Search results for "cytoplasm"

showing 10 items of 659 documents

Multifunctionality of F-rich nucleoporins

2020

Nucleoporins (Nups) represent a range of proteins most known for composing the macromolecular assembly of the nuclear pore complex (NPC). Among them, the family of intrinsically disordered proteins (IDPs) phenylalanine-glycine (FG) rich Nups, form the permeability barrier and coordinate the high-speed nucleocytoplasmic transport in a selective way. Those FG-Nups have been demonstrated to participate in various biological processes besides nucleocytoplasmic transport. The high number of accessible hydrophobic motifs of FG-Nups potentially gives rise to this multifunctionality, enabling them to form unique microenvironments. In this review, we discuss the multifunctionality of disordered and …

CytoplasmProtein FoldingDNA RepairPhenylalanineAmino Acid MotifsActive Transport Cell NucleusGlycineIntrinsically disordered proteinsBiochemistryArticle03 medical and health sciences0302 clinical medicineAnimalsHumansCell LineageCiliaNuclear pore030304 developmental biologyCell Nucleus0303 health sciencesChemistryNeurodegenerative DiseasesIntrinsically Disordered ProteinsNuclear Pore Complex ProteinsMacromolecular assemblyProtein TransportGene Expression RegulationNucleocytoplasmic TransportNuclear PoreBiophysicsNucleoporinHydrophobic and Hydrophilic Interactions030217 neurology & neurosurgeryBiological networkBiochemical Society Transactions
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A genetic approach to dissect the role of prefoldins in Arabidopsis

2021

SummaryThe prefoldin complex (PFDc) was identified in humans as co-chaperone of the cytosolic chaperonin TRiC/CCT. It is conserved in eukaryotes and is composed of subunits PFD1 to 6. PFDc-TRiC/CCT operates folding actin and tubulins. In addition to this function, PFDs participate in a wide range of cellular processes, both in the cytoplasm and in the nucleus, and their malfunction cause developmental alterations and disease in animals, and altered growth and environmental responses in yeast and plants. Genetic analyses in yeast indicate that not all functions performed by PFDs require the participation of the canonical complex. The lack of systematic genetic analyses in higher eukaryotes m…

CytoplasmProtein subunitArabidopsisMutantBiologyPrefoldin complexbiology.organism_classificationTranscription factorActinFunction (biology)Cell biology
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Analysis of cytochrome C oxidase subunits III and IV expression in developing rat brain

2004

Abstract Cytochrome c oxidase (COX) complex is built up with both nucleus- and mitochondrion-encoded subunits. Biogenesis and assembly of the complex thus requires fine cross-talk between the two compartments. In order to shed light on the regulation of nuclear–mitochondrial interactions, we studied the expression of COXIII (mitochondrion-encoded) and COXIV (nucleus-encoded) in adult rat tissues and rat developing brain. We found that the levels of COXIV protein and mRNA are not linearly related, thus suggesting a post-transcriptional mode of regulation. In agreement with this observation, we report the presence of a protein that specifically binds to the 3′-untranslated region of COXIV mRN…

CytoplasmRNA-binding proteinProtein subunitBlotting WesternCOX IVRNA-binding proteinMitochondrionBiologyGene Expression Regulation EnzymologicElectron Transport Complex IVAnimalsCytochrome c oxidaseElectrophoresis Gel Two-DimensionalCOX III.RNA MessengerRNA Processing Post-TranscriptionalMessenger RNAGeneral NeuroscienceBrainProteinsRNABlotting NorthernMitochondriaRatsProtein TransportCytosolnucleus-mitochondrion cross-talkBiochemistryCytoplasmbiology.proteinNeuroscience
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Cytoglobin is a respiratory protein in connective tissue and neurons, which is up-regulated by hypoxia.

2004

Cytoglobin is a recently discovered vertebrate globin distantly related to myoglobin, and its function is unknown. Here we present the first detailed analysis of the distribution and expression of cytoglobin. Northern and Western blotting experiments show the presence of cytoglobin mRNA and protein in a broad range of tissues. Quantitative PCR demonstrates an up-regulation of cytoglobin mRNA levels in rat heart and liver under hypoxic conditions (22 and 44 h of 9% oxygen). Immunofluorescence studies with three antibodies directed against different epitopes of the protein consistently show cytoglobin in connective tissue fibroblasts as well as in hepatic stellate cells. Cytoglobin is also pr…

CytoplasmRespiratory SystemFluorescent Antibody TechniqueBiochemistryMiceAntibody SpecificityChlorocebus aethiopsRespiratory functionHypoxiaNeuronsMice Inbred BALB CReverse Transcriptase Polymerase Chain ReactionCytoglobinNuclear ProteinsImmunohistochemistryGlobinsRespiratory proteinTracheamedicine.anatomical_structureLiverConnective TissueNeuroglobinRecombinant Fusion ProteinsGreen Fluorescent ProteinsMolecular Sequence DataConnective tissueBiologyTransfectionAntibodiesBone and BonesmedicineAnimalsHumansGlobinAmino Acid SequenceRNA MessengerMolecular BiologyVero CellsCell NucleusMessenger RNAMyocardiumCytoglobinCell BiologyFibroblastsMolecular biologyPeptide FragmentsRatsOxygenLuminescent ProteinsGene Expression RegulationHepatic stellate cellHeLa CellsThe Journal of biological chemistry
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Rhodopsin's carboxy-terminal cytoplasmic tail acts as a membrane receptor for cytoplasmic dynein by binding to the dynein light chain Tctex-1.

