Search results for "transcriptional regulation"

showing 10 items of 154 documents

Post-Transcriptional Regulation of Human Inducible Nitric-Oxide Synthase Expression by the Jun N-terminal Kinase

2007

Human inducible nitric-oxide synthase (iNOS) expression is regulated both at transcriptional and post-transcriptional levels. In the present study, the effect of Jun N-terminal kinase (JNK) on human iNOS expression was investigated. In A549/8 human alveolar epithelial cells, both the inhibition of JNK by a pharmacological inhibitor anthra[1,9-cd]pyrazol-6(2H)-one1,9-pyrazoloanthrone (SP600125) and small interfering RNA (siRNA)-mediated down-regulation of JNK led to a reduction of iNOS mRNA and protein expression. iNOS promoter activity was not affected by these treatments. Hence, JNK seems to regulate iNOS expression through post-transcriptional mechanisms by stabilizing iNOS mRNA. Our labo…

Small interfering RNARNA Stabilityp38 mitogen-activated protein kinasesDown-RegulationNitric Oxide Synthase Type IIRNA-binding proteinNitric Oxidep38 Mitogen-Activated Protein KinasesGene Expression Regulation EnzymologicCell LineTristetraprolinHumansPhosphorylationRNA Small InterferingPromoter Regions GeneticPost-transcriptional regulationAnthracenesPharmacologyRegulation of gene expressionMessenger RNAbiologyChemistryKinaseJNK Mitogen-Activated Protein KinasesEpithelial Cellsrespiratory systemMolecular biologyPulmonary AlveoliNitric oxide synthasebiology.proteinCytokinesMolecular MedicineSignal TransductionMolecular Pharmacology
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Reverse-engineering post-transcriptional regulation of gap genes in Drosophila melanogaster

2013

16 páginas, 6 figuras, 1 tabla

Systems biologyContext (language use)Computational biology03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineKrüppelGeneticsAnimalsDrosophila ProteinsRNA MessengerMolecular BiologyPost-transcriptional regulationlcsh:QH301-705.5Ecology Evolution Behavior and SystematicsGap gene030304 developmental biologyGenetics0303 health sciencesEcologybiologyModels GeneticProtein StabilitySystems BiologyGene Expression Regulation Developmentalbiology.organism_classificationRepressor ProteinsDrosophila melanogasterComputational Theory and Mathematicslcsh:Biology (General)Modeling and SimulationIdentifiabilityDrosophila melanogasterGenetic Engineering030217 neurology & neurosurgeryDrosophila ProteinResearch Article
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A Regulatory Mechanism Involving TBP-1/Tat-Binding Protein 1 and Akt/PKB in the Control of Cell Proliferation

2011

Abstract TBP-1 /Tat-Binding Protein 1 (also named Rpt-5, S6a or PSMC3) is a multifunctional protein, originally identified as a regulator of HIV-1-Tat mediated transcription. It is an AAA-ATPase component of the 19S regulative subunit of the proteasome and, as other members of this protein family, fulfils different cellular functions including proteolysis and transcriptional regulation. We and others reported that over expression of TBP-1 diminishes cell proliferation in different cellular contexts with mechanisms yet to be defined. Accordingly, we demonstrated that TBP-1 binds to and stabilizes the p14ARF oncosuppressor increasing its anti-oncogenic functions. However, TBP-1 restrains cell…

TBP-1/Tat-Binding Protein 1lcsh:Medicinemacromolecular substancesBiologymTORC2Cell GrowthTBP-1/Tat-Binding Protein 1; cell proliferationp14arfMolecular Cell BiologyGeneticsCancer GeneticsTranscriptional regulationGene Networkslcsh:ScienceBiologyProtein kinase BPI3K/AKT/mTOR pathwayMultidisciplinaryCell growthAKTBinding proteinlcsh:RMolecular biologySignaling CascadesCell biologyTBP-1enzymes and coenzymes (carbohydrates)cell proliferationbiology.proteinMdm2lcsh:QCell DivisionResearch ArticleSignal TransductionPLoS ONE
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The Saccharomyces cerevisiae flavodoxin-like proteins Ycp4 and Rfs1 play a role in stress response and in the regulation of genes related to metaboli…

2011

SPI1 is a gene whose expression responds to many environmental stimuli, including entry into stationary phase. We have performed a screening to identify genes that activate SPI1 promoter when overexpressed. The phosphatidylinositol- 4-phosphate 5-kinase gene MSS4 was identified as a positive activator of SPI1. Another SPI1 transcriptional regulator isolated was the flavodoxin-like gene YCP4. YCP4 and its homolog RFS1 regulate the expression of many genes during the late stages of growth. The double deletion mutant in YCP4 and its homolog RFS1 has an impact on gene expression related to metabolism by increasing the expression of genes involved in hexose transport and glycolysis, and decreasi…

