Item Type | Name |
Academic Article
|
RNA polymerase II holoenzyme contains SWI/SNF regulators involved in chromatin remodeling.
|
Academic Article
|
Repression and activation by multiprotein complexes that alter chromatin structure.
|
Academic Article
|
Activator-dependent regulation of transcriptional pausing on nucleosomal templates.
|
Academic Article
|
Energy-dependent chromatin remodelers: complex complexes and their components.
|
Academic Article
|
Accessibility of nucleosomal DNA to V(D)J cleavage is modulated by RSS positioning and HMG1.
|
Academic Article
|
Human SWI/SNF nucleosome remodeling activity is partially inhibited by linker histone H1.
|
Academic Article
|
Mammalian SWI/SNF complexes promote MyoD-mediated muscle differentiation.
|
Academic Article
|
Purification and characterization of mSin3A-containing Brg1 and hBrm chromatin remodeling complexes.
|
Academic Article
|
Phosphorylation of linker histones regulates ATP-dependent chromatin remodeling enzymes.
|
Academic Article
|
The myogenic basic helix-loop-helix family of transcription factors shows similar requirements for SWI/SNF chromatin remodeling enzymes during muscle differentiation in culture.
|
Academic Article
|
Repositioning of muscle-specific genes relative to the periphery of SC-35 domains during skeletal myogenesis.
|
Academic Article
|
p38 pathway targets SWI-SNF chromatin-remodeling complex to muscle-specific loci.
|
Academic Article
|
Inducible changes in cell size and attachment area due to expression of a mutant SWI/SNF chromatin remodeling enzyme.
|
Academic Article
|
MyoD targets chromatin remodeling complexes to the myogenin locus prior to forming a stable DNA-bound complex.
|
Academic Article
|
Brg1, the ATPase subunit of the SWI/SNF chromatin remodeling complex, is required for myeloid differentiation to granulocytes.
|
Academic Article
|
Chromatin domain activation via GATA-1 utilization of a small subset of dispersed GATA motifs within a broad chromosomal region.
|
Academic Article
|
HMGN1 is dispensable for myogenesis and adipogenesis.
|
Academic Article
|
Selective and antagonistic functions of SWI/SNF and Mi-2beta nucleosome remodeling complexes during an inflammatory response.
|
Academic Article
|
Mammalian SWI-SNF complexes contribute to activation of the hsp70 gene.
|
Academic Article
|
Functional delineation of three groups of the ATP-dependent family of chromatin remodeling enzymes.
|
Academic Article
|
BRG-1 is required for RB-mediated cell cycle arrest.
|
Academic Article
|
Mammalian SWI/SNF complexes facilitate DNA double-strand break repair by promoting gamma-H2AX induction.
|
Academic Article
|
Myogenin and the SWI/SNF ATPase Brg1 maintain myogenic gene expression at different stages of skeletal myogenesis.
|
Academic Article
|
Chromatin remodeling by SWI/SNF results in nucleosome mobilization to preferential positions in the rat osteocalcin gene promoter.
|
Academic Article
|
Disruption of Ini1 leads to peri-implantation lethality and tumorigenesis in mice.
|
Academic Article
|
SWI/SNF chromatin remodeling ATPase Brm regulates the differentiation of early retinal stem cells/progenitors by influencing Brn3b expression and Notch signaling.
|
Academic Article
|
Phenotypic transcription factors epigenetically mediate cell growth control.
|
Academic Article
|
MyoD can induce cell cycle arrest but not muscle differentiation in the presence of dominant negative SWI/SNF chromatin remodeling enzymes.
|
Academic Article
|
The SWI/SNF chromatin remodeling subunit BRG1 is a critical regulator of p53 necessary for proliferation of malignant cells.
|
Academic Article
|
Ectopic runx2 expression in mammary epithelial cells disrupts formation of normal acini structure: implications for breast cancer progression.
|
Academic Article
|
Myogenic microRNA expression requires ATP-dependent chromatin remodeling enzyme function.
|
Academic Article
|
The human SWI/SNF complex associates with RUNX1 to control transcription of hematopoietic target genes.
|
Academic Article
|
Architectural genetic and epigenetic control of regulatory networks: compartmentalizing machinery for transcription and chromatin remodeling in nuclear microenvironments.
|
Academic Article
|
Chromatin immunoprecipitation assay for tissue-specific genes using early-stage mouse embryos.
|
Academic Article
|
Separation of primary structural components conferring autoregulation, transactivation, and DNA-binding properties to the herpes simplex virus transcriptional regulatory protein ICP4.
|
Academic Article
|
An improved restriction enzyme accessibility assay for analyzing changes in chromatin structure in samples of limited cell number.
|
Academic Article
|
Chd2 interacts with H3.3 to determine myogenic cell fate.
