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Volumn 5, Issue 9, 2013, Pages

Poxvirus DNA replication

Author keywords

[No Author keywords available]

Indexed keywords

DNA BINDING PROTEIN; VIRUS DNA;

EID: 84883830496     PISSN: None     EISSN: 19430264     Source Type: Journal    
DOI: 10.1101/cshperspect.a010199     Document Type: Article
Times cited : (238)

References (109)
  • 2
    • 79952164514 scopus 로고    scopus 로고
    • Cidofovir activity against poxvirus infections
    • Andrei G., Snoeck R. 2010. Cidofovir activity against poxvirus infections. Viruses 2: 2803-2830.
    • (2010) Viruses , vol.2 , pp. 2803-2830
    • Andrei, G.1    Snoeck, R.2
  • 3
    • 0034664813 scopus 로고    scopus 로고
    • Holliday junction resolvases and related nucleases: Identification of new families, phyletic distribution and evolutionary trajectories
    • Aravind L., Makarova KS, Koonin EV. 2000. Holliday junction resolvases and related nucleases: Identification of new families, phyletic distribution and evolutionary trajectories. Nucleic Acids Res 28: 3417-3432.
    • (2000) Nucleic Acids Res , vol.28 , pp. 3417-3432
    • Aravind, L.1    Makarova, K.S.2    Koonin, E.V.3
  • 4
    • 0027048617 scopus 로고
    • Vaccinia virus gene B1R encodes a 34-kDa serine/threonine protein kinase that localizes in cytoplasmic factories and is packaged into virions
    • Banham A., Smith GL. 1992. Vaccinia virus gene B1R encodes a 34-kDa serine/threonine protein kinase that localizes in cytoplasmic factories and is packaged into virions. Virology 191: 803-812.
    • (1992) Virology , vol.191 , pp. 803-812
    • Banham, A.1    Smith, G.L.2
  • 5
    • 0020491170 scopus 로고
    • Sequence homologies of diverse length tandem repetitions near ends of vaccinia virus genome suggest unequal crossing over
    • Baroudy B. M, Moss B. 1982. Sequence homologies of diverse length tandem repetitions near ends of vaccinia virus genome suggest unequal crossing over. Nucleic Acids Res 10: 5673-5679.
    • (1982) Nucleic Acids Res , vol.10 , pp. 5673-5679
    • Baroudy, B.M.1    Moss, B.2
  • 6
    • 0020037277 scopus 로고
    • Incompletely base-paired flip-flop terminal loops link the two DNA strands of the vaccinia virus genome into one uninterrupted polynucleotide chain
    • Baroudy B. M, Venkatesan S, Moss B. 1982a. Incompletely base-paired flip-flop terminal loops link the two DNA strands of the vaccinia virus genome into one uninterrupted polynucleotide chain. Cell 28: 315-324.
    • (1982) Cell , vol.28 , pp. 315-324
    • Baroudy, B.M.1    Venkatesan, S.2    Moss, B.3
  • 8
    • 0028892986 scopus 로고
    • Vaccinia virus gene H5R encodes a protein that is phosphorylated by the multisubstrate vaccinia virus B1R protein kinase
    • Beaud G., Beaud R, Leader DP. 1995. Vaccinia virus gene H5R encodes a protein that is phosphorylated by the multisubstrate vaccinia virus B1R protein kinase. J Virol 69: 1819-1826.
    • (1995) J Virol , vol.69 , pp. 1819-1826
    • Beaud, G.1    Beaud, R.2    Leader, D.P.3
  • 9
    • 0842347704 scopus 로고    scopus 로고
    • Members of a novel family of mammalian protein kinases complement the DNA-negative phenotype of a vaccinia virus ts mutant defective in the B1 kinase
    • Boyle K. A, Traktman P. 2004. Members of a novel family of mammalian protein kinases complement the DNA-negative phenotype of a vaccinia virus ts mutant defective in the B1 kinase. J Virol 78: 1992-2005.
    • (2004) J Virol , vol.78 , pp. 1992-2005
    • Boyle, K.A.1    Traktman, P.2
  • 10
    • 33846086914 scopus 로고    scopus 로고
    • Biochemical and genetic analysis of the vaccinia virus D5 protein: Multimerization-dependent ATPase activity is required to support viral DNA replication
    • Boyle K. A, Arps L, Traktman P. 2007. Biochemical and genetic analysis of the vaccinia virus D5 protein: Multimerization-dependent ATPase activity is required to support viral DNA replication. J Virol 81: 844-859.
    • (2007) J Virol , vol.81 , pp. 844-859
    • Boyle, K.A.1    Arps, L.2    Traktman, P.3
  • 11
    • 79960147916 scopus 로고    scopus 로고
    • Evaluation of the role of the vaccinia virus uracil DNA glycosylase and A20 proteins as intrinsic components of the DNA polymerase holoenzyme
    • Boyle K. A, Stanitsa ES, Greseth MD, Lindgren JK, Traktman P. 2011. Evaluation of the role of the vaccinia virus uracil DNA glycosylase and A20 proteins as intrinsic components of the DNA polymerase holoenzyme. J Biol Chem 286: 24702-24713.
    • (2011) J Biol Chem , vol.286 , pp. 24702-24713
    • Boyle, K.A.1    Stanitsa, E.S.2    Greseth, M.D.3    Lindgren, J.K.4    Traktman, P.5
  • 12
    • 0000105298 scopus 로고
    • The initiation of vaccinia infection
    • Cairns J. 1960. The initiation of vaccinia infection. Virology 11: 603-623.
    • (1960) Virology , vol.11 , pp. 603-623
    • Cairns, J.1
  • 13
    • 0031800615 scopus 로고    scopus 로고
    • DNA packaging mutant: Repression of the vaccinia virus A32 gene results in noninfectious, DNA-deficient, spherical, enveloped particles
    • Cassetti M. C, Merchlinsky M, Wolffe EJ, Weisberg AS, Moss B. 1998. DNA packaging mutant: Repression of the vaccinia virus A32 gene results in noninfectious, DNA-deficient, spherical, enveloped particles. J Virol 72: 5769-5780.
    • (1998) J Virol , vol.72 , pp. 5769-5780
    • Cassetti, M.C.1    Merchlinsky, M.2    Wolffe, E.J.3    Weisberg, A.S.4    Moss, B.5
  • 14
    • 0018669194 scopus 로고
    • Purification and properties of the deoxyribonucleic acid polymerase induced by vaccinia virus
    • Challberg M. D, Englund PT. 1979. Purification and properties of the deoxyribonucleic acid polymerase induced by vaccinia virus. J Biol Chem 254: 7812-7819.
