Recent lessons in gene expression, cell cycle control, and cell biology from adenovirus
暂无分享,去创建一个
[1] P. Yaciuk,et al. Analysis of E1A-mediated growth regulation functions: binding of the 300-kilodalton cellular product correlates with E1A enhancer repression function and DNA synthesis-inducing activity , 1990, Journal of virology.
[2] Adenovirus and cell cycle control. , 2002 .
[3] V. Dulic,et al. Molecular mechanisms for the senescent cell cycle arrest. , 1998, The journal of investigative dermatology. Symposium proceedings.
[4] E. Kremmer,et al. Novel critical role of a human Mediator complex for basal RNA polymerase II transcription , 2001, EMBO reports.
[5] C. Gorbea,et al. The Targeting of the Proteasomal Regulatory Subunit S2 by Adenovirus E1A Causes Inhibition of Proteasomal Activity and Increased p53 Expression* , 2004, Journal of Biological Chemistry.
[6] J. M. Boyd,et al. Interaction between a Cellular Protein That Binds to the C-terminal Region of Adenovirus E1A (CtBP) and a Novel Cellular Protein Is Disrupted by E1A through a Conserved PLDLS Motif* , 1998, The Journal of Biological Chemistry.
[7] Renato Paro,et al. Epigenetic regulation of cellular memory by the Polycomb and Trithorax group proteins. , 2004, Annual review of genetics.
[8] J. Petrini,et al. The cellular response to DNA double-strand breaks: defining the sensors and mediators. , 2003, Trends in cell biology.
[9] S. Weitzman,et al. Antisense-mediated depletion of p300 in human cells leads to premature G1 exit and up-regulation of c-MYC , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[10] Wenhua Gao,et al. Elimination of Mcl-1 is required for the initiation of apoptosis following ultraviolet irradiation. , 2003, Genes & development.
[11] D. Cobrinik. Pocket proteins and cell cycle control , 2005, Oncogene.
[12] Michael R. Green,et al. Enhancement of TBP binding by activators and general transcription factors , 1999, Nature.
[13] R. Roeder,et al. Role of general and gene-specific cofactors in the regulation of eukaryotic transcription. , 1998, Cold Spring Harbor symposia on quantitative biology.
[14] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[15] H. Ginsberg,et al. Deletion of the E4 region of the genome produces adenovirus DNA concatemers. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[16] Y. Suzuki,et al. GAL11 protein, an auxiliary transcription activator for genes encoding galactose-metabolizing enzymes in Saccharomyces cerevisiae , 1988, Molecular and cellular biology.
[17] R. Kornberg,et al. Mediator of transcriptional regulation. , 2000, Annual review of biochemistry.
[18] R. Kopito,et al. Aggresomes, inclusion bodies and protein aggregation. , 2000, Trends in cell biology.
[19] E. White. Regulation of the cell cycle and apoptosis by the oncogenes of adenovirus , 2001, Oncogene.
[20] P. Rigby,et al. Trans-acting protein factors and the regulation of eukaryotic transcription: lessons from studies on DNA tumor viruses. , 1988, Genes & development.
[21] S. Gonzalo,et al. Linking the Rb and polycomb pathways. , 2001, Molecular cell.
[22] B. Wasylyk,et al. Net, a negative Ras‐switchable TCF, contains a second inhibition domain, the CID, that mediates repression through interactions with CtBP and de‐acetylation , 1999, The EMBO journal.
[23] J. Mymryk,et al. Comprehensive sequence analysis of the E1A proteins of human and simian adenoviruses. , 2004, Virology.
[24] A. Berk,et al. Requirement of Sur2 for Efficient Replication of Mouse Adenovirus Type 1 , 2004, Journal of Virology.
[25] S. J. Flint,et al. Regulation of mRNA production by the adenoviral E1B 55-kDa and E4 Orf6 proteins. , 2003, Current topics in microbiology and immunology.