|
Academic Article
|
Protein arginine methyltransferase 7 regulates cellular response to DNA damage by methylating promoter histones H2A and H4 of the polymerase d catalytic subunit gene, POLD1.
|
Academic Article
|
Unfolding heterochromatin for replication.
|
Academic Article
|
Nuclear shape changes are induced by knockdown of the SWI/SNF ATPase BRG1 and are independent of cytoskeletal connections.
|
Academic Article
|
Oncogenic targeting of BRM drives malignancy through C/EBP?-dependent induction of a5 integrin.
|
Academic Article
|
Functional properties of ATP-dependent chromatin remodeling enzymes.
|
Academic Article
|
Loss of the INI1 tumor suppressor does not impair the expression of multiple BRG1-dependent genes or the assembly of SWI/SNF enzymes.
|
Academic Article
|
Temporal recruitment of transcription factors and SWI/SNF chromatin-remodeling enzymes during adipogenic induction of the peroxisome proliferator-activated receptor gamma nuclear hormone receptor.
|
Academic Article
|
SWI/SNF chromatin remodeling complex is obligatory for BMP2-induced, Runx2-dependent skeletal gene expression that controls osteoblast differentiation.
|
Academic Article
|
Snf5 tumor suppressor couples chromatin remodeling, checkpoint control, and chromosomal stability.
|
Academic Article
|
Effects of HMGN1 on chromatin structure and SWI/SNF-mediated chromatin remodeling.
|
Academic Article
|
Skeletal muscle specification by myogenin and Mef2D via the SWI/SNF ATPase Brg1.
|
Academic Article
|
The microphthalmia-associated transcription factor requires SWI/SNF enzymes to activate melanocyte-specific genes.
|
Academic Article
|
Chromatin remodelling in mammalian differentiation: lessons from ATP-dependent remodellers.
|
Academic Article
|
Chromatin remodeling and transcriptional activity of the bone-specific osteocalcin gene require CCAAT/enhancer-binding protein beta-dependent recruitment of SWI/SNF activity.
|
Academic Article
|
The protein arginine methyltransferase Prmt5 is required for myogenesis because it facilitates ATP-dependent chromatin remodeling.
|
Academic Article
|
Interaction of papillomavirus E2 protein with the Brm chromatin remodeling complex leads to enhanced transcriptional activation.
|
Academic Article
|
The Chd family of chromatin remodelers.
|
Academic Article
|
A mutation in the mouse Chd2 chromatin remodeling enzyme results in a complex renal phenotype.
|
Academic Article
|
Induction of TLR4-target genes entails calcium/calmodulin-dependent regulation of chromatin remodeling.
|
Academic Article
|
Distinct protein arginine methyltransferases promote ATP-dependent chromatin remodeling function at different stages of skeletal muscle differentiation.
|
Academic Article
|
The SWI/SNF chromatin remodeling complex regulates myocardin-induced smooth muscle-specific gene expression.
|
Academic Article
|
SWI/SNF-independent nuclease hypersensitivity and an increased level of histone acetylation at the P1 promoter accompany active transcription of the bone master gene Runx2.
|
Academic Article
|
SWI/SNF chromatin remodeling enzyme ATPases promote cell proliferation in normal mammary epithelial cells.
|
Academic Article
|
Chromatin accessibility and transcription factor binding at the PPAR?2 promoter during adipogenesis is protein kinase A-dependent.
|
Academic Article
|
Dicer is required for the formation of white but not brown adipose tissue.
|
Academic Article
|
Isolation of nuclei from skeletal muscle satellite cells and myofibers for use in chromatin immunoprecipitation assays.
|
Academic Article
|
Protein arginine methyltransferase 5 (Prmt5) promotes gene expression of peroxisome proliferator-activated receptor ?2 (PPAR?2) and its target genes during adipogenesis.
|
Academic Article
|
Wnt3 function in the epiblast is required for the maintenance but not the initiation of gastrulation in mice.
|
Academic Article
|
The Scaffold attachment factor b1 (Safb1) regulates myogenic differentiation by facilitating the transition of myogenic gene chromatin from a repressed to an activated state.
|
Academic Article
|
The role of ICP4 repressor activity in temporal expression of the IE-3 and latency-associated transcript promoters during HSV-1 infection.
|
Concept
|
Body Temperature Regulation
|
Concept
|
Down-Regulation
|
Concept
|
Chromatin Immunoprecipitation
|
Concept
|
Up-Regulation
|
Concept
|
Chromatin
|
Concept
|
Gene Expression Regulation, Developmental
|
Concept
|
Gene Expression Regulation
|
Concept
|
Gene Expression Regulation, Viral
|
Concept
|
Gene Expression Regulation, Enzymologic
|
Concept
|
Gene Expression Regulation, Neoplastic
|
Concept
|
Chromatin Assembly and Disassembly
|
Academic Article
|
BRG1, a SWI/SNF chromatin remodeling enzyme ATPase, is required for maintenance of nuclear shape and integrity.
