Control of human papillomavirus type 11 origin of replication by the E2 family of transcription regulatory proteins
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[1] T. R. Broker,et al. Viral E1 and E2 proteins support replication of homologous and heterologous papillomaviral origins. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[2] E. Androphy,et al. Mechanism of action of the papillomavirus E2 repressor: repression in the absence of DNA binding , 1992, Journal of virology.
[3] B. Gloss,et al. During negative regulation of the human papillomavirus-16 E6 promoter, the viral E2 protein can displace Sp1 from a proximal promoter element. , 1992, Nucleic acids research.
[4] J. Workman,et al. Regulation of DNA replication in vitro by the transcriptional activation domain of GAL4-VP16. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[5] M. Ustav,et al. Identification of the origin of replication of bovine papillomavirus and characterization of the viral origin recognition factor E1. , 1991, The EMBO journal.
[6] M. Botchan,et al. Activation of BPV-1 replication in vitro by the transcription factor E2 , 1991, Nature.
[7] P. Howley,et al. The papillomavirus E2 regulatory proteins. , 1991, The Journal of biological chemistry.
[8] J. Ludes-Meyers,et al. A bovine papillomavirus E1-related protein binds specifically to bovine papillomavirus DNA , 1991, Journal of virology.
[9] P. Howley,et al. The functional BPV-1 E2 trans-activating protein can act as a repressor by preventing formation of the initiation complex. , 1991, Genes & development.
[10] M. Lusky,et al. Formation of the complex of bovine papillomavirus E1 and E2 proteins is modulated by E2 phosphorylation and depends upon sequences within the carboxyl terminus of E1. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[11] T. R. Broker,et al. An E1M--E2C fusion protein encoded by human papillomavirus type 11 is asequence-specific transcription repressor , 1991, Journal of virology.
[12] L. Laimins,et al. The 68-kilodalton E1 protein of bovine papillomavirus is a DNA binding phosphoprotein which associates with the E2 transcriptional activator in vitro , 1991, Journal of virology.
[13] M. Ustav,et al. Transient replication of BPV‐1 requires two viral polypeptides encoded by the E1 and E2 open reading frames. , 1991, The EMBO journal.
[14] M. Botchan,et al. Targeting the E1 replication protein to the papillomavirus origin of replication by complex formation with the E2 transactivator. , 1990, Science.
[15] E. Androphy,et al. Proteins encoded by the bovine papillomavirus E1 open reading frame: expression in heterologous systems and in virally transformed cells , 1990, Journal of virology.
[16] B. Gloss,et al. The E6/E7 promoter of human papillomavirus type 16 is activated in the absence of E2 proteins by a sequence-aberrant Sp1 distal element , 1990, Journal of virology.
[17] M. Botchan,et al. Identification of a 68-kilodalton nuclear ATP-binding phosphoprotein encoded by bovine papillomavirus type 1 , 1990, Journal of virology.
[18] M. Yaniv,et al. Control of papillomavirus gene expression. , 1990, Biochimica et biophysica acta.
[19] P. Howley,et al. Mutational analysis of cis elements involved in E2 modulation of human papillomavirus type 16 P97 and type 18 P105 promoters , 1990, Journal of virology.
[20] J. Settleman,et al. Bovine papillomavirus E2 repressor mutant displays a high-copy-number phenotype and enhanced transforming activity , 1990, Journal of virology.
[21] P. Howley,et al. Phenotypic analysis of bovine papillomavirus type 1 E2 repressor mutants , 1990, Journal of virology.
[22] P. Howley,et al. Phosphorylation sites of the E2 transcriptional regulatory proteins of bovine papillomavirus type 1 , 1989, Journal of virology.
[23] T. R. Broker,et al. Characterization of cDNAs of spliced HPV-11 E2 mRNA and other HPV mRNAs recovered via retrovirus-mediated gene transfer. , 1989, Virology.
[24] L. Chow,et al. Characterization of rare human papillomavirus type 11 mRNAs coding for regulatory and structural proteins, using the polymerase chain reaction. , 1989, Virology.