[26] Min Han,et al. sur-2, a novel gene, functions late in the let-60 ras-mediated signaling pathway during Caenorhabditis elegans vulval induction. , 1995, Genes & development.
[27] Paola Blanchette,et al. Both BC-Box Motifs of Adenovirus Protein E4orf6 Are Required To Efficiently Assemble an E3 Ligase Complex That Degrades p53 , 2004, Molecular and Cellular Biology.
[28] E. White,et al. Wild-type p53 mediates apoptosis by E1A, which is inhibited by E1B. , 1993, Genes & development.
[29] J. Nevins,et al. A mechanism for Rb/p130-mediated transcription repression involving recruitment of the CtBP corepressor. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[30] R. Roberts,et al. Different functional domains of the adenovirus E1A gene are involved in regulation of host cell cycle products , 1987, Molecular and cellular biology.
[31] E. Nicolas,et al. Transcriptional Repression by the Retinoblastoma Protein through the Recruitment of a Histone Methyltransferase , 2001, Molecular and Cellular Biology.
[32] G. Akusjärvi,et al. The adenovirus‐2 E1B‐55K protein interacts with a mSin3A/histone deacetylase 1 complex , 2000, FEBS letters.
[33] J. Saxton,et al. Ternary complex factors: prime nuclear targets for mitogen-activated protein kinases. , 2003, The international journal of biochemistry & cell biology.
[34] S. Parkhurst,et al. Drosophila CtBP: a Hairy‐interacting protein required for embryonic segmentation and Hairy‐mediated transcriptional repression , 1998, The EMBO journal.
[35] T. Crook,et al. Physical and Functional Interactions between the Corepressor CtBP and the Epstein-Barr Virus Nuclear Antigen EBNA3C , 2001, Journal of Virology.
[36] S. Lowe,et al. Stabilization of the p53 tumor suppressor is induced by adenovirus 5 E1A and accompanies apoptosis. , 1993, Genes & development.
[37] T. Hunter,et al. Inactivation of p27Kip1 by the viral E1A oncoprotein in TGFβ-treated cells , 1996, Nature.
[38] Phuong B Tran,et al. Aggregates in neurodegenerative disease: crowds and power? , 1999, Trends in Neurosciences.
[39] M. Levine,et al. Interaction of short-range repressors with Drosophila CtBP in the embryo. , 1998, Science.
[40] Yi Zhang,et al. The functions of E(Z)/EZH2-mediated methylation of lysine 27 in histone H3. , 2004, Current opinion in genetics & development.
[41] C. Sardet,et al. A Novel Repressive E2F6 Complex Containing the Polycomb Group Protein, EPC1, That Interacts with EZH2 in a Proliferation-specific Manner* , 2005, Journal of Biological Chemistry.
[42] R. Shepard,et al. Diverse Roles for E4orf3 at Late Times of Infection Revealed in an E1B 55-Kilodalton Protein Mutant Background , 2004, Journal of Virology.
[43] J. Park,et al. In Vivo Requirement of Activator-Specific Binding Targets of Mediator , 2000, Molecular and Cellular Biology.
[44] J. Kwang,et al. Baculovirus-mediated promoter assay and transcriptional analysis of white spot syndrome virus orf427 gene , 2005, Virology Journal.
[45] F. McCormick,et al. The RB and p53 pathways in cancer. , 2002, Cancer cell.
[46] P. Branton,et al. Quantitative analysis of regions of adenovirus E1A products involved in interactions with cellular proteins. , 1992, Biochemistry and cell biology = Biochimie et biologie cellulaire.
[47] K. Rudolph,et al. p16 and ARF: activation of teenage proteins in old age. , 2004, The Journal of clinical investigation.
[48] A. Berk,et al. Characterization of Mediator Complexes from HeLa Cell Nuclear Extract , 2001, Molecular and Cellular Biology.
[49] Gerry Shaw,et al. Preferential transformation of human neuronal cells by human adenoviruses and the origin of HEK 293 cells , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[50] B. Wasylyk,et al. Ets ternary complex transcription factors. , 2004, Gene.
