Acetylation-dependent SAGA complex dimerization promotes nucleosome acetylation and gene transcription
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Qian Xiong | F. Ge | Shanshan Li | Xilan Yu | Jie Hu | Junhua Huang | Wenjing Dai | Duncheng Xiao | Cuifang Liu
[1] U. Bedi,et al. USP22 promotes HER2-driven mammary carcinoma aggressiveness by suppressing the unfolded protein response , 2021, Oncogene.
[2] K. Natarajan,et al. Interplay between transcriptional regulators and the SAGA chromatin modifying complex fine-tune iron homeostasis , 2021, The Journal of biological chemistry.
[3] L. Tora,et al. Histone H2Bub1 deubiquitylation is essential for mouse development, but does not regulate global RNA polymerase II transcription , 2021, Cell Death & Differentiation.
[4] J. Workman,et al. Metabolic regulation of telomere silencing by SESAME complex-catalyzed H3T11 phosphorylation , 2021, Nature Communications.
[5] H. Meziane,et al. SCA7 Mouse Cerebellar Pathology Reveals Preferential Downregulation of Key Purkinje Cell-Identity Genes and Shared Disease Signature with SCA1 and SCA2 , 2020, The Journal of Neuroscience.
[6] A. Ben-Shem,et al. Architecture of the multi‐functional SAGA complex and the molecular mechanism of holding TBP , 2020, The FEBS journal.
[7] M. Cvijovic,et al. Fine-Tuning of Energy Levels Regulates SUC2 via a SNF1-Dependent Feedback Loop , 2020, Frontiers in Physiology.
[8] C. Pears,et al. Methylation-directed acetylation of histone H3 regulates developmental sensitivity to histone deacetylase inhibition , 2020, bioRxiv.
[9] Shanshan Li,et al. Histone acetyltransferase Gcn5 regulates gene expression by promoting the transcription of histone methyltransferase SET1. , 2020, Biochimica et biophysica acta. Gene regulatory mechanisms.
[10] Aimee T. Farria,et al. Targeting the SAGA and ATAC Transcriptional Coactivator Complexes in MYC-Driven Cancers , 2020, Cancer Research.
[11] S. Hahn,et al. Two roles for the yeast transcription coactivator SAGA and a set of genes redundantly regulated by TFIID and SAGA , 2020, eLife.
[12] A. Ben-Shem,et al. Structure of SAGA and mechanism of TBP deposition on gene promoters , 2020, Nature.
[13] C. Dienemann,et al. Structure of transcription coactivator SAGA , 2019, Nature.
[14] J. Workman,et al. Set1-catalyzed H3K4 trimethylation antagonizes the HIR/Asf1/Rtt106 repressor complex to promote histone gene expression and chronological life span , 2019, Nucleic acids research.
[15] A. Roguev,et al. The Set1 complex is dimeric and acts with Jhd2 demethylation to convey symmetrical H3K4 trimethylation , 2018, bioRxiv.
[16] A. Kossiakoff,et al. Structural basis for activation of SAGA histone acetyltransferase Gcn5 by partner subunit Ada2 , 2018, Proceedings of the National Academy of Sciences.
[17] Sannie J. Culbertson,et al. Distinct requirements of linker DNA and transcriptional activators in promoting SAGA-mediated nucleosome acetylation , 2018, The Journal of Biological Chemistry.
[18] S. Berger,et al. Regulation of chromatin and gene expression by metabolic enzymes and metabolites , 2018, Nature Reviews Molecular Cell Biology.
[19] L. Tora,et al. Sharing the SAGA. , 2017, Trends in biochemical sciences.
[20] Srinivas Ramachandran,et al. Transcription of Nearly All Yeast RNA Polymerase II-Transcribed Genes Is Dependent on Transcription Factor TFIID. , 2017, Molecular cell.
[21] S. Hahn,et al. SAGA is a general cofactor for RNA polymerase II transcription , 2017, Molecular cell.
[22] V. Band,et al. Acetylation of Mammalian ADA3 Is Required for Its Functional Roles in Histone Acetylation and Cell Proliferation , 2016, Molecular and Cellular Biology.
[23] A. Brik,et al. Structural basis for histone H2B deubiquitination by the SAGA DUB module , 2016, Science.
[24] Sean D. Taverna,et al. Nucleosome competition reveals processive acetylation by the SAGA HAT module , 2015, Proceedings of the National Academy of Sciences.
[25] Norman E. Davey,et al. Acetylome Profiling Reveals Overlap in the Regulation of Diverse Processes by Sirtuins, Gcn5, and Esa1* , 2014, Molecular & Cellular Proteomics.
[26] L. Tora,et al. The SAGA coactivator complex acts on the whole transcribed genome and is required for RNA polymerase II transcription , 2014, Genes & development.