    • (1979) J Biol Chem , vol.254 , pp. 7812-7819
    • Challberg, M.D.1    Englund, P.T.2
  • 15
    • 0025091655 scopus 로고
    • A DNA ligase gene in the Copenhagen strain of vaccinia virus is nonessential for viral replication and recombination
    • Colinas R. J, Goebel SJ, Davis SW, Johnson GP, Norton EK, Paoletti E. 1990. A DNA ligase gene in the Copenhagen strain of vaccinia virus is nonessential for viral replication and recombination. Virology 179: 267-275.
    • (1990) Virology , vol.179 , pp. 267-275
    • Colinas, R.J.1    Goebel, S.J.2    Davis, S.W.3    Johnson, G.P.4    Norton, E.K.5    Paoletti, E.6
  • 16
    • 33747052534 scopus 로고    scopus 로고
    • DNA cleavage by the A22R resolvase of vaccinia virus
    • Culyba M. J, Harrison JE, Hwang Y, Bushman FD. 2006. DNA cleavage by the A22R resolvase of vaccinia virus. Virology 352: 466-476.
    • (2006) Virology , vol.352 , pp. 466-476
    • Culyba, M.J.1    Harrison, J.E.2    Hwang, Y.3    Bushman, F.D.4
  • 18
    • 0141594578 scopus 로고    scopus 로고
    • Poxvirus DNA topoisomerase knockout mutant exhibits decreased infectivity associated with reduced early transcription
    • Da Fonseca F, Moss B. 2003. Poxvirus DNA topoisomerase knockout mutant exhibits decreased infectivity associated with reduced early transcription. Proc Nat Acad Sci 100: 11291-11296.
    • (2003) Proc Nat Acad Sci , vol.100 , pp. 11291-11296
    • da Fonseca, F.1    Moss, B.2
  • 20
    • 0027507406 scopus 로고
    • Acidic C terminus of vaccinia virusDNA-binding protein interacts with ribonucleotide reductase
    • Davis R. E, Mathews CK. 1993. Acidic C terminus of vaccinia virusDNA-binding protein interacts with ribonucleotide reductase. Proc Natl Acad Sci 90: 745-749.
    • (1993) Proc Natl Acad Sci , vol.90 , pp. 745-749
    • Davis, R.E.1    Mathews, C.K.2
  • 21
    • 0022534786 scopus 로고
    • Sequence-nonspecific replication of transfected plasmid DNA in poxvirus-infected cells
    • DeLange AM, McFadden G. 1986. Sequence-nonspecific replication of transfected plasmid DNA in poxvirus-infected cells. Proc Natl Acad Sci 83: 614-618.
    • (1986) Proc Natl Acad Sci , vol.83 , pp. 614-618
    • DeLange, A.M.1    McFadden, G.2
  • 22
    • 0023235156 scopus 로고
    • Efficient resolution of replicated poxvirus telomeres to native hairpin structures requires two inverted symmetrical copies of a core target DNA sequence
    • DeLange AM, McFadden G. 1987. Efficient resolution of replicated poxvirus telomeres to native hairpin structures requires two inverted symmetrical copies of a core target DNA sequence. J Virol 61: 1957-1963.
    • (1987) J Virol , vol.61 , pp. 1957-1963
    • DeLange, A.M.1    McFadden, G.2
  • 23
    • 0022539945 scopus 로고
    • Replication and resolution of cloned poxvirus telomeres in vivo generates linear minichromosomes with intact viral hairpin termini
    • Delange A. M, Reddy M, Scraba D, Upton C, McFadden G. 1986. Replication and resolution of cloned poxvirus telomeres in vivo generates linear minichromosomes with intact viral hairpin termini. J Virol 59: 249-259.
    • (1986) J Virol , vol.59 , pp. 249-259
    • Delange, A.M.1    Reddy, M.2    Scraba, D.3    Upton, C.4    McFadden, G.5
  • 24
    • 0034785376 scopus 로고    scopus 로고
    • Vaccinia virus telomeres: Interaction with the viral I1, I6, and K4 proteins
    • DeMasi J, Du S, Lennon D, Traktman P. 2001. Vaccinia virus telomeres: Interaction with the viral I1, I6, and K4 proteins. J Virol 75: 10090-10105.
    • (2001) J Virol , vol.75 , pp. 10090-10105
    • DeMasi, J.1    Du, S.2    Lennon, D.3    Traktman, P.4
  • 25
    • 0037213268 scopus 로고    scopus 로고
    • Vaccinia virus uracil DNA glycosylase has an essential role in DNA synthesis that is independent of its glycosylase activity: Catalytic site mutations reduce virulence but not virus replication in cultured cells
    • De Silva FS, Moss B. 2003. Vaccinia virus uracil DNA glycosylase has an essential role in DNA synthesis that is independent of its glycosylase activity: Catalytic site mutations reduce virulence but not virus replication in cultured cells. J Virol 77: 159-166.
    • (2003) J Virol , vol.77 , pp. 159-166
    • de Silva, F.S.1    Moss, B.2
  • 26
    • 19744365911 scopus 로고    scopus 로고
    • Origin-independent plasmid replication occurs in vaccinia virus cytoplasmic factories and requires all five known poxvirus replication factors
    • De Silva FS, Moss B. 2005. Origin-independent plasmid replication occurs in vaccinia virus cytoplasmic factories and requires all five known poxvirus replication factors. Virol J 2: 23.
    • (2005) Virol J , vol.2 , pp. 23
    • de Silva, F.S.1    Moss, B.2
  • 28
    • 57049132029 scopus 로고    scopus 로고
    • Products and substrate/ template usage of vaccinia virus DNA primase
    • De Silva FS, Paran N, Moss B. 2009. Products and substrate/ template usage of vaccinia virus DNA primase. Virology 383: 136-141.
    • (2009) Virology , vol.383 , pp. 136-141
    • de Silva, F.S.1    Paran, N.2    Moss, B.3
  • 29
    • 0023645316 scopus 로고
    • Cruciform extrusion in plasmids bearing the replicative intermediate configuration of a poxvirus telomere
    • Dickie P, Morgan AR, McFadden G. 1987. Cruciform extrusion in plasmids bearing the replicative intermediate configuration of a poxvirus telomere. J Mol Biol 196: 541-558.
    • (1987) J Mol Biol , vol.196 , pp. 541-558
    • Dickie, P.1    Morgan, A.R.2    McFadden, G.3
  • 30
    • 0034062061 scopus 로고    scopus 로고
    • The punctate sites of accumulation of vaccinia virus early proteins are precursors of sites of viral DNA synthesis
    • Domi A., Beaud G. 2000. The punctate sites of accumulation of vaccinia virus early proteins are precursors of sites of viral DNA synthesis. J Gen Virol 81: 1231-1235.