[51] A. Berk,et al. Activation domain–mediator interactions promote transcription preinitiation complex assembly on promoter DNA , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[52] J. Qin,et al. Requirement of TRAP/Mediator for Both Activator-Independent and Activator-Dependent Transcription in Conjunction with TFIID-Associated TAFIIs , 2002, Molecular and Cellular Biology.
[53] G. Chinnadurai. Modulation of oncogenic transformation by the human adenovirus E1A C-terminal region. , 2004, Current topics in microbiology and immunology.
[54] Jeffrey M. Trimarchi,et al. Transcription: Sibling rivalry in the E2F family , 2002, Nature Reviews Molecular Cell Biology.
[55] N. Dyson,et al. Molecular mechanisms of E2F-dependent activation and pRB-mediated repression , 2004, Journal of Cell Science.
[56] R. Ricciardi,et al. trans-dominant mutants of E1A provide genetic evidence that the zinc finger of the trans-activating domain binds a transcription factor , 1991, Molecular and cellular biology.
[57] W. Kaelin,et al. Structure of the VHL-ElonginC-ElonginB complex: implications for VHL tumor suppressor function. , 1999, Science.
[58] K. Struhl,et al. Binding of TBP to promoters in vivo is stimulated by activators and requires Pol II holoenzyme , 1999, Nature.
[59] D. Dean,et al. ZEB represses transcription through interaction with the corepressor CtBP. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[60] N. Horikoshi,et al. Blockage by Adenovirus E4orf6 of Transcriptional Activation by the p53 Tumor Suppressor , 1996, Science.
[61] Giuseppe Cibelli,et al. Regulation of life and death by the zinc finger transcription factor Egr‐1 , 2002, Journal of cellular physiology.
[62] J. Lis,et al. Promoter-associated pausing in promoter architecture and postinitiation transcriptional regulation. , 1998, Cold Spring Harbor symposia on quantitative biology.
[63] A. Dejean,et al. Targeting of adenovirus E1A and E4-ORF3 proteins to nuclear matrix- associated PML bodies , 1995, The Journal of cell biology.
[64] M. Harter,et al. A viral mechanism for remodeling chromatin structure in G0 cells. , 2003, Molecular cell.
[65] S. J. Flint,et al. Inhibition of HeLa cell protein synthesis during adenovirus infection. Restriction of cellular messenger RNA sequences to the nucleus. , 1979, Journal of molecular biology.
[66] R. Young,et al. Transcription of eukaryotic protein-coding genes. , 2000, Annual review of genetics.
[67] M. Weitzman,et al. Adenovirus replication is coupled with the dynamic properties of the PML nuclear structure. , 1996, Genes & development.
[68] P. Hearing,et al. Relocalization of the Mre11-Rad50-Nbs1 Complex by the Adenovirus E4 ORF3 Protein Is Required for Viral Replication , 2005, Journal of Virology.
[69] R. Darnell,et al. Involvement of the TRAP220 component of the TRAP/SMCC coactivator complex in embryonic development and thyroid hormone action. , 2000, Molecular cell.
[70] A. Berk,et al. Adenovirus E1B 55K Represses p53 Activation In Vitro , 1998, Journal of Virology.
[71] Steven Hahn,et al. A transcription reinitiation intermediate that is stabilized by activator , 2000, Nature.
[72] Adenovirus E1B oncoprotein tethers a transcriptional repression domain to p53. , 1994, Genes & development.
[73] F. McCormick,et al. Late viral RNA export, rather than p53 inactivation, determines ONYX-015 tumor selectivity. , 2004, Cancer cell.
[74] E. White,et al. Role of adenovirus E1B proteins in transformation: altered organization of intermediate filaments in transformed cells that express the 19-kilodalton protein , 1990, Molecular and cellular biology.
