninverting genome of a viable herpes simplex virus 1: presence of head-to-tail linkages in packaged genomes and requirements for circularization after infection.
    J Virol. 1985 Feb;53(2):587-95 PMID: 2982037
  15. Inversion and circularization of the varicella-zoster virus genome.
    J Virol. 1985 Oct;56(1):194-200 PMID: 2993650
  16. Isolation and characterization of deletion mutants of herpes simplex virus type 1 in the gene encoding immediate-early regulatory protein ICP4.
    J Virol. 1985 Nov;56(2):558-70 PMID: 2997476
  17. Detection of herpes simplex virus-specific DNA sequences in latently infected mice and in humans.
    J Virol. 1986 Feb;57(2):446-55 PMID: 3003377
  18. Isolation and characterization of a herpes simplex virus type 1 mutant containing a deletion within the gene encoding the immediate early polypeptide Vmw110.
    J Gen Virol. 1986 Dec;67 ( Pt 12):2571-85 PMID: 3025339
  19. Human neuron-committed teratocarcinoma NT2 cell line has abnormal ND10 structures and is poorly infected by herpes simplex virus type 1.
    J Virol. 2001 Apr;75(8):3819-31 PMID: 11264371
  20. The infected cell protein 0 of herpes simplex virus 1 dynamically interacts with proteasomes, binds and activates the cdc34 E2 ubiquitin-conjugating enzyme, and possesses in vitro E3 ubiquitin ligase activity.
    Proc Natl Acad Sci U S A. 2001 Jul 17;98(15):8815-20 PMID: 11447293
  21. Herpes simplex virus type 1 immediate-early protein ICP0 and is isolated RING finger domain act as ubiquitin E3 ligases in vitro.
    J Virol. 2002 Jan;76(2):841-50 PMID: 11752173
  22. Expression of herpes simplex virus ICP0 inhibits the induction of interferon-stimulated genes by viral infection.
    J Virol. 2002 Mar;76(5):2180-91 PMID: 11836395
  23. PML NBs associate with the hMre11 complex and p53 at sites of irradiation induced DNA damage.
    Oncogene. 2002 Mar 7;21(11):1633-40 PMID: 11896594
  24. Adenovirus oncoproteins inactivate the Mre11-Rad50-NBS1 DNA repair complex.
    Nature. 2002 Jul 18;418(6895):348-52 PMID: 12124628
  25. Deletion mutants in the gene encoding the herpes simplex virus type 1 immediate-early protein ICP0 exhibit impaired growth in cell culture.
    J Virol. 1987 Mar;61(3):829-39 PMID: 3027408
  26. Immediate-early regulatory gene mutants define different stages in the establishment and reactivation of herpes simplex virus latency.
    J Virol. 1989 Feb;63(2):759-68 PMID: 2536101
  27. During latency, herpes simplex virus type 1 DNA is associated with nucleosomes in a chromatin structure.
    J Virol. 1989 Feb;63(2):943-7 PMID: 2536115
  28. A herpes simplex virus type 1 mutant containing a deletion within immediate early gene 1 is latency-competent in mice.
    J Gen Virol. 1989 Sep;70 ( Pt 9):2501-6 PMID: 2550578
  29. Varicella-zoster virus open reading frame 61 protein is functionally homologous to herpes simplex virus type 1 ICP0.
    J Virol. 1992 Dec;66(12):7303-8 PMID: 1366099
  30. Demonstration of circularization of herpes simplex virus DNA following infection using pulsed field gel electrophoresis.
    Virology. 1993 Nov;197(1):459-62 PMID: 8212585
  31. The herpes simplex virus type 1 regulatory protein ICP0 enhances virus replication during acute infection and reactivation from latency.
    J Virol. 1993 Dec;67(12):7501-12 PMID: 8230470
  32. Modification of discrete nuclear domains induced by herpes simplex virus type 1 immediate early gene 1 product (ICP0).
    J Gen Virol. 1993 Dec;74 ( Pt 12):2679-90 PMID: 8277273
  33. Deletion of the E4 region of the genome produces adenovirus DNA concatemers.
    Proc Natl Acad Sci U S A. 1994 Jan 4;91(1):153-7 PMID: 8278357
  34. HSV-1 IE protein Vmw110 causes redistribution of PML.
    EMBO J. 1994 Nov 1;13(21):5062-9 PMID: 7957072
  35. Pseudorabies virus EPO is functionally homologous to varicella-zoster virus ORF61 protein and herpes simplex virus type 1 ICPO.
    Virology. 1995 May 10;209(1):281-3 PMID: 7747481
  36. Quiescent viral genomes in human fibroblasts after infection with herpes simplex virus type 1 Vmw65 mutants.
    J Gen Virol. 1995 Jun;76 ( Pt 6):1417-31 PMID: 7782770
  37. Functional interactions between herpes simplex virus immediate-early proteins during infection: gene expression as a consequence of ICP27 and different domains of ICP4.
    J Virol. 1995 Sep;69(9):5705-15 PMID: 7637016
  38. Targeting of adenovirus E1A and E4-ORF3 proteins to nuclear matrix-associated PML bodies.
    J Cell Biol. 1995 Oct;131(1):45-56 PMID: 7559785
  39. Nuclear domain 10 as preexisting potential replication start sites of herpes simplex virus type-1.
    Virology. 1996 Mar 1;217(1):67-75 PMID: 8599237
  40. Attenuation of DNA-dependent protein kinase activity and its catalytic subunit by the herpes simplex virus type 1 transactivator ICP0.
    J Virol. 1996 Nov;70(11):7471-7 PMID: 8892865
  41. The herpes simplex virus immediate-early protein ICP0 affects transcription from the viral genome and infected-cell survival in the absence of ICP4 and ICP27.
    J Virol. 1997 Jun;71(6):4614-25 PMID: 9151855
  42. Repression of gene expression upon infection of cells with herpes simplex virus type 1 mutants impaired for immediate-early protein synthesis.
    J Virol. 1997 Oct;71(10):7807-13 PMID: 9311867
  43. Persistence and expression of the herpes simplex virus genome in the absence of immediate-early proteins.
    J Virol. 1998 Apr;72(4):3307-20 PMID: 9525658
  44. DNA end-joining: from yeast to man.
    Trends Biochem Sci. 1998 Oct;23(10):394-8 PMID: 9810228
  45. Herpes simplex virus type 1 immediate-early protein vmw110 induces the proteasome-dependent degradation of the catalytic subunit of DNA-dependent protein kinase.
    J Virol. 1999 Jan;73(1):650-7 PMID: 9847370
  46. Perturbation of cell cycle progression and cellular gene expression as a function of herpes simplex virus ICP0.
    J Virol. 1999 Oct;73(10):8245-55 PMID: 10482575
  47. Efficient activation of viral genomes by levels of herpes simplex virus ICP0 insufficient to affect cellular gene expression or cell survival.
    J Virol. 2001 Apr;75(7):3391-403 PMID: 11238865
  48. Herpes simplex virus type 1 ICP0 protein does not accumulate in the nucleus of primary neurons in culture.
    J Virol. 2000 Nov;74(21):10132-41 PMID: 11024142
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2003-06-24
Epub
2003-00-09
Pages
7871-6
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC164680
Subset
IM
Grants
NIDDK NIH HHS · P01 DK044935 · United States
NIAID NIH HHS · R01 AI044821 · United States
NIAID NIH HHS · AI44812 · United States
NIDDK NIH HHS · DK44935 · United States
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