Acetylation on histone H3 lysine 9 mediates a switch from transcription initiation to elongation
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J. Qin | B. O’Malley | S. Jung | M. Tsai | Leah A. Gates | C. Foulds | S. Tsai | Q. Feng | Wei Li | M. Bedford | Bokai Zhu | Jiejun Shi | A. Rohira | Cari A Sagum | Cari A. Sagum
[1] Sylvain Egloff,et al. The pol II CTD: new twists in the tail , 2016, Nature Structural &Molecular Biology.
[2] Lin-Feng Chen,et al. Multiple P-TEFbs cooperatively regulate the release of promoter-proximally paused RNA polymerase II , 2016, Nucleic acids research.
[3] Daniel S. Day,et al. Comprehensive analysis of promoter-proximal RNA polymerase II pausing across mammalian cell types , 2016, Genome Biology.
[4] W. Kraus,et al. Ready, pause, go: regulation of RNA polymerase II pausing and release by cellular signaling pathways. , 2015, Trends in biochemical sciences.
[5] Qiang Zhou,et al. Gene target specificity of the Super Elongation Complex (SEC) family: how HIV-1 Tat employs selected SEC members to activate viral transcription , 2015, Nucleic acids research.
[6] Alex P. Reynolds,et al. Native Elongating Transcript Sequencing Reveals Human Transcriptional Activity at Nucleotide Resolution , 2015, Cell.
[7] Wei Li,et al. AF9 YEATS Domain Links Histone Acetylation to DOT1L-Mediated H3K79 Methylation , 2014, Cell.
[8] S. Dent,et al. Functions of SAGA in development and disease. , 2014, Epigenomics.
[9] D. Price,et al. RNA polymerase II transcription elongation control. , 2013, Chemical reviews.
[10] Ross A. Hamilton,et al. Proteomic analysis of coregulators bound to ERα on DNA and nucleosomes reveals coregulator dynamics. , 2013, Molecular cell.
[11] Henry W. Long,et al. HIF1A Employs CDK8-Mediator to Stimulate RNAPII Elongation in Response to Hypoxia , 2013, Cell.
[12] Stephen H. Hughes,et al. H3K4me3 Interactions with TAF3 Regulate Preinitiation Complex Assembly and Selective Gene Activation , 2013, Cell.
[13] Chao Zhang,et al. Cyclin-dependent kinase control of the initiation-to-elongation switch of RNA polymerase II , 2012, Nature Structural &Molecular Biology.
[14] John T. Lis,et al. Promoter-proximal pausing of RNA polymerase II: emerging roles in metazoans , 2012, Nature Reviews Genetics.
[15] Data production leads,et al. An integrated encyclopedia of DNA elements in the human genome , 2012 .
[16] ENCODEConsortium,et al. An Integrated Encyclopedia of DNA Elements in the Human Genome , 2012, Nature.
[17] C. Bountra,et al. Epigenetic protein families: a new frontier for drug discovery , 2012, Nature Reviews Drug Discovery.
[18] W. Pijnappel,et al. ATAC-king the complexity of SAGA during evolution. , 2012, Genes & development.
[19] M. Geyer,et al. Serine-7 but not serine-5 phosphorylation primes RNA polymerase II CTD for P-TEFb recognition , 2012, Nature Communications.
[20] Kevin Struhl,et al. SAGA and ATAC histone acetyl transferase complexes regulate distinct sets of genes and ATAC defines a class of p300-independent enhancers. , 2011, Molecular cell.
[21] K. Plath,et al. Mediator coordinates PIC assembly with recruitment of CHD1. , 2011, Genes & development.
[22] P. Grant,et al. Sgf29 binds histone H3K4me2/3 and is required for SAGA complex recruitment and histone H3 acetylation , 2011, The EMBO journal.
[23] A. Shilatifard,et al. Human Mediator Subunit MED26 Functions as a Docking Site for Transcription Elongation Factors , 2011, Cell.
[24] M. Selbach,et al. Global quantification of mammalian gene expression control , 2011, Nature.
[25] A. Shilatifard,et al. The super elongation complex (SEC) and MLL in development and disease. , 2011, Genes & development.
[26] Li-Rong Yu,et al. Distinct roles of GCN5/PCAF‐mediated H3K9ac and CBP/p300‐mediated H3K18/27ac in nuclear receptor transactivation , 2011, The EMBO journal.
[27] Ali Shilatifard,et al. Licensed to elongate: a molecular mechanism for MLL-based leukaemogenesis , 2010, Nature Reviews Cancer.
[28] A. Hyman,et al. Quantitative Interaction Proteomics and Genome-wide Profiling of Epigenetic Histone Marks and Their Readers , 2010, Cell.
[29] M. Vermeulen,et al. Grasping trimethylation of histone H3 at lysine 4. , 2010, Epigenomics.
[30] A. Burlingame,et al. HIV-1 Tat and host AFF4 recruit two transcription elongation factors into a bifunctional complex for coordinated activation of HIV-1 transcription. , 2010, Molecular cell.
[31] Yves Levy,et al. HIV-1 Tat assembles a multifunctional transcription elongation complex and stably associates with the 7SK snRNP. , 2010, Molecular cell.
[32] A. Shilatifard,et al. AFF4, a component of the ELL/P-TEFb elongation complex and a shared subunit of MLL chimeras, can link transcription elongation to leukemia. , 2010, Molecular cell.
[33] John T. Lis,et al. Defining mechanisms that regulate RNA polymerase II transcription in vivo , 2009, Nature.
[34] Cole Trapnell,et al. Ultrafast and memory-efficient alignment of short DNA sequences to the human genome , 2009, Genome Biology.