    • (2000) J Gen Virol , vol.81 , pp. 1231-1235
    • Domi, A.1    Beaud, G.2
  • 31
    • 0029796546 scopus 로고    scopus 로고
    • Vaccinia virus DNA replication: Two hundred base pairs of telomeric sequence confer optimal replication efficiency on minichromosome templates
    • Du S., Traktman P. 1996. Vaccinia virus DNA replication: Two hundred base pairs of telomeric sequence confer optimal replication efficiency on minichromosome templates. Proc Natl Acad Sci 93: 9693-9698.
    • (1996) Proc Natl Acad Sci , vol.93 , pp. 9693-9698
    • Du, S.1    Traktman, P.2
  • 32
    • 0022457141 scopus 로고
    • Homology between DNA polymerases of poxviruses, herpesviruses, and adenoviruses: Nucleotide sequence of the vaccinia virus DNA polymerase gene
    • Earl P. L, Jones EV, Moss B. 1986. Homology between DNA polymerases of poxviruses, herpesviruses, and adenoviruses: Nucleotide sequence of the vaccinia virus DNA polymerase gene. Proc Natl Acad Sci 83: 3659-3663.
    • (1986) Proc Natl Acad Sci , vol.83 , pp. 3659-3663
    • Earl, P.L.1    Jones, E.V.2    Moss, B.3
  • 33
    • 0017723993 scopus 로고
    • Replication of vaccinia DNA in mouse L cells. I. In vivo DNA synthesis
    • Esteban M., Holowczak JA. 1977. Replication of vaccinia DNA in mouse L cells. I. In vivo DNA synthesis. Virology 78: 57-75.
    • (1977) Virology , vol.78 , pp. 57-75
    • Esteban, M.1    Holowczak, J.A.2
  • 34
    • 0027099689 scopus 로고
    • Characterization of vaccinia virus DNA replication mutants with lesions in the D5 gene
    • Evans E., Traktman P. 1992. Characterization of vaccinia virus DNA replication mutants with lesions in the D5 gene. Chromosoma 102: S72-S82.
    • (1992) Chromosoma , vol.102
    • Evans, E.1    Traktman, P.2
  • 35
    • 0029149630 scopus 로고
    • The vaccinia virus D5 protein, which is required for DNA replication, is a nucleic acid-independent nucleotide triphosphatase
    • Evans E., Klemperer N, Ghosh R, Traktman P. 1995. The vaccinia virus D5 protein, which is required for DNA replication, is a nucleic acid-independent nucleotide triphosphatase. J Virol 69: 5353-5361.
    • (1995) J Virol , vol.69 , pp. 5353-5361
    • Evans, E.1    Klemperer, N.2    Ghosh, R.3    Traktman, P.4
  • 36
    • 66149100382 scopus 로고    scopus 로고
    • The 30-to-50 exonuclease activity of vaccinia virus DNA polymerase is essential and plays a role in promoting virus genetic recombination
    • Gammon D. B, Evans DH. 2009. The 30-to-50 exonuclease activity of vaccinia virus DNA polymerase is essential and plays a role in promoting virus genetic recombination. J Virol 83: 4236-4250.
    • (2009) J Virol , vol.83 , pp. 4236-4250
    • Gammon, D.B.1    Evans, D.H.2
  • 37
    • 0034988814 scopus 로고    scopus 로고
    • Repression of vaccinia virus Holliday junction resolvase inhibits processing of viral DNA into unit-length genomes
    • Garcia A. D, Moss B. 2001. Repression of vaccinia virus Holliday junction resolvase inhibits processing of viral DNA into unit-length genomes. J Virol 75: 6460-6471.
    • (2001) J Virol , vol.75 , pp. 6460-6471
    • Garcia, A.D.1    Moss, B.2
  • 38
    • 0034255274 scopus 로고    scopus 로고
    • Bacterialtype DNA Holliday junction resolvases in eukaryotic viruses
    • Garcia A. D, Aravind L, Koonin EV, Moss B. 2000. Bacterialtype DNA Holliday junction resolvases in eukaryotic viruses. Proc Natl Acad Sci 97: 8926-8931.
    • (2000) Proc Natl Acad Sci , vol.97 , pp. 8926-8931
    • Garcia, A.D.1    Aravind, L.2    Koonin, E.V.3    Moss, B.4
  • 39
    • 33744954317 scopus 로고    scopus 로고
    • Quartenary structure and cleavage specificity of a poxvirus Holliday junction resolvase
    • Garcia A. D, Otero J, Lebowitz J, Schuck P, Moss B. 2006. Quartenary structure and cleavage specificity of a poxvirus Holliday junction resolvase. J Biol Chem 281: 11618-11626.
    • (2006) J Biol Chem , vol.281 , pp. 11618-11626
    • Garcia, A.D.1    Otero, J.2    Lebowitz, J.3    Schuck, P.4    Moss, B.5
  • 40
    • 0016201144 scopus 로고
    • Characterization and localization of the naturally occurring cross-links in vaccinia virus DNA
    • Geshelin P., Berns KI. 1974. Characterization and localization of the naturally occurring cross-links in vaccinia virus DNA. J Mol Biol 88: 785-796.
    • (1974) J Mol Biol , vol.88 , pp. 785-796
    • Geshelin, P.1    Berns, K.I.2
  • 41
    • 0024462161 scopus 로고
    • Viral proteins containing the purine NTP-binding sequence pattern
    • Gorbalenya A. E, Koonin EV. 1989. Viral proteins containing the purine NTP-binding sequence pattern. Nucleic Acids Res 17: 8413-8440.
    • (1989) Nucleic Acids Res , vol.17 , pp. 8413-8440
    • Gorbalenya, A.E.1    Koonin, E.V.2
  • 42
    • 0034758868 scopus 로고    scopus 로고
    • Structure and assembly of intracellular mature vaccinia virus: Thin-section analyses
    • Griffiths G., Roos N, Schleich S, Krijnse Locker J. 2001. Structure and assembly of intracellular mature vaccinia virus: Thin-section analyses. J Virol 75: 11056-11070.
    • (2001) J Virol , vol.75 , pp. 11056-11070
    • Griffiths, G.1    Roos, N.2    Schleich, S.3    Krijnse Locker, J.4
  • 43
    • 0141677711 scopus 로고    scopus 로고
    • Genetic analysis of the vaccinia virus I6 telomere-binding protein uncovers a key role in genome encapsidation
    • Grubisha O., Traktman P. 2003. Genetic analysis of the vaccinia virus I6 telomere-binding protein uncovers a key role in genome encapsidation. J Virol 77: 10929-10942.
