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J Gen Virol 74 (1993), 2679-2690; DOI 10.1099/0022-1317-74-12-2679
© 1993 Society for General Microbiology

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Modification of discrete nuclear domains induced by herpes simplex virus type 1 immediate early gene 1 product (ICP0)

G. G. Maul1, H. H. Guldner2 and J. G. Spivack1

The1 Wistar Institute of Anatomy and Biology, 3601 Spruce Street, Philadelphia, Pennsylvania 19104-4268, U.S.A.
and2 Heinrich Pette Institut, Hamburg, Germany

The outcome of herpes simplex virus type 1 (HSV-1) infection depends upon the interplay of both host and viral factors. During lytic infection, HSV-1 causes a loss of immunofluorescent staining of discrete nuclear domains (ND10). This elimination of the host's ND10 staining occurs under conditions that allow only HSV-1 immediate early viral gene expression. Western blot analysis indicates that the loss of ND10 staining is due to ND10 redistribution, rather than protein degradation or turnover. When deletion mutants of all of the HSV-1 immediate early genes were tested, only infection with an immediate early gene 1 product (ICP0) deletion mutant, dl1403, was unable to eliminate ND10 antigen staining. Also, ICP0 transiently colocalized with ND10 antigens, after which ND10 antigens became undetectable. At late times during infection with dl1403, the host ND10 antigens were retained in virus-induced structures which were never observed during wild-type HSV-1 infection. These results suggested that ICP0 may be directly involved in the modification of the host nuclear domain. Infection with an adenovirus recombinant that expressed ICP0 demonstrated that in the absence of other HSV-1 proteins ICP0 was sufficient for the change in nuclear distribution of host antigens located at ND10. We postulate that the trans-activation function of ICP0 during viral replication may be mediated by replacing, modifying or reorganizing nuclear host factors.

Received 5 May 1993; accepted 3 August 1993.


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J. Biol. Chem.Home page
M. Trost, G. Kochs, and O. Haller
Characterization of a Novel Serine/Threonine Kinase Associated with Nuclear Bodies
J. Biol. Chem., March 15, 2000; 275(10): 7373 - 7377.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
K. L. Mossman, H. A. Saffran, and J. R. Smiley
Herpes Simplex Virus ICP0 Mutants Are Hypersensitive to Interferon
J. Virol., February 15, 2000; 74(4): 2052 - 2056.
[Abstract] [Full Text]


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J. Gen. Virol.Home page
C. M. Preston
Repression of viral transcription during herpes simplex virus latency
J. Gen. Virol., January 1, 2000; 81(1): 1 - 19.
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J. Virol.Home page
K. L. Mossman and J. R. Smiley
Truncation of the C-Terminal Acidic Transcriptional Activation Domain of Herpes Simplex Virus VP16 Renders Expression of the Immediate-Early Genes Almost Entirely Dependent on ICP0
J. Virol., December 1, 1999; 73(12): 9726 - 9733.
[Abstract] [Full Text]


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Proc. Natl. Acad. Sci. USAHome page
Y. H. Kim, C. Y. Choi, and Y. Kim
Covalent modification of the homeodomain-interacting protein kinase 2 (HIPK2) by the ubiquitin-like protein SUMO-1
PNAS, October 26, 1999; 96(22): 12350 - 12355.
[Abstract] [Full Text] [PDF]


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JCBHome page
A. M. Ishov, A. G. Sotnikov, D. Negorev, O. V. Vladimirova, N. Neff, T. Kamitani, E. T.H. Yeh, J. F. Strauss III, and G. G. Maul
Pml Is Critical for Nd10 Formation and Recruits the Pml-Interacting Protein Daxx to This Nuclear Structure When Modified by Sumo-1
J. Cell Biol., October 18, 1999; 147(2): 221 - 234.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
W. E. Hobbs II and N. A. DeLuca
Perturbation of Cell Cycle Progression and Cellular Gene Expression as a Function of Herpes Simplex Virus ICP0
J. Virol., October 1, 1999; 73(10): 8245 - 8255.
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J. Virol.Home page
F. D. Goodrum and D. A. Ornelles
Roles for the E4 orf6, orf3, and E1B 55-Kilodalton Proteins in Cell Cycle-Independent Adenovirus Replication
J. Virol., September 1, 1999; 73(9): 7474 - 7488.
[Abstract] [Full Text]