1999

AbstractThe interaction of cytoplasmic dynein with its cargoes is thought to be indirectly mediated by dynactin, a complex that binds to the dynein intermediate chain. However, the roles of other dynein subunits in cargo binding have been unknown. Here we demonstrate that dynein translocates rhodopsin-bearing vesicles along microtubules. This interaction occurs directly between the C-terminal cytoplasmic tail of rhodopsin and Tctex-1, a dynein light chain. C-terminal rhodopsin mutations responsible for retinitis pigmentosa inhibit this interaction. Our results point to an alternative docking mechanism for cytoplasmic dynein, provide novel insights into the role of motor proteins in the pola…

CytoplasmRhodopsingenetic structuresMicrotubule-associated proteinRecombinant Fusion ProteinsDyneinMolecular Sequence DataReceptors Cell Surfacemacromolecular substancesBiologyT-Complex Genome RegionMicrotubulesGeneral Biochemistry Genetics and Molecular BiologyMotor protein03 medical and health sciencesMice0302 clinical medicineMicrotubuleAnimalsAmino Acid Sequence030304 developmental biologyt-Complex Genome Region0303 health sciencesBinding SitesBiochemistry Genetics and Molecular Biology(all)DyneinsNuclear ProteinsBiological Transport3. Good healthCell biologyCytoplasmRhodopsinMutagenesisDynactinbiology.proteinMicrotubule ProteinsCattlesense organsMicrotubule-Associated Proteins030217 neurology & neurosurgeryPhotoreceptor Cells VertebrateCell
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Regulation of ribonucleotide reductase in response to iron deficiency

2011

Ribonucleotide reductase (RNR) is an essential enzyme required for DNA synthesis and repair. Although iron is necessary for class Ia RNR activity, little is known about the mechanisms that control RNR in response to iron deficiency. In this work, we demonstrate that yeast cells control RNR function during iron deficiency by redistributing the Rnr2–Rnr4 small subunit from the nucleus to the cytoplasm. Our data support a Mec1/Rad53-independent mechanism in which the iron-regulated Cth1/Cth2 mRNA-binding proteins specifically interact with the WTM1 mRNA in response to iron scarcity, and promote its degradation. The resulting decrease in the nuclear-anchoring Wtm1 protein levels leads to the re…

CytoplasmSaccharomyces cerevisiae ProteinsDeoxyribonucleoside triphosphateRibonucleoside Diphosphate ReductaseRNA StabilityProtein subunitSaccharomyces cerevisiaeCell Cycle ProteinsSaccharomyces cerevisiaeProtein Serine-Threonine KinasesBiologyResponse ElementsArticleTristetraprolinGene Expression Regulation FungalRibonucleotide ReductasesHumansRNA MessengerMolecular BiologyTranscription factorCell NucleusDNA synthesisIntracellular Signaling Peptides and ProteinsFungal geneticsRNA-Binding ProteinsRNA FungalIron DeficienciesCell Biologybiology.organism_classificationDNA-Binding ProteinsRepressor ProteinsCheckpoint Kinase 2Protein SubunitsProtein TransportRibonucleotide reductaseBiochemistryCytoplasmTranscription Factors
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The DNA-binding subunit p140 of replication factor C is upregulated in cycling cells and associates with G 1 phase cell cycle regulatory proteins

1999

The DNA-binding subunit of replication factor C (RFCp140) plays an important role in both DNA replication and DNA repair. The mechanisms regulating activation of RFCp140 thereby controlling replication and cellular proliferation are largely unknown. We analyzed protein expression of RFCp140 during cell cycle progression and investigated the association of RFCp140 with cell cycle regulatory proteins in cell lines of various tissue origin and in primary hematopoietic cells. Western and Northern blot analyses of RFCp140 from synchronized cells showed downregulation of RFCp140 when cells enter a G0-like quiescent state and upregulation of RFCp140 in cycling cells. Translocation from the cytopla…