    • (2003) J Virol , vol.77 , pp. 10929-10942
    • Grubisha, O.1    Traktman, P.2
  • 44
    • 17644382303 scopus 로고    scopus 로고
    • Enzymatic processing of replication and recombination intermediates by the vaccinia virus DNA polymerase
    • Hamilton M. D, Evans DH. 2005. Enzymatic processing of replication and recombination intermediates by the vaccinia virus DNA polymerase. Nucleic Acids Res 33: 2259-2268.
    • (2005) Nucleic Acids Res , vol.33 , pp. 2259-2268
    • Hamilton, M.D.1    Evans, D.H.2
  • 46
    • 0030971775 scopus 로고    scopus 로고
    • Construction of a vaccinia virus deficient in the essential DNA repair enzyme uracil DNA glycosylase by acomplementing cell line
    • Holzer G., Falkner FG. 1997. Construction of a vaccinia virus deficient in the essential DNA repair enzyme uracil DNA glycosylase by acomplementing cell line. JVirol 71: 4997-5002.
    • (1997) JVirol , vol.71 , pp. 4997-5002
    • Holzer, G.1    Falkner, F.G.2
  • 47
    • 80655146251 scopus 로고    scopus 로고
    • Molecular characterization of the host defense activity of the barrier to autointegration factor against vaccinia virus
    • Ibrahim N., Wicklund A, Wiebe MS. 2011. Molecular characterization of the host defense activity of the barrier to autointegration factor against vaccinia virus. J Virol 85: 11588-11600.
    • (2011) J Virol , vol.85 , pp. 11588-11600
    • Ibrahim, N.1    Wicklund, A.2    Wiebe, M.S.3
  • 48
    • 0035139061 scopus 로고    scopus 로고
    • Role of vaccinia virus A20R protein in DNA replication: Construction and characterization of temperature-sensitive mutants
    • Ishii K, Moss B. 2001. Role of vaccinia virus A20R protein in DNA replication: Construction and characterization of temperature-sensitive mutants. J Virol 75: 1656-1663.
    • (2001) J Virol , vol.75 , pp. 1656-1663
    • Ishii, K.1    Moss, B.2
  • 49
    • 0036943963 scopus 로고    scopus 로고
    • Mapping interaction sites of the A20R protein component of the vaccinia virusDNA replication complex
    • Ishii K, Moss B. 2002. Mapping interaction sites of the A20R protein component of the vaccinia virusDNA replication complex. Virology 303: 232-239.
    • (2002) Virology , vol.303 , pp. 232-239
    • Ishii, K.1    Moss, B.2
  • 50
    • 0035167322 scopus 로고    scopus 로고
    • Common origin of four diverse families of large eukaryotic DNA viruses
    • Iyer L. M, Aravind L, Koonin EV. 2001. Common origin of four diverse families of large eukaryotic DNA viruses. J Virol 75: 11720-11734.
    • (2001) J Virol , vol.75 , pp. 11720-11734
    • Iyer, L.M.1    Aravind, L.2    Koonin, E.V.3
  • 51
    • 22444435033 scopus 로고    scopus 로고
    • Origin and evolution of the archaeo-eukaryotic primase superfamily and related palm-domain proteins: Structural insights and new members
    • Iyer L. M, Koonin EV, Leipe DD, Aravind L. 2005. Origin and evolution of the archaeo-eukaryotic primase superfamily and related palm-domain proteins: Structural insights and new members. Nucleic Acids Res 33: 3875-3896.
    • (2005) Nucleic Acids Res , vol.33 , pp. 3875-3896
    • Iyer, L.M.1    Koonin, E.V.2    Leipe, D.D.3    Aravind, L.4
  • 52
    • 33645076499 scopus 로고    scopus 로고
    • Evolutionary genomics of nucleo-cytoplasmic largeDNAviruses
    • Iyer L. M, Balaji S, Koonin EV, Aravind L. 2006. Evolutionary genomics of nucleo-cytoplasmic largeDNAviruses. Virus Res 117: 156-184.
    • (2006) Virus Res , vol.117 , pp. 156-184
    • Iyer, L.M.1    Balaji, S.2    Koonin, E.V.3    Aravind, L.4
  • 53
    • 0021331435 scopus 로고
    • Mapping of the vaccinia virus DNA polymerase gene by marker rescue and cell-free translation of selected mRNA
    • Jones E. V, Moss B. 1984. Mapping of the vaccinia virus DNA polymerase gene by marker rescue and cell-free translation of selected mRNA. J Virol 49: 72-77.
    • (1984) J Virol , vol.49 , pp. 72-77
    • Jones, E.V.1    Moss, B.2
  • 54
    • 34848865040 scopus 로고    scopus 로고
    • Colocalization of transcription and translation within cytoplasmic poxvirus factories coordinates viral expression and subjugates host functions
    • Katsafanas G. C, Moss B. 2007. Colocalization of transcription and translation within cytoplasmic poxvirus factories coordinates viral expression and subjugates host functions. Cell Host Microbe 2: 221-228.
    • (2007) Cell Host Microbe , vol.2 , pp. 221-228
    • Katsafanas, G.C.1    Moss, B.2
  • 55
    • 0024329572 scopus 로고
    • Vaccinia virus encodes a polypeptide with DNA ligase activity
    • Kerr S. M, Smith GL. 1989. Vaccinia virus encodes a polypeptide with DNA ligase activity. Nucleic Acids Res 17: 9039-9050.
    • (1989) Nucleic Acids Res , vol.17 , pp. 9039-9050
    • Kerr, S.M.1    Smith, G.L.2
  • 56
    • 0026017350 scopus 로고
    • Vaccinia virus DNA ligase is nonessential for virus replication: Recovery of plasmids from virus-infected cells
    • Kerr S. M, Smith GL. 1991. Vaccinia virus DNA ligase is nonessential for virus replication: Recovery of plasmids from virus-infected cells. Virology 180: 625-632.
    • (1991) Virology , vol.180 , pp. 625-632
    • Kerr, S.M.1    Smith, G.L.2
  • 57
    • 0026061401 scopus 로고
    • Vaccinia DNA ligase complements Saccharomyces cerevisiae Cdc9, localizes in cytoplasmic factories and affects virulence and virus sensitivity to DNA damaging agents
    • Kerr S. M, Johnston LH, Odell M, Duncan SA, Law KM, Smith G.L. 1991. Vaccinia DNA ligase complements Saccharomyces cerevisiae Cdc9, localizes in cytoplasmic factories and affects virulence and virus sensitivity to DNA damaging agents. EMBO J 10: 4343-4350.