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Proc. Natl. Acad. Sci. USAHome page
C. Van Sant, Y. Kawaguchi, and B. Roizman
A single amino acid substitution in the cyclin D binding domain of the infected cell protein no. 0 abrogates the neuroinvasiveness of herpes simplex virus without affecting its ability to replicate
PNAS, July 6, 1999; 96(14): 8184 - 8189.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
S. Müller and A. Dejean
Viral Immediate-Early Proteins Abrogate the Modification by SUMO-1 of PML and Sp100 Proteins, Correlating with Nuclear Body Disruption
J. Virol., June 1, 1999; 73(6): 5137 - 5143.
[Abstract] [Full Text]


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J. Biol. Chem.Home page
T. Sternsdorf, K. Jensen, B. Reich, and H. Will
The Nuclear Dot Protein Sp100, Characterization of Domains Necessary for Dimerization, Subcellular Localization, and Modification by Small Ubiquitin-like Modifiers
J. Biol. Chem., April 30, 1999; 274(18): 12555 - 12566.
[Abstract] [Full Text] [PDF]


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JEMHome page
D. A. Leib, T. E. Harrison, K. M. Laslo, M. A. Machalek, N. J. Moorman, and H. W. Virgin
Interferons Regulate the Phenotype of Wild-type and Mutant Herpes Simplex Viruses In Vivo
J. Exp. Med., February 15, 1999; 189(4): 663 - 672.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
C. S. Swindle, N. Zou, B. A. Van Tine, G. M. Shaw, J. A. Engler, and L. T. Chow
Human Papillomavirus DNA Replication Compartments in a Transient DNA Replication System
J. Virol., February 1, 1999; 73(2): 1001 - 1009.
[Abstract] [Full Text]


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J. Virol.Home page
R. D. Everett, M. Meredith, and A. Orr
The Ability of Herpes Simplex Virus Type 1 Immediate-Early Protein Vmw110 To Bind to a Ubiquitin-Specific Protease Contributes to Its Roles in the Activation of Gene Expression and Stimulation of Virus Replication
J. Virol., January 1, 1999; 73(1): 417 - 426.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
J. Parkinson, S. P. Lees-Miller, and R. D. Everett
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., January 1, 1999; 73(1): 650 - 657.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
J. Burkham, D. M. Coen, and S. K. Weller
ND10 Protein PML Is Recruited to Herpes Simplex Virus Type 1 Prereplicative Sites and Replication Compartments in the Presence of Viral DNA Polymerase
J. Virol., December 1, 1998; 72(12): 10100 - 10107.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
M. D. Petroski and E. K. Wagner
Purification and Characterization of a Cellular Protein That Binds to the Downstream Activation Sequence of the Strict Late UL38 Promoter of Herpes Simplex Virus Type 1
J. Virol., October 1, 1998; 72(10): 8181 - 8190.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
R. D. Everett, P. Freemont, H. Saitoh, M. Dasso, A. Orr, M. Kathoria, and J. Parkinson
The Disruption of ND10 during Herpes Simplex Virus Infection Correlates with the Vmw110- and Proteasome-Dependent Loss of Several PML Isoforms
J. Virol., August 1, 1998; 72(8): 6581 - 6591.
[Abstract] [Full Text] [PDF]


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Mol. Cell. Biol.Home page
J.-H. Ahn, E. J. Brignole III, and G. S. Hayward
Disruption of PML Subnuclear Domains by the Acidic IE1 Protein of Human Cytomegalovirus Is Mediated through Interaction with PML and May Modulate a RING Finger-Dependent Cryptic Transactivator Function of PML
Mol. Cell. Biol., August 1, 1998; 18(8): 4899 - 4913.
[Abstract] [Full Text]


