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PMID: 1309912 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Second-site homologous recombination in Epstein-Barr virus: insertion of type 1 EBNA 3 genes in place of type 2 has no effect on in vitro infection.

Journal of virology ·Vol. 66 ·No. 2 ·1992-02-00 ·Pages 780-9

Tomkinson B, Kieff E

Abstract

This study was undertaken to develop a general strategy for the introduction of mutations into specific sites in the Epstein-Barr virus (EBV) genome. Previous approaches were limited by the need for physical linkage of the transfected EBV DNA fragment to a positive selection marker. In our experiments, a positive selection marker was introduced into one site in the EBV genome and a distant, nonlinked, marker was introduced into another site. Each marker was on a large EBV DNA fragment and was inserted into the genome by transfection into cells carrying a resident EBV genome. The resident EBV genome was simultaneously induced to replicate by using a cotransfected expression plasmid for the EBV immediate-early transactivator, Z (J. Countryman, H. Jenson, R. Seibl, H. Wolf, and G. Miller, J. Virol. 61:3672-3679, 1987; G. Miller, M. Rabson, and L. Heston, J. Virol. 50:174-182, 1984). Eleven percent of the resultant EBV genomes which incorporated the positive selection marker also incorporated the nonlinked marker. Both markers uniformly targeted the homologous EBV genome site. In this way novel EBV recombinants were constructed in which the EBV type 1 EBNA 3A, EBV type 1 EBNA 3A and 3B, or EBV type 1 EBNA 3A, 3B, and 3C genes were introduced into a largely type 2 EBV genome, replacing the corresponding type 2 gene(s). No difference was observed in primary B-lymphocyte growth transformation, in latent EBV gene expression, or in spontaneous lytic EBV gene expression. These new recombinants should be useful for ongoing analyses of the type specificity of the immune response.