    • (1991) EMBO J , vol.10 , pp. 4343-4350
    • Kerr, S.M.1    Johnston, L.H.2    Odell, M.3    Duncan, S.A.4    Law, K.M.5    Smith, G.L.6
  • 58
    • 0035198155 scopus 로고    scopus 로고
    • The A20R protein is a stoichiometric component of the processive form of vaccinia virus DNA polymerase
    • Klemperer N., McDonaldW, Boyle K, Unger B, Traktman P. 2001. The A20R protein is a stoichiometric component of the processive form of vaccinia virus DNA polymerase. J Virol 75: 12298-12307.
    • (2001) J Virol , vol.75 , pp. 12298-12307
    • Klemperer, N.1    McDonald, W.2    Boyle, K.3    Unger, B.4    Traktman, P.5
  • 59
    • 0027413261 scopus 로고
    • Gene A32 protein product of vaccinia virus may be an ATPase involved in viral DNA packaging as indicated by sequence comparisons with other putative viral ATPases
    • Koonin E. V, Senkevich TG, Chernos VI. 1993. Gene A32 protein product of vaccinia virus may be an ATPase involved in viral DNA packaging as indicated by sequence comparisons with other putative viral ATPases. Virus Genes 7: 89-94.
    • (1993) Virus Genes , vol.7 , pp. 89-94
    • Koonin, E.V.1    Senkevich, T.G.2    Chernos, V.I.3
  • 60
    • 77649197459 scopus 로고    scopus 로고
    • Vaccinia virus particles mix inefficiently, and in a way that would restrict viral recombination, in coinfected cells
    • Lin Y. CJ, Evans DH. 2010. Vaccinia virus particles mix inefficiently, and in a way that would restrict viral recombination, in coinfected cells. J Virol 84: 2432-2443.
    • (2010) J Virol , vol.84 , pp. 2432-2443
    • Lin, Y.C.J.1    Evans, D.H.2
  • 61
    • 0026509098 scopus 로고
    • The vaccinia virus B1R gene product is a serine/threonine protein kinase
    • Lin S., ChenW, Broyles SS. 1992. The vaccinia virus B1R gene product is a serine/threonine protein kinase. J Virol 66: 2717-2723.
    • (1992) J Virol , vol.66 , pp. 2717-2723
    • Lin, S.1    Chen, W.2    Broyles, S.S.3
  • 62
    • 0034712955 scopus 로고    scopus 로고
    • Genomewide analysis of vaccinia virus protein-protein interactions
    • McCraith S, Holtzman T, Moss B, Fields S. 2000. Genomewide analysis of vaccinia virus protein-protein interactions. Proc Natl Acad Sci 97: 4879-4884.
    • (2000) Proc Natl Acad Sci , vol.97 , pp. 4879-4884
    • McCraith, S.1    Holtzman, T.2    Moss, B.3    Fields, S.4
  • 63
    • 0031582627 scopus 로고    scopus 로고
    • Characterization of a processive form of the vaccinia virus DNA polymerase
    • McDonald WF, Klemperer N, Traktman P. 1997. Characterization of a processive form of the vaccinia virus DNA polymerase. Virology 234: 168-175.
    • (1997) Virology , vol.234 , pp. 168-175
    • McDonald, W.F.1    Klemperer, N.2    Traktman, P.3
  • 64
    • 0025146959 scopus 로고
    • Mutational analysis of the resolution sequence of vaccinia virus DNA: Essential sequence consists of two separate AT-rich regions highly conserved among poxviruses
    • Merchlinsky M. 1990. Mutational analysis of the resolution sequence of vaccinia virus DNA: Essential sequence consists of two separate AT-rich regions highly conserved among poxviruses. J Virol 64: 5029-5035.
    • (1990) J Virol , vol.64 , pp. 5029-5035
    • Merchlinsky, M.1
  • 65
    • 0022501233 scopus 로고
    • Resolution of linear minichromosomes with hairpin ends from circular plasmids containing vaccinia virus concatemer junctions
    • Merchlinsky M., Moss B. 1986. Resolution of linear minichromosomes with hairpin ends from circular plasmids containing vaccinia virus concatemer junctions. Cell 45: 879-884.
    • (1986) Cell , vol.45 , pp. 879-884
    • Merchlinsky, M.1    Moss, B.2
  • 66
    • 0011732710 scopus 로고
    • Sequence-independent replication and sequence-specific resolution of plasmids containing the vaccinia virus concatemer junction: Requirements for early and late trans-acting factors
    • (ed. Kelly T, Stillman B), Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY
    • Merchlinsky M., Moss B. 1988. Sequence-independent replication and sequence-specific resolution of plasmids containing the vaccinia virus concatemer junction: Requirements for early and late trans-acting factors. In Cancer cells 6: Eukaryotic DNA replication (ed. Kelly T, Stillman B), pp. 87-93. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY.
    • (1988) Cancer cells Eukaryotic DNA replication , vol.6 , pp. 87-93
    • Merchlinsky, M.1    Moss, B.2
  • 67
    • 0024580443 scopus 로고
    • Resolution of vaccinia virus DNA concatemer junctions requires late gene expression
    • Merchlinsky M., Moss B. 1989. Resolution of vaccinia virus DNA concatemer junctions requires late gene expression. J Virol 63: 1595-1603.
    • (1989) J Virol , vol.63 , pp. 1595-1603
    • Merchlinsky, M.1    Moss, B.2
  • 68
    • 0023900379 scopus 로고
    • Molecular cloning and sequence of the concatemer junction from vaccinia virus replicative DNA: Viral nuclease cleavage sites in cruciform structures
    • Merchlinsky M., Garon C, Moss B. 1988. Molecular cloning and sequence of the concatemer junction from vaccinia virus replicative DNA: Viral nuclease cleavage sites in cruciform structures. J Mol Biol 199: 399-413.
    • (1988) J Mol Biol , vol.199 , pp. 399-413
    • Merchlinsky, M.1    Garon, C.2    Moss, B.3
  • 69
    • 0028298871 scopus 로고
    • The vaccinia virus-encoded uracil DNA glycosylase has an essential role in viral DNA replication
    • Millns A. K, Carpenter MS, DeLange AM. 1994. The vaccinia virus-encoded uracil DNA glycosylase has an essential role in viral DNA replication. Virology 198: 504-513.
    • (1994) Virology , vol.198 , pp. 504-513
    • Millns, A.K.1    Carpenter, M.S.2    DeLange, A.M.3
  • 70
    • 0017072205 scopus 로고
    • The insertion of DNA into vaccinia virus
    • Morgan C. 1976. The insertion of DNA into vaccinia virus. Science 193: 591-592.
