SWI/SNF complexes and facilitation of TATA binding protein:nucleosome interactions.
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[1] J. T. Kadonaga. Eukaryotic Transcription: An Interlaced Network of Transcription Factors and Chromatin-Modifying Machines , 1998, Cell.
[2] D. Bushnell,et al. The Med proteins of yeast and their function through the RNA polymerase II carboxy-terminal domain. , 1998, Genes & development.
[3] M. Yaniv,et al. ras transformation is associated with decreased expression of the brm/SNF2α ATPase from the mammalian SWI–SNF complex , 1998, The EMBO journal.
[4] A. Wolffe,et al. Sin mutations of histone H3: influence on nucleosome core structure and function , 1997, Molecular and cellular biology.
[5] M. Grunstein. Histone acetylation in chromatin structure and transcription , 1997, Nature.
[6] J. Workman,et al. SWI/SNF Stimulates the Formation of Disparate Activator-Nucleosome Complexes but Is Partially Redundant with Cooperative Binding* , 1997, The Journal of Biological Chemistry.
[7] A. Wolffe,et al. Activators and repressors: making use of chromatin to regulate transcription , 1997, Genes to cells : devoted to molecular & cellular mechanisms.
[8] T. Tsukiyama,et al. Chromatin remodeling and transcription. , 1997, Current opinion in genetics & development.
[9] L. G. Burns,et al. Protein complexes for remodeling chromatin. , 1997, Biochimica et biophysica acta.
[10] O. Wrange,et al. Glucocorticoid receptor-glucocorticoid response element binding stimulates nucleosome disruption by the SWI/SNF complex , 1997, Molecular and cellular biology.
[11] Paul Tempst,et al. RSC, an Essential, Abundant Chromatin-Remodeling Complex , 1996, Cell.
[12] J. Workman,et al. Remodeling chromatin structures for transcription: What happens to the histones? , 1996, BioEssays : news and reviews in molecular, cellular and developmental biology.
[13] Yinghe Hu,et al. Identification of a Novel Hypothalamic Neuropeptide Y Receptor Associated with Feeding Behavior* , 1996, The Journal of Biological Chemistry.
[14] M. Yaniv,et al. Purification and biochemical heterogeneity of the mammalian SWI‐SNF complex. , 1996, The EMBO journal.
[15] K. Yamamoto,et al. Adenovirus E1A specifically blocks SWI/SNF-dependent transcriptional activation , 1996, Molecular and cellular biology.
[16] S. Goff,et al. Epstein-Barr virus nuclear protein 2 (EBNA2) binds to a component of the human SNF-SWI complex, hSNF5/Ini1 , 1996, Journal of virology.
[17] R. Kingston,et al. Nucleosome Disruption by Human SWI/SNF Is Maintained in the Absence of Continued ATP Hydrolysis* , 1996, The Journal of Biological Chemistry.
[18] M. Yaniv,et al. The hbrm and BRG‐1 proteins, components of the human SNF/SWI complex, are phosphorylated and excluded from the condensed chromosomes during mitosis. , 1996, The EMBO journal.
[19] R. Kingston,et al. Repression and activation by multiprotein complexes that alter chromatin structure. , 1996, Genes & development.
[20] C. Allis,et al. Special HATs for special occasions: linking histone acetylation to chromatin assembly and gene activation. , 1996, Current opinion in genetics & development.
[21] Guha,et al. Functional interactions between the hBRM/hBRG1 transcriptional activators and the pRB family of proteins , 1996, Molecular and cellular biology.
[22] R. Young,et al. RNA Polymerase II Holoenzyme Contains SWI/SNF Regulators Involved in Chromatin Remodeling , 1996, Cell.
[23] Qiao Li,et al. The Affinity of Nuclear Factor 1 for Its DNA Site Is Drastically Reduced by Nucleosome Organization Irrespective of Its Rotational or Translational Position (*) , 1996, The Journal of Biological Chemistry.