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J. Virol.Home page
R. Jordan, J. Pepe, and P. A. Schaffer
Characterization of a Nerve Growth Factor-Inducible Cellular Activity That Enhances Herpes Simplex Virus Type 1 Gene Expression and Replication of an ICP0 Null Mutant in Cells of Neural Lineage
J. Virol., July 1, 1998; 72(7): 5373 - 5382.
[Abstract] [Full Text] [PDF]


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ScienceHome page
A. I. Lamond and W. C. Earnshaw
Structure and Function in the Nucleus
Science, April 24, 1998; 280(5363): 547 - 553.
[Abstract] [Full Text]


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J. Virol.Home page
L. A. Samaniego, L. Neiderhiser, and N. A. DeLuca
Persistence and Expression of the Herpes Simplex Virus Genome in the Absence of Immediate-Early Proteins
J. Virol., April 1, 1998; 72(4): 3307 - 3320.
[Abstract] [Full Text] [PDF]


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J. Virol.Home page
K. L. B. Borden, E. J. Campbell Dwyer, and M. S. Salvato
An Arenavirus RING (Zinc-Binding) Protein Binds the Oncoprotein Promyelocyte Leukemia Protein (PML) and Relocates PML Nuclear Bodies to the Cytoplasm
J. Virol., January 1, 1998; 72(1): 758 - 766.
[Abstract] [Full Text] [PDF]


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JCBHome page
T. Sternsdorf, K. Jensen, and H. Will
Evidence for Covalent Modification of the Nuclear Dot-associated Proteins PML and Sp100 by PIC1/SUMO-1
J. Cell Biol., December 29, 1997; 139(7): 1621 - 1634.
[Abstract] [Full Text] [PDF]


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JCBHome page
A. M. Ishov, R. M. Stenberg, and G. G. Maul
Human Cytomegalovirus Immediate Early Interaction with Host Nuclear Structures: Definition of an Immediate Transcript Environment
J. Cell Biol., July 14, 1997; 138(1): 5 - 16.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
D. B. Bloch, S. M. de la Monte, P. Guigaouri, A. Filippov, and K. D. Bloch
Identification and Characterization of a Leukocyte-specific Component of the Nuclear Body
J. Biol. Chem., November 15, 1996; 271(46): 29198 - 29204.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
T. Grotzinger, K. Jensen, and H. Will
The Interferon (IFN)-stimulated Gene Sp100 Promoter Contains an IFN-gamma Activation Site and an Imperfect IFN-stimulated Response Element Which Mediate Type I IFN Inducibility
J. Biol. Chem., October 11, 1996; 271(41): 25253 - 25260.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
P. L. Sheridan, M. Schorpp, M. L. Voz, and K. A. Jones
Cloning of an SNF2/SWI2-related Protein That Binds Specifically to the SPH Motifs of the SV40 Enhancer and to the HIV-1 Promoter
J. Biol. Chem., March 3, 1995; 270(9): 4575 - 4587.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
P. Lomonte, K. F. Sullivan, and R. D. Everett
Degradation of Nucleosome-associated Centromeric Histone H3-like Protein CENP-A Induced by Herpes Simplex Virus Type 1 Protein ICP0
J. Biol. Chem., February 16, 2001; 276(8): 5829 - 5835.
[Abstract] [Full Text] [PDF]


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Proc. Natl. Acad. Sci. USAHome page
Y. Kawaguchi, M. Tanaka, A. Yokoymama, G. Matsuda, K. Kato, H. Kagawa, K. Hirai, and B. Roizman
Herpes simplex virus 1 alpha regulatory protein ICP0 functionally interacts with cellular transcription factor BMAL1
PNAS, February 13, 2001; 98(4): 1877 - 1882.
[Abstract] [Full Text] [PDF]




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