    • (1976) Science , vol.193 , pp. 591-592
    • Morgan, C.1
  • 71
    • 42449154473 scopus 로고    scopus 로고
    • Poxviridae: The viruses and their replication
    • (ed. Knipe DM, Howley PM), Lippincott Williams & Wilkins, Philadelphia
    • Moss B. 2007. Poxviridae: The viruses and their replication. In Fields virology (ed. Knipe DM, Howley PM), pp. 2905-2946. Lippincott Williams & Wilkins, Philadelphia.
    • (2007) Fields virology , pp. 2905-2946
    • Moss, B.1
  • 73
    • 0019846014 scopus 로고
    • The mechanismof cytoplasmic orthopoxvirus DNA replication
    • Moyer R. W, Graves RL. 1981. The mechanismof cytoplasmic orthopoxvirus DNA replication. Cell 27: 391-401.
    • (1981) Cell , vol.27 , pp. 391-401
    • Moyer, R.W.1    Graves, R.L.2
  • 74
    • 0001142644 scopus 로고    scopus 로고
    • Parvoviridae: The viruses and their replication
    • (ed. Knipe DM, Howley PM), Lippincott, Williams & Wilkins, Philadelphia
    • Muzyczka N., Berns KI. 2001. Parvoviridae: The viruses and their replication. In Fields virology (ed. Knipe DM, Howley PM), pp. 2327-2359. Lippincott, Williams & Wilkins, Philadelphia.
    • (2001) Fields virology , pp. 2327-2359
    • Muzyczka, N.1    Berns, K.I.2
  • 75
    • 0030711601 scopus 로고    scopus 로고
    • Identification of two novel human putative serine/threonine kinases, VRK1 and VRK2, with structural similarity to vaccinia virus B1R kinase
    • Nezu J.-I, Oku A, Jones MH, Shimane M. 1997. Identification of two novel human putative serine/threonine kinases, VRK1 and VRK2, with structural similarity to vaccinia virus B1R kinase. Genomics 45: 327-331.
    • (1997) Genomics , vol.45 , pp. 327-331
    • Nezu, J.-I.1    Oku, A.2    Jones, M.H.3    Shimane, M.4
  • 76
    • 1542379726 scopus 로고    scopus 로고
    • Characterization of three paralogous members of the mammalian vaccinia related kinase family
    • Nichols R. J, Traktman P. 2004. Characterization of three paralogous members of the mammalian vaccinia related kinase family. J Biol Chem 279: 7934-7946.
    • (2004) J Biol Chem , vol.279 , pp. 7934-7946
    • Nichols, R.J.1    Traktman, P.2
  • 77
    • 33745450085 scopus 로고    scopus 로고
    • The vaccinia-related kinases phosphorylate the N0 terminus of BAF, regulating its interaction with DNA and its retention in the nucleus
    • Nichols R. J, Wiebe MS, Traktman P. 2006. The vaccinia-related kinases phosphorylate the N0 terminus of BAF, regulating its interaction with DNA and its retention in the nucleus. Mol Biol Cell 17: 2451-2464.
    • (2006) Mol Biol Cell , vol.17 , pp. 2451-2464
    • Nichols, R.J.1    Wiebe, M.S.2    Traktman, P.3
  • 78
    • 0017257713 scopus 로고
    • Evidence for RNA linked to nascent DNA in HeLa cells
    • Olgiati D. D, Pogo BG, Dales S. 1976. Evidence for RNA linked to nascent DNA in HeLa cells. J Cell Biol 68: 557-566.
    • (1976) J Cell Biol , vol.68 , pp. 557-566
    • Olgiati, D.D.1    Pogo, B.G.2    Dales, S.3
  • 79
    • 0033582950 scopus 로고    scopus 로고
    • Shope fibroma virus DNA topoisomerase catalyses Holliday junction resolution and hairpin formation in vitro
    • Palaniyar N., Gerasimopoulos E, Evans DH. 1999. Shope fibroma virus DNA topoisomerase catalyses Holliday junction resolution and hairpin formation in vitro. J Mol Biol 287: 9-20.
    • (1999) J Mol Biol , vol.287 , pp. 9-20
    • Palaniyar, N.1    Gerasimopoulos, E.2    Evans, D.H.3
  • 80
    • 74549202241 scopus 로고    scopus 로고
    • Cellular DNA ligase I is recruited to cytoplasmic vaccinia virus factories and masks the role of the vaccinia ligase in viral DNA replication
    • Paran N., De Silva FS, Senkevich TG, Moss B. 2009. Cellular DNA ligase I is recruited to cytoplasmic vaccinia virus factories and masks the role of the vaccinia ligase in viral DNA replication. Cell Host Microbe 6: 563-569.
    • (2009) Cell Host Microbe , vol.6 , pp. 563-569
    • Paran, N.1    de Silva, F.S.2    Senkevich, T.G.3    Moss, B.4
  • 81
    • 0032143101 scopus 로고    scopus 로고
    • DNA ligase gene disruptions can depress viral growth and replication in poxvirus-infected cells
    • Parks R. J, Winchcombe-Forhan C, DeLange AM, Xing X, Evans D.H. 1998. DNA ligase gene disruptions can depress viral growth and replication in poxvirus-infected cells. Virus Res 56: 135-147.
    • (1998) Virus Res , vol.56 , pp. 135-147
    • Parks, R.J.1    Winchcombe-Forhan, C.2    DeLange, A.M.3    Xing, X.4    Evans, D.H.5
  • 82
    • 0021352583 scopus 로고
    • Investigation of vaccinia virus DNA replication employing a conditional lethal mutant defective in DNA
    • Pogo B. G, Berkowitz EM, Dales S. 1984. Investigation of vaccinia virus DNA replication employing a conditional lethal mutant defective in DNA. Virology 132: 436-444.
    • (1984) Virology , vol.132 , pp. 436-444
    • Pogo, B.G.1    Berkowitz, E.M.2    Dales, S.3
  • 83
    • 0035201672 scopus 로고    scopus 로고
    • Clustered charge-to-alanine mutagenesis of the vaccinia virus A20 gene: Temperature-sensitive mutants have a DNA-minus phenotype and are defective in the production of processive DNA polymerase activity
    • Punjabi A., Boyle K, DeMasi J, Grubisha O, Unger B, Khanna M., Traktman P. 2001. Clustered charge-to-alanine mutagenesis of the vaccinia virus A20 gene: Temperature-sensitive mutants have a DNA-minus phenotype and are defective in the production of processive DNA polymerase activity. J Virol 75: 12308-12318.