[35] Leighton J. Core,et al. Nascent RNA Sequencing Reveals Widespread Pausing and Divergent Initiation at Human Promoters , 2008, Science.
[36] Michael Q. Zhang,et al. Combinatorial patterns of histone acetylations and methylations in the human genome , 2008, Nature Genetics.
[37] Thomas D. Schmittgen,et al. Analyzing real-time PCR data by the comparative CT method , 2008, Nature Protocols.
[38] D. Bentley,et al. RNA polymerase II pauses and associates with pre-mRNA processing factors at both ends of genes , 2008, Nature Structural &Molecular Biology.
[39] Scott A. Armstrong,et al. MLL translocations, histone modifications and leukaemia stem-cell development , 2007, Nature Reviews Cancer.
[40] Matthias Mann,et al. Selective Anchoring of TFIID to Nucleosomes by Trimethylation of Histone H3 Lysine 4 , 2007, Cell.
[41] L. Tora,et al. Distinct GCN5/PCAF-containing complexes function as co-activators and are involved in transcription factor and global histone acetylation , 2007, Oncogene.
[42] Mahavir Singh,et al. Structural Ramification for Acetyl‐Lysine Recognition by the Bromodomain of Human BRG1 Protein, a Central ATPase of the SWI/SNF Remodeling Complex , 2007, Chembiochem : a European journal of chemical biology.
[43] R. Young,et al. A Chromatin Landmark and Transcription Initiation at Most Promoters in Human Cells , 2007, Cell.
[44] William Stafford Noble,et al. Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project , 2007, Nature.
[45] Nathaniel D. Heintzman,et al. Distinct and predictive chromatin signatures of transcriptional promoters and enhancers in the human genome , 2007, Nature Genetics.
[46] T. Kouzarides. Chromatin Modifications and Their Function , 2007, Cell.
[47] Chao Xu,et al. Solution structure of human Brg1 bromodomain and its specific binding to acetylated histone tails. , 2007, Biochemistry.
[48] C. Allis,et al. Methylation of lysine 4 on histone H3: intricacy of writing and reading a single epigenetic mark. , 2007, Molecular cell.
[49] A. Shilatifard,et al. Cdk9 is an essential kinase in Drosophila that is required for heat shock gene expression, histone methylation and elongation factor recruitment , 2007, Molecular Genetics and Genomics.
[50] B. O’Malley,et al. Signaling within a Coactivator Complex: Methylation of SRC-3/AIB1 Is a MolecularSwitch for Complex Disassembly , 2006, Molecular and Cellular Biology.
[51] J. Yates,et al. Host Cell Factor and an Uncharacterized SANT Domain Protein Are Stable Components of ATAC, a Novel dAda2A/dGcn5-Containing Histone Acetyltransferase Complex in Drosophila , 2006, Molecular and Cellular Biology.
[52] J. Workman,et al. Preparation of Nuclear and Cytoplasmic Extracts from Mammalian Cells , 2001, Current protocols in pharmacology.
[53] J. Brady,et al. The bromodomain protein Brd4 is a positive regulatory component of P-TEFb and stimulates RNA polymerase II-dependent transcription. , 2005, Molecular cell.
[54] Qiang Zhou,et al. Recruitment of P-TEFb for stimulation of transcriptional elongation by the bromodomain protein Brd4. , 2005, Molecular cell.
[55] Leah Barrera,et al. A high-resolution map of active promoters in the human genome , 2005, Nature.
[56] J. Parvin,et al. Elongation by RNA polymerase II on chromatin templates requires topoisomerase activity. , 2003, Nucleic acids research.
[57] Jocelyn Côté,et al. A protein-domain microarray identifies novel protein-protein interactions. , 2002, The Biochemical journal.
[58] C. Allis,et al. Methylation of Histone H4 at Arginine 3 Facilitating Transcriptional Activation by Nuclear Hormone Receptor , 2001, Science.
[59] P. J. van der Spek,et al. Studies of Nematode TFIIE Function Reveal a Link between Ser-5 Phosphorylation of RNA Polymerase II and the Transition from Transcription Initiation to Elongation , 2001, Molecular and Cellular Biology.
[60] C. Allis,et al. The language of covalent histone modifications , 2000, Nature.
[61] R. Kobayashi,et al. ACF consists of two subunits, Acf1 and ISWI, that function cooperatively in the ATP-dependent catalysis of chromatin assembly. , 1999, Genes & development.
[62] Hiroshi Handa,et al. NELF, a Multisubunit Complex Containing RD, Cooperates with DSIF to Repress RNA Polymerase II Elongation , 1999, Cell.
[63] H. Handa,et al. Evidence that P‐TEFb alleviates the negative effect of DSIF on RNA polymerase II‐dependent transcription in vitro , 1998, The EMBO journal.
[64] R Ohba,et al. Yeast Gcn5 functions in two multisubunit complexes to acetylate nucleosomal histones: characterization of an Ada complex and the SAGA (Spt/Ada) complex. , 1997, Genes & development.
[65] D. Price,et al. Control of RNA Polymerase II Elongation Potential by a Novel Carboxyl-terminal Domain Kinase* , 1996, The Journal of Biological Chemistry.
[66] A. Shilatifard,et al. An RNA Polymerase II Elongation Factor Encoded by the Human ELL Gene , 1996, Science.
[67] C. Allis,et al. Tetrahymena Histone Acetyltransferase A: A Homolog to Yeast Gcn5p Linking Histone Acetylation to Gene Activation , 1996, Cell.
[68] D. Price,et al. Purification of P-TEFb, a Transcription Factor Required for the Transition into Productive Elongation (*) , 1995, The Journal of Biological Chemistry.
[69] R. Simpson. Structure of chromatin containing extensively acetylated H3 and H4 , 1978, Cell.