[75] J. Culp,et al. The 289-amino acid E1A protein of adenovirus binds zinc in a region that is important for trans-activation. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[76] A. Shevchenko,et al. Analysis of the Adenovirus E1B-55K-Anchored Proteome Reveals Its Link to Ubiquitination Machinery , 2002, Journal of Virology.
[77] H. Handa,et al. Mediator requirement for both recruitment and postrecruitment steps in transcription initiation. , 2005, Molecular cell.
[78] A. Levine,et al. The p53 pathway: positive and negative feedback loops , 2005, Oncogene.
[79] Kevin Struhl,et al. A unified nomenclature for protein subunits of mediator complexes linking transcriptional regulators to RNA polymerase II. , 2004, Molecular cell.
[80] A. Turnell,et al. Adenovirus E1A: remodelling the host cell, a life or death experience , 2001, Oncogene.
[81] C. Lilley,et al. The Mre11 complex is required for ATM activation and the G2/M checkpoint , 2003, The EMBO journal.
[82] M. Dobbelstein,et al. E1B-55-Kilodalton Protein Is Not Required To Block p53-Induced Transcription during Adenovirus Infection , 2004, Journal of Virology.
[83] G. Packham,et al. Bodyguards and assassins: Bcl‐2 family proteins and apoptosis control in chronic lymphocytic leukaemia , 2005, Immunology.
[84] D. Chattopadhyay,et al. Inactivation of p21 by E1A Leads to the Induction of Apoptosis in DNA-Damaged Cells , 2001, Journal of Virology.
[85] K. Fischbeck,et al. Toxic Proteins in Neurodegenerative Disease , 2002, Science.
[86] N. Jones,et al. Functional analysis of adenovirus-5 host-range deletion mutants defective for transformation of rat embryo cells. , 1980, Cold Spring Harbor symposia on quantitative biology.
[87] J. Trimarchi,et al. The E2F6 transcription factor is a component of the mammalian Bmi1-containing polycomb complex. , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[88] D. Galloway,et al. Mechanisms by which DNA tumor virus oncoproteins target the Rb family of pocket proteins. , 2003, Carcinogenesis.
[89] G. Ketner,et al. Adenovirus E4 34k and E4 11k inhibit double strand break repair and are physically associated with the cellular DNA-dependent protein kinase. , 1999, Virology.
[90] David M. Livingston,et al. A Complex with Chromatin Modifiers That Occupies E2F- and Myc-Responsive Genes in G0 Cells , 2002, Science.
[91] B. Amati,et al. A novel function of adenovirus E1A is required to overcome growth arrest by the CDK2 inhibitor p27Kip1 , 1998, The EMBO journal.
[92] G. Chinnadurai,et al. CtBP, an unconventional transcriptional corepressor in development and oncogenesis. , 2002, Molecular cell.
[93] Michael R. Green,et al. Evidence for interaction of different eukaryotic transcriptional activators with distinct cellular targets , 1990, Nature.
[94] A. Braithwaite,et al. Adenovirus-induced alterations of the cell growth cycle: a requirement for expression of E1A but not of E1B , 1983, Journal of virology.
[95] A. Otte,et al. C-Terminal Binding Protein Is a Transcriptional Repressor That Interacts with a Specific Class of Vertebrate Polycomb Proteins , 1999, Molecular and Cellular Biology.
[96] D. Sterner,et al. Acetylation of Histones and Transcription-Related Factors , 2000, Microbiology and Molecular Biology Reviews.
[97] A. Berk,et al. An adenovirus early region 1A protein is required for maximal viral DNA replication in growth-arrested human cells , 1985, Journal of virology.
[98] R. Goodman,et al. CREB-binding Protein and p300 in Transcriptional Regulation* , 2001, The Journal of Biological Chemistry.
[99] A. Levine,et al. Adenovirus E1b-58kd tumor antigen and SV40 large tumor antigen are physically associated with the same 54 kd cellular protein in transformed cells , 1982, Cell.