[27] S. Gygi,et al. A High-Confidence Interaction Map Identifies SIRT1 as a Mediator of Acetylation of USP22 and the SAGA Coactivator Complex , 2013, Molecular and Cellular Biology.
[28] W. Pijnappel,et al. ATAC-king the complexity of SAGA during evolution. , 2012, Genes & development.
[29] P. Grant,et al. Sgf29 binds histone H3K4me2/3 and is required for SAGA complex recruitment and histone H3 acetylation , 2011, The EMBO journal.
[30] Mihaela E. Sardiu,et al. Combinatorial depletion analysis to assemble the network architecture of the SAGA and ADA chromatin remodeling complexes , 2011, Molecular systems biology.
[31] Xin-shu Dong,et al. Aberrant expression of USP22 is associated with liver metastasis and poor prognosis of colorectal cancer , 2011, Journal of surgical oncology.
[32] K. Wellen,et al. Cellular metabolic stress: considering how cells respond to nutrient excess. , 2010, Molecular cell.
[33] Sandrine Caburet,et al. Generic binding sites, generic DNA‐binding domains: where does specific promoter recognition come from? , 2010, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[34] Junjie Chen,et al. SIRT1 Regulates Autoacetylation and Histone Acetyltransferase Activity of TIP60* , 2010, The Journal of Biological Chemistry.
[35] Yifan Cheng,et al. The chromatin remodeler ACF acts as a dimeric motor to space nucleosomes , 2009, Nature.
[36] Jeroen Krijgsveld,et al. Cooperative binding of two acetylation marks on a histone tail by a single bromodomain , 2009, Nature.
[37] M. Shogren-Knaak,et al. The Gcn5 Bromodomain of the SAGA Complex Facilitates Cooperative and Cross-tail Acetylation of Nucleosomes* , 2009, Journal of Biological Chemistry.
[38] M. Shogren-Knaak,et al. Cross-talk between histone H3 tails produces cooperative nucleosome acetylation , 2008, Proceedings of the National Academy of Sciences.
[39] R. Roeder,et al. The STAGA Subunit ADA2b Is an Important Regulator of Human GCN5 Catalysis , 2008, Molecular and Cellular Biology.
[40] G. Blobel,et al. Molecular basis for the autoregulation of the protein acetyl transferase Rtt109 , 2008, Proceedings of the National Academy of Sciences.
[41] Ming-Ming Zhou,et al. Structural basis of site-specific histone recognition by the bromodomains of human coactivators PCAF and CBP/p300. , 2008, Structure.
[42] Yuan-Liang Wang,et al. STAGA Recruits Mediator to the MYC Oncoprotein To Stimulate Transcription and Cell Proliferation , 2007, Molecular and Cellular Biology.
[43] Fan Zhang,et al. Gcn5 promotes acetylation, eviction, and methylation of nucleosomes in transcribed coding regions. , 2007, Molecular cell.
[44] M. Carey,et al. A mechanism for coordinating chromatin modification and preinitiation complex assembly. , 2006, Molecular cell.
[45] Patrick Schultz,et al. Molecular architecture of the S. cerevisiae SAGA complex. , 2004, Molecular cell.
[46] C. Crane-Robinson,et al. A Short-range Gradient of Histone H3 Acetylation and Tup1p Redistribution at the Promoter of the Saccharomyces cerevisiae SUC2 Gene* , 2004, Journal of Biological Chemistry.
[47] B. Pugh,et al. A genome-wide housekeeping role for TFIID and a highly regulated stress-related role for SAGA in Saccharomyces cerevisiae. , 2004, Molecular cell.
[48] H. Reinke,et al. Multiple Mechanistically Distinct Functions of SAGA at the PHO5 Promoter , 2003, Molecular and Cellular Biology.
[49] J. Workman,et al. Function and Selectivity of Bromodomains in Anchoring Chromatin-Modifying Complexes to Promoter Nucleosomes , 2002, Cell.
[50] P. Grant,et al. Role of the Ada2 and Ada3 Transcriptional Coactivators in Histone Acetylation* , 2002, The Journal of Biological Chemistry.
[51] P. Evans,et al. The structural basis for the recognition of acetylated histone H4 by the bromodomain of histone acetyltransferase Gcn5p , 2000, The EMBO journal.
[52] John R. Yates,et al. The ADA Complex Is a Distinct Histone Acetyltransferase Complex in Saccharomyces cerevisiae , 1999, Molecular and Cellular Biology.
[53] Jerry L. Workman,et al. Expanded Lysine Acetylation Specificity of Gcn5 in Native Complexes* , 1999, The Journal of Biological Chemistry.
[54] P. Grant,et al. Transcriptional activators direct histone acetyltransferase complexes to nucleosomes , 1998, Nature.
[55] 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.
[56] M. Carlson,et al. Upstream region of the SUC2 gene confers regulated expression to a heterologous gene in Saccharomyces cerevisiae , 1985, Molecular and cellular biology.