|
Academic Article
|
The PPAR? locus makes long-range chromatin interactions with selected tissue-specific gene loci during adipocyte differentiation in a protein kinase A dependent manner.
|
Academic Article
|
The bone-specific Runx2-P1 promoter displays conserved three-dimensional chromatin structure with the syntenic Supt3h promoter.
|
Academic Article
|
Contrasting roles for MyoD in organizing myogenic promoter structures during embryonic skeletal muscle development.
|
Academic Article
|
Spatial re-organization of myogenic regulatory sequences temporally controls gene expression.
|
Academic Article
|
Opposing calcium-dependent signalling pathways control skeletal muscle differentiation by regulating a chromatin remodelling enzyme.
|
Academic Article
|
The SWI/SNF ATPases Are Required for Triple Negative Breast Cancer Cell Proliferation.
|
Academic Article
|
Brg1 Controls the Expression of Pax7 to Promote Viability and Proliferation of Mouse Primary Myoblasts.
|
Academic Article
|
Transcriptional and post-transcriptional control of adipocyte differentiation by Jumonji domain-containing protein 6.
|
Academic Article
|
C-ing the Genome: A Compendium of Chromosome Conformation Capture Methods to Study Higher-Order Chromatin Organization.
|
Academic Article
|
Chromatin interaction analysis reveals changes in small chromosome and telomere clustering between epithelial and breast cancer cells.
|
Academic Article
|
Promoter-enhancer looping at the PPAR?2 locus during adipogenic differentiation requires the Prmt5 methyltransferase.
|
Academic Article
|
Targeting the chromatin remodeling enzyme BRG1 increases the efficacy of chemotherapy drugs in breast cancer cells.
|
Academic Article
|
SMARCA4 regulates gene expression and higher-order chromatin structure in proliferating mammary epithelial cells.
|
Academic Article
|
RUNX1 contributes to higher-order chromatin organization and gene regulation in breast cancer cells.
|
Academic Article
|
The BRG1 chromatin remodeling enzyme links cancer cell metabolism and proliferation.
|
Academic Article
|
Identifying Nuclear Matrix-Attached DNA Across the Genome.
|
Academic Article
|
Intranuclear and higher-order chromatin organization of the major histone gene cluster in breast cancer.
|
Academic Article
|
The BRG1 ATPase of human SWI/SNF chromatin remodeling enzymes as a driver of cancer.
|
Academic Article
|
Casein kinase 2-mediated phosphorylation of Brahma-related gene 1 controls myoblast proliferation and contributes to SWI/SNF complex composition.
|
Academic Article
|
Temporal regulation of chromatin during myoblast differentiation.
|
Academic Article
|
Bivalent Epigenetic Control of Oncofetal Gene Expression in Cancer.
|
Academic Article
|
RUNX1-dependent mechanisms in biological control and dysregulation in cancer.
|
Academic Article
|
Higher order genomic organization and epigenetic control maintain cellular identity and prevent breast cancer.
|
Academic Article
|
Calcineurin Broadly Regulates the Initiation of Skeletal Muscle-Specific Gene Expression by Binding Target Promoters and Facilitating the Interaction of the SWI/SNF Chromatin Remodeling Enzyme.
|
Academic Article
|
CK2-Dependent Phosphorylation of the Brg1 Chromatin Remodeling Enzyme Occurs during Mitosis.
|
Academic Article
|
Regulation of the Mammalian SWI/SNF Family of Chromatin Remodeling Enzymes by Phosphorylation during Myogenesis.
|
Academic Article
|
The Bromodomains of the mammalian SWI/SNF (mSWI/SNF) ATPases Brahma (BRM) and Brahma Related Gene 1 (BRG1) promote chromatin interaction and are critical for skeletal muscle differentiation.
|
Academic Article
|
Differential requirements for different subfamilies of the mammalian SWI/SNF chromatin remodeling enzymes in myoblast cell cycle progression and expression of the Pax7 regulator.
|
Academic Article
|
Epigenetic-Mediated Regulation of Gene Expression for Biological Control and Cancer: Cell and Tissue Structure, Function, and Phenotype.
|
Academic Article
|
Epigenetic-Mediated Regulation of Gene Expression for Biological Control and Cancer: Fidelity of Mechanisms Governing the Cell Cycle.
|
Academic Article
|
Protein arginine methyltransferase 5 (Prmt5) localizes to chromatin loop anchors and modulates expression of genes at TAD boundaries during early adipogenesis.
|
Academic Article
|
Regulation of the Wnt signaling pathway during myogenesis by the mammalian SWI/SNF ATPase BRG1.
|
Academic Article
|
Differential Contributions of mSWI/SNF Chromatin Remodeler Sub-Families to Myoblast Differentiation.
|