[100] S. Elledge,et al. Structure of the Cul1–Rbx1–Skp1–F boxSkp2 SCF ubiquitin ligase complex , 2002, Nature.
[101] H. Kondoh,et al. Identification of CtBP1 and CtBP2 as Corepressors of Zinc Finger-Homeodomain Factor δEF1 , 1999, Molecular and Cellular Biology.
[102] P. Branton,et al. Retinoblastoma growth suppressor and a 300-kDa protein appear to regulate cellular DNA synthesis. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[103] J. Turner,et al. Cloning and characterization of mCtBP2, a co‐repressor that associates with basic Krüppel‐like factor and other mammalian transcriptional regulators , 1998, The EMBO journal.
[104] J. Massagué,et al. Mechanisms of TGF-β Signaling from Cell Membrane to the Nucleus , 2003, Cell.
[105] J B Lawrence,et al. Molecular cloning and functional analysis of the adenovirus E1A-associated 300-kD protein (p300) reveals a protein with properties of a transcriptional adaptor. , 1994, Genes & development.
[106] Michael R. Green,et al. Promoter targeting by adenovirus E1a through interaction with different cellular DNA-binding domains , 1994, Nature.
[107] N. Dyson. The regulation of E2F by pRB-family proteins. , 1998, Genes & development.
[108] A. Levine,et al. The p53 protein and its interactions with the oncogene products of the small DNA tumor viruses. , 1990, Virology.
[109] D. Kimelman,et al. E1a regions of the human adenoviruses and of the highly oncogenic simian adenovirus 7 are closely related , 1985, Journal of virology.
[110] A. Berk,et al. p53-Independent and -Dependent Requirements for E1B-55K in Adenovirus Type 5 Replication , 1999, Journal of Virology.
[111] D. Housman,et al. Abrogation of oncogene-associated apoptosis allows transformation of p53-deficient cells. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[112] A. Berk,et al. Inhibition of p53 transactivation required for transformation by adenovirus early 1B protein , 1992, Nature.
[113] J. Massagué,et al. G1 cell-cycle control and cancer , 2004, Nature.
[114] A. Shevchenko,et al. Transcription Control by E1A and MAP Kinase Pathway via Sur2 Mediator Subunit , 2002, Science.
[115] J. Fransen,et al. Localization of the E1B proteins of adenovirus 5 in transformed cells, as revealed by interaction with monoclonal antibodies. , 1985, Virology.
[116] K. Irie,et al. The oncoprotein Evi-1 represses TGF-β signalling by inhibiting Smad3 , 1998, Nature.
[117] J. Nevins,et al. The Rb/E2F pathway and cancer. , 2001, Human molecular genetics.
[118] A. Fattaey,et al. An Adenovirus Mutant That Replicates Selectively in p53- Deficient Human Tumor Cells , 1996, Science.
[119] P. Yaciuk,et al. Identification of specific adenovirus E1A N-terminal residues critical to the binding of cellular proteins and to the control of cell growth , 1993, Journal of virology.
[120] E. Lees,et al. Mammalian Srb/Mediator complex is targeted by adenovirus E1A protein , 1999, Nature.
[121] C. Caldas,et al. p300/CBP and cancer , 2004, Oncogene.
[122] T. Dobner,et al. Cell transformation by human adenoviruses. , 2004, Current topics in microbiology and immunology.
[123] E. Sztul,et al. Hassles with Taking Out the Garbage: Aggravating Aggresomes , 2002, Traffic.
[124] J. Nevins,et al. Role of the Rb/E2F pathway in cell growth control , 1997, Journal of cellular physiology.
[125] S. Lowe,et al. Tumor suppression by Ink4a-Arf: progress and puzzles. , 2003, Current opinion in genetics & development.
[126] Michael R Green,et al. In vivo target of a transcriptional activator revealed by fluorescence resonance energy transfer. , 2004, Genes & development.
[127] P. Hearing,et al. Distinct Roles of the Adenovirus E4 ORF3 Protein in Viral DNA Replication and Inhibition of Genome Concatenation , 2003, Journal of Virology.