    • (2001) J Virol , vol.75 , pp. 12308-12318
    • Punjabi, A.1    Boyle, K.2    DeMasi, J.3    Grubisha, O.4    Unger, B.5    Khanna, M.6    Traktman, P.7
  • 84
    • 0026777795 scopus 로고
    • Vaccinia virus B1 kinase: Phenotypic analysis of temperature-sensitive mutants and enzymatic characterization of recombinant proteins
    • Rempel R. E, Traktman P. 1992. Vaccinia virus B1 kinase: Phenotypic analysis of temperature-sensitive mutants and enzymatic characterization of recombinant proteins. J Virol 66: 4413-4426.
    • (1992) J Virol , vol.66 , pp. 4413-4426
    • Rempel, R.E.1    Traktman, P.2
  • 85
    • 0025176774 scopus 로고
    • Temperature-sensitive vaccinia virus mutants identify a gene with an essential role in viral replication
    • Rempel R. E, Anderson MK, Evans E, Traktman P. 1990. Temperature-sensitive vaccinia virus mutants identify a gene with an essential role in viral replication. J Virol 64: 574-583.
    • (1990) J Virol , vol.64 , pp. 574-583
    • Rempel, R.E.1    Anderson, M.K.2    Evans, E.3    Traktman, P.4
  • 86
    • 79952152606 scopus 로고    scopus 로고
    • Efficacy of CMX001 as a prophylactic and presymptomatic antiviral agent in New Zealand white rabbits infected with rabbitpox virus, a model for orthopoxvirus infections of humans
    • Rice A. D, Adams MM, Lampert B, Foster S, Lanier R, Robertson A., Painter G, Moyer RW. 2011. Efficacy of CMX001 as a prophylactic and presymptomatic antiviral agent in New Zealand white rabbits infected with rabbitpox virus, a model for orthopoxvirus infections of humans. Viruses 3: 63-82.
    • (2011) Viruses , vol.3 , pp. 63-82
    • Rice, A.D.1    Adams, M.M.2    Lampert, B.3    Foster, S.4    Lanier, R.5    Robertson, A.6    Painter, G.7    Moyer, R.W.8
  • 87
    • 0031949939 scopus 로고    scopus 로고
    • Characterization of the single-stranded DNA binding protein encoded by the vaccinia virus I3 gene
    • Rochester S. C, Traktman P. 1998. Characterization of the single-stranded DNA binding protein encoded by the vaccinia virus I3 gene. J Virol 72: 2917-2926.
    • (1998) J Virol , vol.72 , pp. 2917-2926
    • Rochester, S.C.1    Traktman, P.2
  • 88
    • 0023216412 scopus 로고
    • Nucleotide sequence and transcript organization of a region of the vaccinia virus genome which encodes a constitutively expressed gene required for DNA replication
    • Roseman N. A, Hruby DE. 1987. Nucleotide sequence and transcript organization of a region of the vaccinia virus genome which encodes a constitutively expressed gene required for DNA replication. J Virol 61: 1398-1406.
    • (1987) J Virol , vol.61 , pp. 1398-1406
    • Roseman, N.A.1    Hruby, D.E.2
  • 89
    • 24944532259 scopus 로고    scopus 로고
    • Cytoplasmic organization of poxvirus DNA replication
    • Schramm B., Krijnse Locker J. 2005. Cytoplasmic organization of poxvirus DNA replication. Traffic 6: 839-846.
    • (2005) Traffic , vol.6 , pp. 839-846
    • Schramm, B.1    Krijnse Locker, J.2
  • 90
    • 0030755836 scopus 로고    scopus 로고
    • Domain structure of vaccinia DNA ligase
    • Sekiguchi J., Shuman S. 1997. Domain structure of vaccinia DNA ligase. Nucleic Acids Res 25: 727-734.
    • (1997) Nucleic Acids Res , vol.25 , pp. 727-734
    • Sekiguchi, J.1    Shuman, S.2
  • 91
    • 0030061445 scopus 로고    scopus 로고
    • Resolution of Holliday junctions by eukaryotic DNA topoisomerase I
    • Sekiguchi J., Seeman NC, Shuman S. 1996. Resolution of Holliday junctions by eukaryotic DNA topoisomerase I. Proc Natl Acad Sci 93: 785-789.
    • (1996) Proc Natl Acad Sci , vol.93 , pp. 785-789
    • Sekiguchi, J.1    Seeman, N.C.2    Shuman, S.3
  • 92
    • 70449562099 scopus 로고    scopus 로고
    • Predicted poxvirus FEN1-like nuclease required for homologous recombination, double-strand break repair and full-size genome formation
    • Senkevich T. G, Koonin EV, Moss B. 2009. Predicted poxvirus FEN1-like nuclease required for homologous recombination, double-strand break repair and full-size genome formation. Proc Natl Acad Sci 106: 17921-17926.
    • (2009) Proc Natl Acad Sci , vol.106 , pp. 17921-17926
    • Senkevich, T.G.1    Koonin, E.V.2    Moss, B.3
  • 93
    • 80051948311 scopus 로고    scopus 로고
    • Vaccinia virus F16 protein, a predicted catalytically inactive member of the prokaryotic serine recombinase superfamily, is targeted to nucleoli
    • Senkevich T. G, Koonin EV, Moss B. 2011. Vaccinia virus F16 protein, a predicted catalytically inactive member of the prokaryotic serine recombinase superfamily, is targeted to nucleoli. Virology 417: 334-342.
    • (2011) Virology , vol.417 , pp. 334-342
    • Senkevich, T.G.1    Koonin, E.V.2    Moss, B.3
  • 94
    • 0023645150 scopus 로고
    • Vaccinia virus encapsidates a novel topoisomerase with the properties of a eucaryotic type I enzyme
    • Shaffer R., Traktman P. 1987. Vaccinia virus encapsidates a novel topoisomerase with the properties of a eucaryotic type I enzyme. J Biol Chem 262: 9309-9315.
    • (1987) J Biol Chem , vol.262 , pp. 9309-9315
    • Shaffer, R.1    Traktman, P.2
  • 95
    • 0028846525 scopus 로고
    • Vaccinia virus DNA ligase: Specificity, fidelity, and inhibition
    • Shuman S. 1995. Vaccinia virus DNA ligase: Specificity, fidelity, and inhibition. Biochemistry 34: 16138-16147.
    • (1995) Biochemistry , vol.34 , pp. 16138-16147
    • Shuman, S.1
  • 96
    • 0023442459 scopus 로고
    • Identification of a vaccinia virus gene encoding a type I DNA topoisomerase
    • Shuman S., Moss B. 1987. Identification of a vaccinia virus gene encoding a type I DNA topoisomerase. Proc Natl Acad Sci 84: 7478-7482.