TBX1Saccharomyces cerevisiae Proteins[SDV]Life Sciences [q-bio]Genes FungalFlavodoxinSaccharomyces cerevisiae[SDV.BC]Life Sciences [q-bio]/Cellular BiologyBiologyBiochemistryMicrobiology03 medical and health sciencesGene Expression Regulation FungalGene expressionGeneticsTranscriptional regulationPromoter Regions GeneticMolecular BiologyGeneHexose transportComputingMilieux_MISCELLANEOUS030304 developmental biologyOligonucleotide Array Sequence AnalysisGenetics0303 health sciencesSPI1Membrane GlycoproteinsActivator (genetics)Gene Expression Profiling030302 biochemistry & molecular biologyRNA FungalGeneral Medicine3. Good healthOxidative StressPhosphotransferases (Alcohol Group Acceptor)FermentationMutationTranslational elongation
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Transcriptional regulation of the stem cell leukemia gene by PU.1 and Elf-1.

1998

Abstract The SCL gene, also known astal-1, encodes a basic helix-loop-helix transcription factor that is pivotal for the normal development of all hematopoietic lineages. SCL is expressed in committed erythroid, mast, and megakaryocytic cells as well as in hematopoietic stem cells. Nothing is known about the regulation of SCL transcription in mast cells, and in other lineages GATA-1 is the only tissue-specific transcription factor recognized to regulate the SCL gene. We have therefore analyzed the molecular mechanisms underlyingSCL expression in mast cells. In this paper, we demonstrate that SCL promoter 1a was regulated by GATA-1 together with Sp1 and Sp3 in a manner similar to the situati…

Transcription GeneticDNA FootprintingBiologyBiochemistryCell LineMiceTranscription (biology)hemic and lymphatic diseasesProto-Oncogene ProteinsmedicineTranscriptional regulationBasic Helix-Loop-Helix Transcription FactorsAnimalsMast CellsPromoter Regions GeneticMolecular BiologyTranscription factorT-Cell Acute Lymphocytic Leukemia Protein 1DNA PrimersBase SequenceGATA2Nuclear ProteinsGATA1Cell BiologyMast cellMolecular biologyDNA-Binding ProteinsHaematopoiesismedicine.anatomical_structureGene Expression RegulationMutagenesis Site-DirectedTrans-ActivatorsStem cellTranscription FactorsThe Journal of biological chemistry
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Development, Differentiation, and Diversity of Innate Lymphoid Cells

2014

Recent years have witnessed the discovery of an unprecedented complexity in innate lymphocyte lineages, now collectively referred to as innate lymphoid cells (ILCs). ILCs are preferentially located at barrier surfaces and are important for protection against pathogens and for the maintenance of organ homeostasis. Inappropriate activation of ILCs has been linked to the pathogenesis of inflammatory and autoimmune disorders. Recent evidence suggests that ILCs can be grouped into two separate lineages, cytotoxic ILCs represented by conventional natural killer (cNK) cells and cytokine-producing helper-like ILCs (i.e., ILC1s, ILC2s, ILC3s). We will focus here on current work in humans and mice th…

Transcription GeneticLymphocyteCellular differentiationImmunologyBiologyArticleTight Junctions03 medical and health sciencesMice0302 clinical medicinemedicineTranscriptional regulationCytotoxic T cellImmunology and AllergyAnimalsHumansCell Lineageskin and connective tissue diseases030304 developmental biologyRegulation of gene expression0303 health sciencesStem CellsInnate lymphoid cellCell DifferentiationT-Lymphocytes Helper-InducerImmunity InnateKiller Cells Naturalbody regionsMulticellular organismmedicine.anatomical_structureInfectious DiseasesGene Expression RegulationImmunologyCytokinesStem cell030215 immunologySignal TransductionImmunity
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Transcriptional Activity and Nuclear Localization of Cabut, the Drosophila Ortholog of Vertebrate TGF-β-Inducible Early-Response Gene (TIEG) Proteins

2011

Background Cabut (Cbt) is a C2H2-class zinc finger transcription factor involved in embryonic dorsal closure, epithelial regeneration and other developmental processes in Drosophila melanogaster. Cbt orthologs have been identified in other Drosophila species and insects as well as in vertebrates. Indeed, Cbt is the Drosophila ortholog of the group of vertebrate proteins encoded by the TGF-s-inducible early-response genes (TIEGs), which belong to Sp1-like/Kruppel-like family of transcription factors. Several functional domains involved in transcriptional control and subcellular localization have been identified in the vertebrate TIEGs. However, little is known of whether these domains and fu…