[128] A. Ragauskas,et al. Brightness Reversion of Mechanical Pulps. Part XVII: Diffuse Reflectance Study on Brightness Stabilization by Additives Under Various Atmospheres , 2000 .
[129] F. Graham,et al. Host-range mutants of adenovirus type 5 defective for growth in HeLa cells. , 1977, Virology.
[130] H. Ruley. Adenovirus early region 1A enables viral and cellular transforming genes to transform primary cells in culture , 1983, Nature.
[131] J. Darnell,et al. Adenovirus E1B proteins are required for accumulation of late viral mRNA and for effects on cellular mRNA translation and transport , 1985, Molecular and cellular biology.
[132] U. Pettersson,et al. Strategic Attack on Host Cell Gene Expression during Adenovirus Infection , 2003, Journal of Virology.
[133] D. Livingston,et al. A family of transcriptional adaptor proteins targeted by the E1A oncoprotein , 1995, Nature.
[134] R. Lyons,et al. Pentapeptide nuclear localization signal in adenovirus E1a , 1987, Molecular and cellular biology.
[135] L. Maquat. Nonsense-mediated mRNA decay: splicing, translation and mRNP dynamics , 2004, Nature Reviews Molecular Cell Biology.
[136] John Q Trojanowski,et al. Neurodegenerative diseases: a decade of discoveries paves the way for therapeutic breakthroughs , 2004, Nature Medicine.
[137] N. Jones,et al. An adenovirus type 5 early gene function regulates expression of other early viral genes. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[138] Jill D. Gerber,et al. The p400 Complex Is an Essential E1A Transformation Target , 2001, Cell.
[139] Suzanne Cory,et al. The Bcl-2 family: roles in cell survival and oncogenesis , 2003, Oncogene.
[140] J. M. Boyd,et al. A region in the C‐terminus of adenovirus 2/5 E1a protein is required for association with a cellular phosphoprotein and important for the negative modulation of T24‐ras mediated transformation, tumorigenesis and metastasis. , 1993, The EMBO journal.
[141] P. Sharp,et al. Pre-early adenovirus 5 gene product regulates synthesis of early viral messenger RNAs , 1979, Cell.
[142] M. Weitzman,et al. Adenovirus oncoproteins inactivate the Mre11–Rad50–NBS1 DNA repair complex , 2002, Nature.
[143] K. Mitani,et al. Molecular mechanisms of leukemogenesis by AML1/EVI-1 , 2004, Oncogene.
[144] Andrew J. Bannister,et al. Rb targets histone H3 methylation and HP1 to promoters , 2001, Nature.
[145] E. Tokunaga,et al. Genetic Alterations in the Human Tcf-4 Gene in Japanese Patients with Sporadic Gastrointestinal Cancers with Microsatellite Instability , 2001, Oncology.
[146] M. Crossley,et al. Evi-1 Transforming and Repressor Activities Are Mediated by CtBP Co-repressor Proteins* , 2001, The Journal of Biological Chemistry.
[147] T. Shenk,et al. The adenovirus E1B-55K transforming polypeptide modulates transport or cytoplasmic stabilization of viral and host cell mRNAs , 1986, Molecular and cellular biology.
[148] E. White,et al. DNA damage response and MCL-1 destruction initiate apoptosis in adenovirus-infected cells. , 2003, Genes & development.
[149] F. Winston,et al. The S. cerevisiae SAGA complex functions in vivo as a coactivator for transcriptional activation by Gal4. , 2001, Genes & development.
[150] A. Lund,et al. Polycomb complexes and silencing mechanisms. , 2004, Current opinion in cell biology.
[151] A. Berk,et al. Corepressor Required for Adenovirus E1B 55,000-Molecular-Weight Protein Repression of Basal Transcription , 1999, Molecular and Cellular Biology.
[152] S. Lowe,et al. Rb-Mediated Heterochromatin Formation and Silencing of E2F Target Genes during Cellular Senescence , 2003, Cell.