[24] D. Stillman,et al. Yeast global transcriptional regulators Sin4 and Rgr1 are components of mediator complex/RNA polymerase II holoenzyme. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[25] A. Wolffe,et al. Disruption of Reconstituted Nucleosomes , 1995, The Journal of Biological Chemistry.
[26] I. Herskowitz,et al. Amino acid substitutions in the structured domains of histones H3 and H4 partially relieve the requirement of the yeast SWI/SNF complex for transcription. , 1995, Genes & development.
[27] J. Tamkun,et al. The role of brahma and related proteins in transcription and development. , 1995, Current opinion in genetics & development.
[28] O. Wrange,et al. Accessibility of a glucocorticoid response element in a nucleosome depends on its rotational positioning , 1995, Molecular and cellular biology.
[29] R. Young,et al. General requirement for RNA polymerase II holoenzymes in vivo. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[30] Pamela Reinagel,et al. Contact with a component of the polymerase II holoenzyme suffices for gene activation , 1995, Cell.
[31] C. Thompson,et al. Association of an activator with an RNA polymerase II holoenzyme. , 1995, Genes & development.
[32] Wanjin Hong,et al. A role for retinoblastoma protein in potentiating transcriptional activation by the glucocorticoid receptor , 1995, Nature.
[33] C. Peterson,et al. The SWI-SNF complex: a chromatin remodeling machine? , 1995, Trends in biochemical sciences.
[34] J. Hirschhorn,et al. A new class of histone H2A mutations in Saccharomyces cerevisiae causes specific transcriptional defects in vivo , 1995, Molecular and cellular biology.
[35] A. Wolffe,et al. The amino-terminal tails of the core histones and the translational position of the TATA box determine TBP/TFIIA association with nucleosomal DNA. , 1995, Nucleic acids research.
[36] G. Crabtree,et al. Binding and stimulation of HIV-1 integrase by a human homolog of yeast transcription factor SNF5. , 1994, Science.
[37] Sushovan Guha,et al. The retinoblastoma protein and BRG1 form a complex and cooperate to induce cell cycle arrest , 1994, Cell.
[38] Michael R. Green,et al. Facilitated binding of TATA-binding protein to nucleosomal DNA , 1994, Nature.
[39] Michael R. Green,et al. Nucleosome disruption and enhancement of activator binding by a human SW1/SNF complex , 1994, Nature.
[40] J. Workman,et al. Stimulation of GAL4 derivative binding to nucleosomal DNA by the yeast SWI/SNF complex. , 1994, Science.
[41] M. Carlson,et al. The SNF/SWI family of global transcriptional activators. , 1994, Current opinion in cell biology.
[42] D. Wechsler,et al. Differential binding of c-Myc and Max to nucleosomal DNA. , 1994, Molecular and cellular biology.
[43] H. Chiba,et al. Two human homologues of Saccharomyces cerevisiae SWI2/SNF2 and Drosophila brahma are transcriptional coactivators cooperating with the estrogen receptor and the retinoic acid receptor. , 1994, Nucleic acids research.
[44] Yang Li,et al. A multiprotein mediator of transcriptional activation and its interaction with the C-terminal repeat domain of RNA polymerase II , 1994, Cell.
[45] Richard A. Young,et al. An RNA polymerase II holoenzyme responsive to activators , 1994, Nature.
[46] R. Kingston,et al. Transcription factor (TF) IIB and TFIIA can independently increase the affinity of the TATA-binding protein for DNA. , 1994, The Journal of biological chemistry.
[47] Paul A. Khavari,et al. BRG1 contains a conserved domain of the SWI2/SNF2 family necessary for normal mitotic growth and transcription , 1993, Nature.
[48] M. Yaniv,et al. A human homologue of Saccharomyces cerevisiae SNF2/SWI2 and Drosophila brm genes potentiates transcriptional activation by the glucocorticoid receptor. , 1993, The EMBO journal.
[49] J. T. Kadonaga,et al. Potentiation of RNA polymerase II transcription by Gal4-VP16 during but not after DNA replication and chromatin assembly. , 1993, Genes & development.