MeSH Terms
Amino Acid Sequence Antigens, Viral/genetics B-Lymphocytes/immunology Base Sequence Cell Line Cell Transformation, Viral Cells, Cultured Cosmids DNA, Viral/genetics Epstein-Barr Virus Nuclear Antigens Genes, Viral Genetic Markers Genome, Viral Genotype Herpesvirus 4, Human/genetics,immunology Humans Immunophenotyping Molecular Sequence Data Mutagenesis, Site-Directed Oligodeoxyribonucleotides Plasmids Polymerase Chain Reaction Recombination, Genetic Transfection
Chemicals
Antigens, Viral DNA, Viral Epstein-Barr Virus Nuclear Antigens Genetic Markers Oligodeoxyribonucleotides
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Tomkinson B
Department of Microbiology, Harvard University, Boston, Massachusetts 02115.
Kieff E
References (40)
40 references, click to expand
  1. Epstein-Barr virus latent membrane protein (LMP1) and nuclear proteins 2 and 3C are effectors of phenotypic changes in B lymphocytes: EBNA-2 and LMP1 cooperatively induce CD23.
    J Virol. 1990 May;64(5):2309-18 PMID: 2157887
  2. Homologous recombination in hybridoma cells: dependence on time and fragment length.
    Mol Cell Biol. 1990 Sep;10(9):4466-72 PMID: 2117699
  3. Genetic analysis of immortalizing functions of Epstein-Barr virus in human B lymphocytes.
    Nature. 1989 Aug 3;340(6232):393-7 PMID: 2547164
  4. Epstein-Barr virus nuclear protein 2 is a key determinant of lymphocyte transformation.
    Proc Natl Acad Sci U S A. 1989 Dec;86(23):9558-62 PMID: 2556717
  5. Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cells.
    Cell. 1987 Nov 6;51(3):503-12 PMID: 2822260
  6. Randomly picked cosmid clones overlap the pyrB and oriC gap in the physical map of the E. coli chromosome.
    Nucleic Acids Res. 1988 Mar 25;16(6):2601-12 PMID: 2834694
  7. Anatomy of herpes simplex virus DNA. IX. Apparent exclusion of some parental DNA arrangements in the generation of intertypic (HSV-1 X HSV-2) recombinants.
    J Virol. 1977 Oct;24(1):231-48 PMID: 198577
  8. BamHI E region of the Epstein-Barr virus genome encodes three transformation-associated nuclear proteins.
    Proc Natl Acad Sci U S A. 1988 Feb;85(4):995-9 PMID: 2829223
  9. Regeneration of herpesviruses from molecularly cloned subgenomic fragments.
    J Virol. 1988 Jun;62(6):2191-5 PMID: 2835520
  10. Transformation by Epstein-Barr virus requires DNA sequences in the region of BamHI fragments Y and H.
    J Virol. 1985 Aug;55(2):286-97 PMID: 2991556
  11. Genetic engineering of novel genomes of large DNA viruses.
    Science. 1985 Sep 20;229(4719):1208-14 PMID: 2994215
  12. A putative transforming gene of Jijoye virus differs from that of Epstein-Barr virus prototypes.
    Virology. 1985 Mar;141(2):221-34 PMID: 3002016
  13. DNA sequence and expression of the B95-8 Epstein-Barr virus genome.
    Nature. 1984 Jul 19-25;310(5974):207-11 PMID: 6087149
  14. U2 region of Epstein-Barr virus DNA may encode Epstein-Barr nuclear antigen 2.
    Proc Natl Acad Sci U S A. 1984 Dec;81(23):7632-6 PMID: 6209719
  15. Non-immortalizing P3J-HR-1 Epstein-Barr virus: a deletion mutant of its transforming parent, Jijoye.
    J Virol. 1982 Dec;44(3):834-44 PMID: 6294333
  16. Identification of a rare Epstein-Barr virus variant that enhances early antigen expression in Raji cells.
    Proc Natl Acad Sci U S A. 1983 May;80(9):2762-6 PMID: 6302703
  17. Detection of circular and linear herpesvirus DNA molecules in mammalian cells by gel electrophoresis.
    J Virol. 1984 Apr;50(1):248-54 PMID: 6321792
  18. Establishment and characterization of an Epstein-Barr virus (EBC)-negative lymphoblastoid B cell line (BJA-B) from an exceptional, EBV-genome-negative African Burkitt's lymphoma.
    Biomedicine. 1975 Jul;22(4):276-84 PMID: 179629
  19. BHRF1, the Epstein-Barr virus gene with homology to Bc12, is dispensable for B-lymphocyte transformation and virus replication.
    J Virol. 1991 Nov;65(11):5991-6000 PMID: 1656084
  20. An Epstein-Barr virus-specific cytotoxic T-cell epitope present on A- and B-type transformants.
    J Virol. 1990 Aug;64(8):3974-6 PMID: 1695259
  21. Epstein-Barr virus (EBV) recombinants: use of positive selection markers to rescue mutants in EBV-negative B-lymphoma cells.
    J Virol. 1991 Apr;65(4):1701-9 PMID: 1848303
  22. Epstein-Barr virus nuclear protein 2 mutations define essential domains for transformation and transactivation.
    J Virol. 1991 May;65(5):2545-54 PMID: 1850028
  23. Human cytotoxic T-cell responses against Epstein-Barr virus nuclear antigens demonstrated by using recombinant vaccinia viruses.
    Proc Natl Acad Sci U S A. 1990 Apr;87(8):2906-10 PMID: 2158098
  24. Transcription stimulates homologous recombination in mammalian cells.
    Mol Cell Biol. 1990 Sep;10(9):4837-45 PMID: 2167441
  25. Elevated recombination rates in transcriptionally active DNA.
    Cell. 1989 Feb 24;56(4):619-30 PMID: 2645056
  26. Polymorphic proteins encoded within BZLF1 of defective and standard Epstein-Barr viruses disrupt latency.
    J Virol. 1987 Dec;61(12):3672-9 PMID: 2824806
  27. A fifth Epstein-Barr virus nuclear protein (EBNA3C) is expressed in latently infected growth-transformed lymphocytes.
    J Virol. 1988 Apr;62(4):1330-8 PMID: 2831394
  28. Efficient homologous recombination of linear DNA substrates after injection into Xenopus laevis oocytes.
    Mol Cell Biol. 1986 Jun;6(6):2053-61 PMID: 2946937
  29. Epstein-Barr virus-encoded protein found in plasma membranes of transformed cells.
    J Virol. 1985 Sep;55(3):710-20 PMID: 2991591
  30. Influence of the Epstein-Barr virus nuclear antigen EBNA 2 on the growth phenotype of virus-transformed B cells.
    J Virol. 1987 May;61(5):1310-7 PMID: 3033261
  31. Epstein-Barr virus RNA VII: size and direction of transcription of virus-specified cytoplasmic RNAs in a transformed cell line.
    Proc Natl Acad Sci U S A. 1981 Mar;78(3):1930-4 PMID: 6112750
  32. New Epstein-Barr virus variants from cellular subclones of P3J-HR-1 Burkitt lymphoma.
    Nature. 1982 Jan 14;295(5845):160-3 PMID: 6276755
  33. Epstein-Barr virus with heterogeneous DNA disrupts latency.
    J Virol. 1984 Apr;50(1):174-82 PMID: 6321789
  34. Biochemical transfer of single-copy eucaryotic genes using total cellular DNA as donor.
    Cell. 1978 Jul;14(3):725-31 PMID: 210957
  35. Physical mapping of herpes simplex virus-induced polypeptides.
    J Virol. 1978 Nov;28(2):624-42 PMID: 214583
  36. The Epstein-Barr virus nuclear protein encoded by the leader of the EBNA RNAs is important in B-lymphocyte transformation.
    J Virol. 1991 Dec;65(12):6826-37 PMID: 1658376
  37. An Epstein-Barr virus-specific cytotoxic T cell epitope in EBV nuclear antigen 3 (EBNA 3).
    J Exp Med. 1990 Jan 1;171(1):345-9 PMID: 1688611
  38. Recombinant Epstein-Barr virus with small RNA (EBER) genes deleted transforms lymphocytes and replicates in vitro.
    Proc Natl Acad Sci U S A. 1991 Feb 15;88(4):1546-50 PMID: 1847527
  39. Early events in Epstein-Barr virus infection of human B lymphocytes.
    Virology. 1991 Apr;181(2):595-608 PMID: 1849678
  40. Epstein-Barr virus types 1 and 2 differ in their EBNA-3A, EBNA-3B, and EBNA-3C genes.
    J Virol. 1990 Sep;64(9):4084-92 PMID: 2166806
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
1992-02-00
Pages
780-9
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC240778
Subset
IM
Grants
NCI NIH HHS · CA00449 · United States
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