Transcription GeneticNuclear Localization SignalsActive Transport Cell Nucleuslcsh:MedicineGene ExpressionBiochemistrybehavioral disciplines and activities03 medical and health sciencesModel Organisms0302 clinical medicineTransforming Growth Factor betaMolecular Cell Biologymental disordersGeneticsTranscriptional regulationAnimalsDrosophila Proteinslcsh:ScienceBiology030304 developmental biologyGeneticsZinc finger transcription factor0303 health sciencesMultidisciplinarybiologySchneider 2 cellslcsh:RfungiProteinsAnimal Modelsbiology.organism_classificationFusion proteinCellular StructuresDorsal closure3. Good healthRepressor ProteinsDrosophila melanogasterGene Expression RegulationVertebrateslcsh:QDrosophila melanogaster030217 neurology & neurosurgeryDrosophila ProteinNuclear localization sequenceTranscription FactorsResearch ArticleDevelopmental BiologyPLoS ONE
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Expression levels of a filament-specific transcriptional regulator are sufficient to determine Candida albicans morphology and virulence

2009

Candida albicans , the major human fungal pathogen, undergoes a reversible morphological transition from single yeast cells to pseudohyphal and hyphal filaments (elongated cells attached end-to-end). Because typical C. albicans infections contain a mixture of these morphologies it has, for many years, been difficult to assess the relative contribution of each form to virulence. In addition, the regulatory mechanisms that determine growth in pseudohyphal and hyphal morphologies are largely unknown. To address these questions we have generated a C. albicans strain that can be genetically manipulated to grow completely in the hyphal form under non-filament-inducing conditions in vitro. This w…

Transcription GeneticPopulationHyphaeVirulenceMicrobiologyMiceCandida albicansGene expressionTranscriptional regulationmedicineAnimalsCandida albicanseducationeducation.field_of_studyMultidisciplinaryVirulencebiologyCandidiasismedicine.diseasebiology.organism_classificationYeastCorpus albicansDisease Models AnimalCommentarySystemic candidiasisTranscription FactorsProceedings of the National Academy of Sciences
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mTOR Driven Gene Transcription Is Required for Cholesterol Production in Neurons of the Developing Cerebral Cortex

2021

AbstractDysregulated mammalian target of rapamycin (mTOR) activity is associated with various neurodevelopmental disorders ranging from idiopathic autism spectrum disorders to syndromes caused by single gene defects. This suggests that maintaining mTOR activity levels in a physiological range is essential for brain development and functioning. Upon activation, mTOR regulates a variety of cellular processes such as cell growth, autophagy and metabolism. On a molecular level, however, the consequences of mTOR activation in the brain are not well understood.Low levels of cholesterol are associated with a wide variety of neurodevelopmental disorders. We here describe numerous genes of the stero…

Transcription GeneticQH301-705.5Primary Cell CulturemTORC1Mechanistic Target of Rapamycin Complex 1BiologySREBPCatalysisArticleInorganic ChemistryMiceAutophagyTranscriptional regulationmedicineAnimalsPhysical and Theoretical ChemistryBiology (General)Molecular BiologyTranscription factorQD1-999mTORC1SpectroscopyPI3K/AKT/mTOR pathwayCerebral CortexNeuronsSterol Regulatory Element Binding ProteinsCell growthTOR Serine-Threonine KinasesOrganic Chemistrycholesterol ; NF-Y ; neurogenesis ; mTOR ; mTORC1 ; SP1 ; SREBPAutophagyGene Expression Regulation DevelopmentalcholesterolGeneral MedicineComputer Science ApplicationsSterol regulatory element-binding proteinCell biologySP1Chemistryneurogenesismedicine.anatomical_structureCCAAT-Binding FactorCerebral cortexmTORNF-YProtein KinasesSignal TransductionInternational Journal of Molecular Sciences
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ADR1 and SNF1 Mediate Different Mechanisms in Transcriptional Regulation of Yeast POT1 Gene

1994

We studied the consequences of adr1 and snf1 mutations on POT1 gene expression in different growth conditions. The results obtained reveal that ADR1 and SNF1 genes affect POT1 transcription in different ways: ADR1 has a minor role in derepression in low concentration of glucose but is essential for activation in stationary phase whereas SNF1 is essential for derepression and activation, although it does not seem to be directly involved in the molecular mechanism of activation in stationary phase.

Transcription GeneticRecombinant Fusion ProteinsGenes FungalBiophysicsSaccharomyces cerevisiaeBiologyMicrobodiesBiochemistryTranscription (biology)Gene Expression Regulation FungalGene expressionTranscriptional regulationAcetyl-CoA C-AcetyltransferaseLuciferasesMolecular BiologyGeneDerepressionRegulation of gene expressionGeneticsfungiGene Transfer TechniquesCell BiologyYeastCulture MediaCell biologycarbohydrates (lipids)GlucoseStationary phaseMutationProtein KinasesBiochemical and Biophysical Research Communications
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