scholarly article | Q13442814 |
P50 | author | Gordon L. Hager | Q67401984 |
P2093 | author name string | Scott A Coonrod | |
Michael J Guertin | |||
Xuesen Zhang | |||
P2860 | cites work | Chromatin Landscape Dictates HSF Binding to Target DNA Elements | Q21092435 |
Ultrafast and memory-efficient alignment of short DNA sequences to the human genome | Q21183894 | ||
Model-based analysis of ChIP-Seq (MACS) | Q21183902 | ||
An integrated encyclopedia of DNA elements in the human genome | Q22122150 | ||
Peptidylarginine deiminase 2-catalyzed histone H3 arginine 26 citrullination facilitates estrogen receptor α target gene activation | Q24294591 | ||
Activation of cAMP and mitogen responsive genes relies on a common nuclear factor | Q24313652 | ||
TRANSFAC and its module TRANSCompel: transcriptional gene regulation in eukaryotes | Q24538709 | ||
The insulation of genes from external enhancers and silencing chromatin | Q24540238 | ||
Frequent mutation of histone-modifying genes in non-Hodgkin lymphoma | Q24630610 | ||
Isolation of the lac repressor | Q24650471 | ||
UniPROBE: an online database of protein binding microarray data on protein-DNA interactions | Q24655466 | ||
Structural Basis of Site-Specific Histone Recognition by the Bromodomains of Human Coactivators PCAF and CBP/p300 | Q27650290 | ||
Structure of the p300 catalytic core and implications for chromatin targeting and HAT regulation | Q27685367 | ||
A CBP integrator complex mediates transcriptional activation and AP-1 inhibition by nuclear receptors | Q27860552 | ||
CREB-binding protein and p300 in transcriptional regulation | Q28209056 | ||
Phosphorylated CREB binds specifically to the nuclear protein CBP | Q28265019 | ||
Gene Dosage–Dependent Embryonic Development and Proliferation Defects in Mice Lacking the Transcriptional Integrator p300 | Q28270979 | ||
An expansive human regulatory lexicon encoded in transcription factor footprints | Q28274429 | ||
Rubinstein-Taybi syndrome caused by mutations in the transcriptional co-activator CBP | Q28295041 | ||
Nascent RNA sequencing reveals widespread pausing and divergent initiation at human promoters | Q28302903 | ||
An oestrogen-receptor-α-bound human chromatin interactome | Q29541719 | ||
MEME SUITE: tools for motif discovery and searching | Q29547204 | ||
JASPAR: an open-access database for eukaryotic transcription factor binding profiles | Q29614419 | ||
Genome-wide analysis of estrogen receptor binding sites | Q29614765 | ||
Anti-diabetic rosiglitazone remodels the adipocyte transcriptome by redistributing transcription to PPARγ-driven enhancers | Q33600223 | ||
A CTCF-independent role for cohesin in tissue-specific transcription | Q33812535 | ||
Molecular regulation of the endothelin-1 gene by hypoxia. Contributions of hypoxia-inducible factor-1, activator protein-1, GATA-2, AND p300/CBP. | Q33940517 | ||
Peroxisome proliferator-activated receptor gamma-dependent repression of the inducible nitric oxide synthase gene | Q33964333 | ||
p300 forms a stable, template-committed complex with chromatin: role for the bromodomain | Q33968417 | ||
A role for coactivators and histone acetylation in estrogen receptor alpha-mediated transcription initiation | Q34083316 | ||
Accurate prediction of inducible transcription factor binding intensities in vivo | Q34221053 | ||
Detecting differential usage of exons from RNA-seq data | Q34313279 | ||
Promoter structure, promoter recognition, and transcription activation in prokaryotes. | Q34328218 | ||
Mediator and p300/CBP-steroid receptor coactivator complexes have distinct roles, but function synergistically, during estrogen receptor alpha-dependent transcription with chromatin templates | Q34463013 | ||
Functional dissection of VP16, the trans-activator of herpes simplex virus immediate early gene expression | Q34555693 | ||
Caudal, a key developmental regulator, is a DPE-specific transcriptional factor | Q34857106 | ||
AP-2γ regulates oestrogen receptor-mediated long-range chromatin interaction and gene transcription | Q35161945 | ||
p300 and estrogen receptor cooperatively activate transcription via differential enhancement of initiation and reinitiation | Q35189958 | ||
Dynamics of the epigenetic landscape during erythroid differentiation after GATA1 restoration | Q35451782 | ||
Cellular reprogramming by the conjoint action of ERα, FOXA1, and GATA3 to a ligand-inducible growth state. | Q35458592 | ||
Oestrogen receptor-co-factor-chromatin specificity in the transcriptional regulation of breast cancer. | Q35626357 | ||
Differential DNase I hypersensitivity reveals factor-dependent chromatin dynamics | Q36021732 | ||
Abnormal skeletal patterning in embryos lacking a single Cbp allele: a partial similarity with Rubinstein-Taybi syndrome. | Q36584466 | ||
Estradiol-inducible squelching and cell growth arrest by a chimeric VP16-estrogen receptor expressed in Saccharomyces cerevisiae: suppression by an allele of PDR1 | Q36659655 | ||