CytoplasmSaccharomyces cerevisiae ProteinsT-LymphocytesCyclin ACell Cycle ProteinsEukaryotic DNA replicationCell LineMinor Histocompatibility AntigensDNA replication factor CDT1MiceReplication factor CControl of chromosome duplicationDrug DiscoveryAnimalsHumansReplication Protein CGenetics (clinical)Cell NucleusHomeodomain ProteinsbiologyG1 PhaseS-phase-promoting factor3T3 CellsCell cycleMolecular biologyUp-RegulationCell biologyDNA-Binding ProteinsRepressor ProteinsProto-Oncogene Proteins c-bcl-2biology.proteinMolecular MedicineOrigin recognition complexJournal of Molecular Medicine
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The Yeast RNA Polymerase II-associated Factor Iwr1p Is Involved in the Basal and Regulated Transcription of Specific Genes

2009

RNA polymerase II (RNA pol II) is a multisubunit enzyme that requires many auxiliary factors for its activity. Over the years, these factors have been identified using both biochemical and genetic approaches. Recently, the systematic characterization of protein complexes by tandem affinity purification and mass spectroscopy has allowed the identification of new components of well established complexes, including the RNA pol II holoenzyme. Using this approach, a novel and highly conserved factor, Iwr1p, that physically interacts with most of the RNA pol II subunits has been described in yeast. Here we show that Iwr1p genetically interacts with components of the basal transcription machinery …

CytoplasmSaccharomyces cerevisiae ProteinsTranscription GeneticActive Transport Cell NucleusRNA polymerase IISaccharomyces cerevisiaeBiologyBiochemistryPhosphatesFungal ProteinsGene Expression Regulation FungalTranscription Chromatin and EpigeneticsPromoter Regions GeneticMolecular BiologyRNA polymerase II holoenzymeGeneticsModels Geneticbeta-FructofuranosidaseGeneral transcription factorCell BiologyCell biologyKineticsGene Expression RegulationMicroscopy FluorescenceMutationbiology.proteinTranscription factor II FRNA Polymerase IITranscription factor II ETranscription factor II DCarrier ProteinsTranscription factor II BTranscription factor II AJournal of Biological Chemistry
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Molecular basis of the functional distinction between Cln1 and Cln2 cyclins

2012

Cln1 and Cln2 are very similar but not identical cyclins. In this work, we tried to describe the molecular basis of the functional distinction between Cln1 and Cln2. We constructed chimeric cyclins containing different fragments of Cln1 and Cln2 and performed several functional analysis that make it possible to distinguish between Cln1 or Cln2. We identified that region between amino acids 225 and 299 of Cln2 is not only necessary but also sufficient to confer Cln2 specific functionality compared with Cln1. We also studied Cln1 and Cln2 subcellular localization identifying additional differences between them. Both cyclins are distributed between the nucleus and the cytoplasm, but Cln1 shows…

CytoplasmSaccharomyces cerevisiae ProteinsTranscription GeneticBlotting WesternGenes FungalGenetic VectorsGreen Fluorescent ProteinsActive Transport Cell NucleusSaccharomyces cerevisiaeKaryopherinsBiologyReportCyclinsGene Expression Regulation FungalmedicineAmino Acid SequenceNuclear export signalMolecular BiologyPeptide sequenceCyclinKaryopherinCell Nucleuschemistry.chemical_classificationCell Cycle CheckpointsCell BiologySubcellular localizationCell nucleusmedicine.anatomical_structureBiochemistrychemistryCytoplasmNuclear transportCDC28 Protein Kinase S cerevisiaePlasmidsDevelopmental BiologyCell Cycle
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Cell Cycle Activation of the Swi6p Transcription Factor Is Linked to Nucleocytoplasmic Shuttling

2003

The control of the subcellular localization of cell cycle regulators has emerged as a crucial mechanism in the regulation of cell division. In the present work, we have characterized the function of the karyopherin Msn5p in the control of the cell cycle of Saccharomyces cerevisiae. Phenotypic analysis of the msn5 mutant revealed an increase in cell size and a functional interaction between Msn5p and the cell cycle transcription factor SBF (composed of the Swi4p and Swi6p proteins), indicating that Msn5p is involved in Start control. In fact, we have shown that the level of Cln2p protein is drastically reduced in an msn5 mutant. The effect on CLN2 expression is mediated at a transcriptional …

CytoplasmSaccharomyces cerevisiae ProteinsTranscription GeneticCell divisionChromosomal Proteins Non-HistoneActive Transport Cell NucleusSaccharomyces cerevisiaeKaryopherinsBiologyDNA-binding proteinCyclinsGene Expression Regulation FungalmedicineCell Growth and DevelopmentMolecular BiologyTranscription factorKaryopherinCell Nucleuschemistry.chemical_classificationCell CycleCell BiologyCell cycleSubcellular localizationCell biologyDNA-Binding ProteinsCell nucleusmedicine.anatomical_structurechemistryCytoplasmMutationCarrier ProteinsTranscription FactorsMolecular and Cellular Biology
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