[50] J. Workman,et al. Multiple functions of nucleosomes and regulatory factors in transcription. , 1993, Trends in biochemical sciences.
[51] F. Winston,et al. Yeast SNF/SWI transcriptional activators and the SPT/SIN chromatin connection. , 1992, Trends in genetics : TIG.
[52] M. Carlson,et al. Yeast SNF2/SWI2, SNF5, and SNF6 proteins function coordinately with the gene-specific transcriptional activators GAL4 and Bicoid. , 1992, Genes & development.
[53] P. Becker,et al. Cell-free system for assembly of transcriptionally repressed chromatin from Drosophila embryos. , 1992, Molecular and cellular biology.
[54] J. Ranish,et al. Isolation of two genes that encode subunits of the yeast transcription factor IIA. , 1992, Science.
[55] I. Herskowitz,et al. Characterization of the yeast SWI1, SWI2, and SWI3 genes, which encode a global activator of transcription , 1992, Cell.
[56] Thomas C. Kaufman,et al. brahma: A regulator of Drosophila homeotic genes structurally related to the yeast transcriptional activator SNF2 SWI2 , 1992, Cell.
[57] R. Kornberg,et al. Chromatin structure and transcription. , 1992, Annual review of cell biology.
[58] I. Herskowitz,et al. A negative regulator of HO transcription, SIN1 (SPT2), is a nonspecific DNA-binding protein related to HMG1 , 1991, Molecular and cellular biology.
[59] J. Workman,et al. Facilitated binding of GAL4 and heat shock factor to nucleosomal templates: differential function of DNA-binding domains. , 1991, Genes & development.
[60] Roger D. Kornberg,et al. A mediator required for activation of RNA polymerase II transcription in vitro , 1991, Nature.
[61] M. Carlson,et al. Functional interdependence of the yeast SNF2, SNF5, and SNF6 proteins in transcriptional activation. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[62] J. Workman,et al. Control of class II gene transcription during in vitro nucleosome assembly. , 1991, Methods in cell biology.
[63] D. Reinberg,et al. Factors involved in specific transcription by mammalian RNA polymerase II: role of transcription factors IIA, IID, and IIB during formation of a transcription-competent complex , 1990, Molecular and cellular biology.
[64] Robert Tjian,et al. Isolation and characterization of the Drosophila gene encoding the TATA box binding protein, TFIID , 1990, Cell.
[65] Roger D. Kornberg,et al. A novel mediator between activator proteins and the RNA polymerase II transcription apparatus , 1990, Cell.
[66] L. Guarente,et al. Identification of a yeast protein homologous in function to the mammalian general transcription factor, TFIIA. , 1989, The EMBO journal.
[67] D M Crothers,et al. Artificial nucleosome positioning sequences. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[68] P. Sharp,et al. Five intermediate complexes in transcription initiation by RNA polymerase II , 1989, Cell.
[69] D. Rhodes,et al. [27] Assembly of nucleosomes and chromatin in Vitro , 1989 .
[70] A. Shimamura,et al. [29] Assembly of chromatin with oocyte extracts , 1989 .
[71] A. Stein. Reconstitution of chromatin from purified components. , 1989, Methods in enzymology.
[72] T. Perlmann,et al. Specific glucocorticoid receptor binding to DNA reconstituted in a nucleosome. , 1988, The EMBO journal.
[73] H. Eisenberg,et al. Nucleosome core particle stability and conformational change. Effect of temperature, particle and NaCl concentrations, and crosslinking of histone H3 sulfhydryl groups. , 1984, Journal of molecular biology.
[74] B. Hamkalo,et al. Nucleosome dissociation at physiological ionic strengths. , 1981, Nucleic acids research.
[75] P. Doty,et al. Characterization of the histone core complex. , 1978, Proceedings of the National Academy of Sciences of the United States of America.
[76] M. Noll. Internal structure of the chromatin subunit. , 1974, Nucleic acids research.