Mechanisms by which transcription factors gain access to target sequence elements in chromatin | Q36836777 | ||
Spt6 enhances the elongation rate of RNA polymerase II in vivo | Q37196147 | ||
ChIP-Seq of ERalpha and RNA polymerase II defines genes differentially responding to ligands | Q37207706 | ||
p300 is a component of an estrogen receptor coactivator complex | Q37258046 | ||
Role of ETS transcription factors in the hypoxia-inducible factor-2 target gene selection. | Q38312685 | ||
Antitumor promotion and antiinflammation: down-modulation of AP-1 (Fos/Jun) activity by glucocorticoid hormone | Q38339139 | ||
Precise Maps of RNA Polymerase Reveal How Promoters Direct Initiation and Pausing | Q38606913 | ||
A role for insulator elements in the regulation of gene expression response to hypoxia | Q39446385 | ||
A rapid, extensive, and transient transcriptional response to estrogen signaling in breast cancer cells | Q39546838 | ||
Integrative model of genomic factors for determining binding site selection by estrogen receptor-α | Q39616908 | ||
Adenovirus E1A downregulates cJun- and JunB-mediated transcription by targeting their coactivator p300 | Q40019548 | ||
Evidence of DNA: protein interactions that mediate HSV-1 immediate early gene activation by VP16. | Q41336537 | ||
Functional antagonism between oncoprotein c-Jun and the glucocorticoid receptor | Q41721253 | ||
Functional antagonism between oncoprotein c-Jun and steroid hormone receptors | Q46054403 | ||
Drosophila CBP is a co-activator of cubitus interruptus in hedgehog signalling | Q47072204 | ||
DNA sequence requirements for generating paused polymerase at the start of hsp70 | Q52445465 | ||
Negative effect of the transcriptional activator GAL4 | Q59072863 | ||
Adenoviral ElA-associated protein p300 as a functional homologue of the transcriptional co-activator CBP | Q59095054 | ||
Steroid hormone receptors compete for factors that mediate their enhancer function | Q61818663 | ||
Transitional change in interaction between HIF-1 and HNF-4 in response to hypoxia | Q73016463 | ||
P433 | issue | 9 | |
P921 | main subject | estrogen | Q277954 |
P304 | page(s) | 1522-1533 | |
P577 | publication date | 2014-07-22 | |
P1433 | published in | Molecular Endocrinology | Q3319475 |
P1476 | title | Transient estrogen receptor binding and p300 redistribution support a squelching mechanism for estradiol-repressed genes | |
P478 | volume | 28 |
Q48295284 | A Cell-Permeable Stapled Peptide Inhibitor of the Estrogen Receptor/Coactivator Interaction. |
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Q92992938 | An improved auxin-inducible degron system preserves native protein levels and enables rapid and specific protein depletion |
Q48232838 | Analysis of computational footprinting methods for DNase sequencing experiments |
Q92475989 | Chromatin interactome mapping at 139 independent breast cancer risk signals |
Q33727032 | Class I lysine deacetylases promote glucocorticoid-induced transcriptional repression through functional interaction with LSD1. |
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Q92455783 | Decoding the Inversion Symmetry Underlying Transcription Factor DNA-Binding Specificity and Functionality in the Genome |
Q38429686 | Dissecting the genomic activity of a transcriptional regulator by the integrative analysis of omics data. |
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Q36074349 | Estrogens Suppress Spinal Endomorphin 2 Release in Female Rats in Phase with the Estrous Cycle |
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Q35935489 | Genome-wide footprinting: ready for prime time? |
Q39053368 | Genomic effects of glucocorticoids. |
Q38725396 | Inducible super-enhancers are organized based on canonical signal-specific transcription factor binding elements. |
Q35031399 | Inflammation-sensitive super enhancers form domains of coordinately regulated enhancer RNAs |
Q64212115 | Mechanisms of Action of Hematopoietic Transcription Factor PU.1 in Initiation of T-Cell Development |
Q38598170 | Modulating the Genomic Programming of Adipocytes. |
Q92617697 | Mutational landscape implicates epithelial-mesenchymal transition gene TGF-β2 mutations for uterine carcinosarcoma after adjuvant tamoxifen therapy for breast carcinoma |
Q90099983 | Nascent transcript analysis of glucocorticoid crosstalk with TNF defines primary and cooperative inflammatory repression |
Q39299559 | Nuclear Receptor Function through Genomics: Lessons from the Glucocorticoid Receptor. |
Q47217714 | Nuclear receptors in cancer - uncovering new and evolving roles through genomic analysis. |
Q34165702 | Targeted H3R26 deimination specifically facilitates estrogen receptor binding by modifying nucleosome structure |
Q35838981 | The Distinct Gene Regulatory Network of Myoglobin in Prostate and Breast Cancer |
Q37055702 | The Prozone Effect Accounts for the Paradoxical Function of the Cdk-Binding Protein Suc1/Cks |
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