[25] Steven Wolinsky,et al. Differentiation-linked human papillomavirus types 6 and 11 transcription in genital condylomata revealed by in situ hybridization with message-specific RNA probes. , 1989, Virology.
[26] L. Chow,et al. Identification of a novel constitutive enhancer element and an associated binding protein: implications for human papillomavirus type 11 enhancer regulation , 1989, Journal of virology.
[27] P. Howley,et al. Genetic assignment of multiple E2 gene products in bovine papillomavirus-transformed cells , 1989, Journal of virology.
[28] M. Botchan,et al. Specific recognition nucleotides and their DNA context determine the affinity of E2 protein for 17 binding sites in the BPV-1 genome. , 1989, Genes & development.
[29] M. Botchan,et al. Bovine papillomavirus type 1 encodes two forms of a transcriptional repressor: structural and functional analysis of new viral cDNAs , 1989, Journal of virology.
[30] V. Pathak,et al. The phosphorylation state of eucaryotic initiation factor 2 alters translational efficiency of specific mRNAs , 1989, Molecular and cellular biology.
[31] H. Prokoph,et al. Oncogenic and nononcogenic human genital papillomaviruses generate the E7 mRNA by different mechanisms , 1989, Journal of virology.
[32] R. Umek,et al. New beginnings in studies of eukaryotic DNA replication origins. , 1989, Biochimica et biophysica acta.
[33] M. Barbosa,et al. E2 of cottontail rabbit papillomavirus is a nuclear phosphoprotein translated from an mRNA encoding multiple open reading frames , 1988, Journal of virology.
[34] T. R. Broker,et al. Regulation of human papillomavirus type 11 enhancer and E6 promoter by activating and repressing proteins from the E2 open reading frame: functional and biochemical studies , 1988, Journal of virology.
[35] D. Lowy,et al. Bovine papilloma virus-transformed cells contain multiple E2 proteins. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[36] M. DePamphilis. Transcriptional elements as components of eukaryotic origins of DNA replication , 1988, Cell.
[37] J. Hurwitz,et al. DNA sequence requirements for replication of polyomavirus DNA in vivo and in vitro , 1987, Molecular and cellular biology.
[38] Steven Wolinsky,et al. Human papillomavirus types 6 and 11 mRNAs from genital condylomata acuminata , 1987, Journal of virology.
[39] P. Howley,et al. A transcriptional repressor encoded by BPV-1 shares a common carboxy-terminal domain with the E2 transactivator , 1987, Cell.
[40] R. Dixon,et al. Functional organization of the simian virus 40 origin of DNA replication , 1986, Molecular and cellular biology.
[41] P. Howley,et al. Transformation and replication in mouse cells of a bovine papillomavirus--pML2 plasmid vector that can be rescued in bacteria. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[42] J. Gauthier,et al. The papillomavirus E2 protein: a factor with many talents. , 1991, Trends in biochemical sciences.
[43] P. Howley,et al. Functional analysis of E2-mediated repression of the HPV18 P105 promoter. , 1991, The New biologist.
[44] M. Botchan,et al. The E2 trans-activator can act as a repressor by interfering with a cellular transcription factor. , 1990, Genes & development.
[45] M. Challberg,et al. Animal virus DNA replication. , 1989, Annual review of biochemistry.
[46] L. Chow,et al. Functional mapping of the human papillomavirus type 11 transcriptional enhancer and its interaction with the trans-acting E2 proteins. , 1988, Genes & development.
[47] B. Stillman,et al. Initiation of eukaryotic DNA replication in vitro. , 1988, BioEssays : news and reviews in molecular, cellular and developmental biology.
[48] D. Lowy,et al. Bovine papillomavirus E2 trans-activating gene product binds to specific sites in papillomavirus DNA , 1987, Nature.
[49] M. DePamphilis,et al. Replication of SV40 and Polyoma Virus Chromosomes , 1986 .
[50] Thomas A. Kunkel,et al. Rapid and efficient site-specific mutagenesis without phenotypic selection. , 1985, Proceedings of the National Academy of Sciences of the United States of America.