    • (1987) Proc Natl Acad Sci , vol.84 , pp. 7478-7482
    • Shuman, S.1    Moss, B.2
  • 97
    • 33645639121 scopus 로고    scopus 로고
    • Vaccinia virus uracil DNA glycosylase interacts with the A20 protein to form a heterodimeric processivity factor for the viral DNA polymerase
    • Stanitsa E. S, Arps L, Traktman P. 2006. Vaccinia virus uracil DNA glycosylase interacts with the A20 protein to form a heterodimeric processivity factor for the viral DNA polymerase. J Biol Chem 281: 3439-3451.
    • (2006) J Biol Chem , vol.281 , pp. 3439-3451
    • Stanitsa, E.S.1    Arps, L.2    Traktman, P.3
  • 98
    • 0027418033 scopus 로고
    • A poxvirus-encoded uracil DNA glycosylase is essential for virus viability
    • Stuart D. T, Upton C, Higman MA, Niles EG, McFadden G. 1993. A poxvirus-encoded uracil DNA glycosylase is essential for virus viability. J Virol 67: 2503-2512.
    • (1993) J Virol , vol.67 , pp. 2503-2512
    • Stuart, D.T.1    Upton, C.2    Higman, M.A.3    Niles, E.G.4    McFadden, G.5
  • 99
    • 0035157752 scopus 로고    scopus 로고
    • Vaccinia virus DNA replication occurs in endoplasmic reticulum-enclosed cytoplasmic mini-nuclei
    • Tolonen N., Doglio L, Schleich S, Krijnse Locker J. 2001. Vaccinia virus DNA replication occurs in endoplasmic reticulum-enclosed cytoplasmic mini-nuclei. Mol Biol Cell 12: 2031-2046.
    • (2001) Mol Biol Cell , vol.12 , pp. 2031-2046
    • Tolonen, N.1    Doglio, L.2    Schleich, S.3    Krijnse Locker, J.4
  • 100
    • 0021333525 scopus 로고
    • Transcriptional mapping of the DNA polymerase gene of vaccinia virus
    • Traktman P., Sridhar RC, Roberts BE. 1984. Transcriptional mapping of the DNA polymerase gene of vaccinia virus. J Virol 49: 125-131.
    • (1984) J Virol , vol.49 , pp. 125-131
    • Traktman, P.1    Sridhar, R.C.2    Roberts, B.E.3
  • 101
    • 0033618372 scopus 로고    scopus 로고
    • DNA binding and aggregation properties of the vaccinia virus I3L gene product
    • Tseng M., Palaniyar N, Zhang WD, Evans DH. 1999. DNA binding and aggregation properties of the vaccinia virus I3L gene product. J Biol Chem 274: 21637-21644.
    • (1999) J Biol Chem , vol.274 , pp. 21637-21644
    • Tseng, M.1    Palaniyar, N.2    Zhang, W.D.3    Evans, D.H.4
  • 102
    • 0027241184 scopus 로고
    • Identification of a poxvirus gene encoding a uracil DNA glycosylase
    • Upton C., Stuart DT, McFadden G. 1993. Identification of a poxvirus gene encoding a uracil DNA glycosylase. Proc Natl Acad Sci 90: 4518-4522.
    • (1993) Proc Natl Acad Sci , vol.90 , pp. 4518-4522
    • Upton, C.1    Stuart, D.T.2    McFadden, G.3
  • 103
    • 0024562306 scopus 로고
    • Human DNA polymerase a: Predicted functional domains and relationships with viral DNA polymerases
    • Wang T. S, Wong SW, Korn D. 1989. Human DNA polymerase a: Predicted functional domains and relationships with viral DNA polymerases. FASEB J 3: 14-21.
    • (1989) FASEB J , vol.3 , pp. 14-21
    • Wang, T.S.1    Wong, S.W.2    Korn, D.3
  • 104
    • 0037694963 scopus 로고    scopus 로고
    • The vaccinia virus I3L gene product is localized to a complex endoplasmic reticulum-associated structure that contains the viral parental DNA
    • Welsch S., Doglio L, Schleich S, Krijnse Locker J. 2003. The vaccinia virus I3L gene product is localized to a complex endoplasmic reticulum-associated structure that contains the viral parental DNA. J Virol 77: 6014-6028.
    • (2003) J Virol , vol.77 , pp. 6014-6028
    • Welsch, S.1    Doglio, L.2    Schleich, S.3    Krijnse Locker, J.4
  • 105
    • 34248205172 scopus 로고    scopus 로고
    • Poxviral B1 kinase overcomes barrier to autointegration factor, a host defense against virus replication
    • Wiebe M. S, Traktman P. 2007. Poxviral B1 kinase overcomes barrier to autointegration factor, a host defense against virus replication. Cell Host Microbe 1: 187-197.
    • (2007) Cell Host Microbe , vol.1 , pp. 187-197
    • Wiebe, M.S.1    Traktman, P.2
  • 106
    • 0033541947 scopus 로고    scopus 로고
    • Vaccinia virus DNA polymerase promotes DNA pairing and strand-transfer reactions
    • WillerDO, Mann MJ, ZhangWD, Evans DH. 1999. Vaccinia virus DNA polymerase promotes DNA pairing and strand-transfer reactions. Virology 257: 511-523.
    • (1999) Virology , vol.257 , pp. 511-523
    • Willer, D.O.1    Mann, M.J.2    Zhang, W.D.3    Evans, D.H.4
  • 107
    • 0034534405 scopus 로고    scopus 로고
    • In vitro concatemer formation catalyzed by vaccinia virus DNA polymerase
    • Willer D. O, Yao XD, Mann MJ, Evans DH. 2000. In vitro concatemer formation catalyzed by vaccinia virus DNA polymerase. Virology 278: 562-569.
    • (2000) Virology , vol.278 , pp. 562-569
    • Willer, D.O.1    Yao, X.D.2    Mann, M.J.3    Evans, D.H.4
  • 108
    • 0018927968 scopus 로고
    • Tandem repeats within the inverted terminal repetition of vaccinia virus DNA
    • Wittek R, Moss B. 1980. Tandem repeats within the inverted terminal repetition of vaccinia virus DNA. Cell 21: 277-284.
    • (1980) Cell , vol.21 , pp. 277-284
    • Wittek, R.1    Moss, B.2
  • 109
    • 80053956769 scopus 로고    scopus 로고
    • Expression profiling of the intermediate and late stages of poxvirus replication
    • Yang Z., Reynolds SE, Martens CA, Bruno DP, Porcella SF, Moss B. 2011. Expression profiling of the intermediate and late stages of poxvirus replication. J Virol 85: 9899-9908.
    • (2011) J Virol , vol.85 , pp. 9899-9908
    • Yang, Z.1    Reynolds, S.E.2    Martens, C.A.3    Bruno, D.P.4    Porcella, S.F.5    Moss, B.6


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