[153] P. Hearing,et al. The adenovirus E1A oncoprotein recruits the cellular TRRAP/GCN5 histone acetyltransferase complex , 2003, Oncogene.
[154] S. Frisch,et al. Adenovirus-5 E1A: paradox and paradigm , 2002, Nature Reviews Molecular Cell Biology.
[155] T. Richmond,et al. The B‐box dominates SAP‐1–SRF interactions in the structure of the ternary complex , 2001, The EMBO journal.
[156] Stuart S Levine,et al. Division of labor in polycomb group repression. , 2004, Trends in biochemical sciences.
[157] D. Dean,et al. Rb-mediated chromatin structure regulation and transcriptional repression , 2001, Oncogene.
[158] R. Ricciardi,et al. E1A-based determinants of oncogenicity in human adenovirus groups A and C. , 2004, Current topics in microbiology and immunology.
[159] R. Roeder,et al. Transcriptional regulation through Mediator-like coactivators in yeast and metazoan cells. , 2000, Trends in biochemical sciences.
[160] H. Esche,et al. The multifunctional role of E1A in the transcriptional regulation of CREB/CBP-dependent target genes. , 2003, Current topics in microbiology and immunology.
[161] D. Lane,et al. T antigen is bound to a host protein in SY40-transformed cells , 1979, Nature.
[162] B. Amati,et al. Recruitment of TRRAP required for oncogenic transformation by E1A , 2001, Oncogene.
[163] A. Levine,et al. Adenovirus early region 1B 58,000-dalton tumor antigen is physically associated with an early region 4 25,000-dalton protein in productively infected cells , 1984, Journal of virology.
[164] W. Kaelin,et al. Degradation of p53 by adenovirus E4orf6 and E1B55K proteins occurs via a novel mechanism involving a Cullin-containing complex. , 2001, Genes & development.
[165] Peter E Wright,et al. Solution Structure of the KIX Domain of CBP Bound to the Transactivation Domain of CREB: A Model for Activator:Coactivator Interactions , 1997, Cell.
[166] M. Cole,et al. TRRAP-Dependent and TRRAP-Independent Transcriptional Activation by Myc Family Oncoproteins , 2002, Molecular and Cellular Biology.
[167] M. Moore,et al. The ever-increasing complexities of the exon junction complex. , 2004, Current opinion in cell biology.
[168] H. Nomura,et al. Interaction of p27 with E1A and its effect on CDK kinase activity. , 1998, Biochemical and biophysical research communications.
[169] S. Jackson,et al. The MRE11 complex: at the crossroads of DNA repair and checkpoint signalling , 2002, Nature Reviews Molecular Cell Biology.
[170] E. White,et al. Viral homologs of BCL-2: role of apoptosis in the regulation of virus infection. , 2002, Genes & development.
[171] Paul Tempst,et al. A Complex of the Srb8, -9, -10, and -11 Transcriptional Regulatory Proteins from Yeast* , 2002, The Journal of Biological Chemistry.
[172] Young-Joon Kim,et al. MED16 and MED23 of Mediator are coactivators of lipopolysaccharide- and heat-shock-induced transcriptional activators. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[173] C. Osborne,et al. Binding of CtIP to the BRCT Repeats of BRCA1 Involved in the Transcription Regulation of p21 Is Disrupted Upon DNA Damage* , 1999, The Journal of Biological Chemistry.
[174] Michael R. Green,et al. Transcription activation by the adenovirus E1a protein , 1989, Nature.
[175] P. Branton,et al. Regulation of p53-dependent apoptosis, transcriptional repression, and cell transformation by phosphorylation of the 55-kilodalton E1B protein of human adenovirus type 5 , 1997, Journal of virology.
[176] T. Shenk,et al. The adenovirus E1B 55 kd protein influences mRNA transport via an intranuclear effect on RNA metabolism. , 1989, The EMBO journal.