Search results for "Saccharomyces cerevisiae Proteins"

showing 10 items of 231 documents

General Statistical Framework for Quantitative Proteomics by Stable Isotope Labeling

2014

Pedro J. Navarro et al.

ProteomicsSaccharomyces cerevisiae ProteinsProteomeQuantitative proteomicsGene Expressionstable isotope labelingSaccharomyces cerevisiaeyeastOxygen Isotopescomputer.software_genreBiochemistryStatistical powerInterpretation (model theory)statistical analysisStable isotope labeling by amino acids in cell cultureQuantitative proteomicsData MiningModels StatisticalChromatographyChemistryMolecular Sequence AnnotationHydrogen PeroxideGeneral ChemistryVariance (accounting)Isotope LabelingStable Isotope LabelingBiological systemNull hypothesiscomputerData integrationJournal of Proteome Research
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Saccharomyces cerevisiae Cytosolic Thioredoxins Control Glycolysis, Lipid Metabolism, and Protein Biosynthesis under Wine-Making Conditions.

2019

Thioredoxins are small proteins that regulate the cellular redox state, prevent oxidative damage, and play an active role in cell repair. Oxidative stress has proven to be of much relevance in biotechnological processes when the metabolism of Saccharomyces cerevisiae is mainly respiratory. During wine yeast starter production, active dry yeast cytosolic thioredoxin Trx2p is a key player in protecting metabolic enzymes from being oxidized by carbonylation. Less is known about the role of redox control during grape juice fermentation. A mutant strain that lacked both cytosolic thioredoxins, Trx1p and Trx2p, was tested for grape juice fermentation. Its growth and sugar consumption were greatly…

ProteomicsSaccharomyces cerevisiae ProteinsSaccharomyces cerevisiaethioredoxin-thioredoxin reductase systemsyeastsWineOxidative phosphorylationSaccharomyces cerevisiaeApplied Microbiology and Biotechnology03 medical and health sciencesCytosolThioredoxinsYeastsMetabolomicsVitis030304 developmental biology0303 health sciencesEcologybiology030306 microbiologyChemistryfood and beveragesMembrane ProteinsLipid metabolismMetabolismPeroxiredoxinsglycolysisbiology.organism_classificationLipid MetabolismmetabolomicsYeastYeast in winemakingOxidative StressBiochemistryProtein BiosynthesisFermentationFood MicrobiologyFermentationThioredoxinThioredoxin-thioredoxin reductase systemsGlycolysisOxidation-ReductionGene DeletionFood ScienceBiotechnology
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Phosphorylation of Elp1 by Hrr25 is required for elongator-dependent tRNA modification in yeast.

2014

Elongator is a conserved protein complex comprising six different polypeptides that has been ascribed a wide range of functions, but which is now known to be required for modification of uridine residues in the wobble position of a subset of tRNAs in yeast, plants, worms and mammals. In previous work, we showed that Elongator's largest subunit (Elp1; also known as Iki3) was phosphorylated and implicated the yeast casein kinase I Hrr25 in Elongator function. Here we report identification of nine in vivo phosphorylation sites within Elp1 and show that four of these, clustered close to the Elp1 C-terminus and adjacent to a region that binds tRNA, are important for Elongator's tRNA modification…

ProteomicsSaccharomyces cerevisiae Proteinslcsh:QH426-470Saccharomyces cerevisiaeBiochemistryMolecular GeneticsRNA TransferGene Expression Regulation FungalMolecular Cell BiologyGeneticsFungal GeneticsPhosphorylationPost-Translational ModificationUridineMolecular BiologyAdaptor Proteins Signal TransducingHistone AcetyltransferasesAlanineSpectrometric Identification of ProteinsBiology and life sciencesCasein Kinase INucleotidesMicrobial GeneticsProteinsCell BiologyPeptide Elongation Factorslcsh:GeneticsPhenotypeMultiprotein ComplexesRNAMolecular ComplexesTransfer RNAAnticodonsResearch ArticlePLoS genetics
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The transcription reinitiation properties of RNA polymerase III in the absence of transcription factors

2007

AbstractTranscription reinitiation by RNA polymerase (Pol) III proceeds through facilitated recycling, a process by which the terminating Pol III, assisted by the transcription factors TFIIIB and TFIIIC, rapidly reloads onto the same transcription unit. To get further insight into the Pol III transcription mechanism, we analyzed the kinetics of transcription initiation and reinitiation of a simplified in vitro transcription system consisting only of Pol III and template DNA. The data indicates that, in the absence of transcription factors, first-round transcription initiation by Pol III proceeds at a normal rate, while facilitated reinitiation during subsequent cycles is compromised.

RNA polymerase IIISaccharomyces cerevisiae ProteinsTranscription GeneticvirusesShort CommunicationMolecular Sequence DataRNA polymerase IISaccharomyces cerevisiaeBiochemistryRNA polymerase IIITranscription Factor TFIIIBTranscription Factors TFIIIGene Expression Regulation FungalMolecular BiologyTFIIIBBase SequencebiologyGeneral transcription factorG-less cassetteCell BiologyMolecular biologyTranscription preinitiation complexbiology.proteinTranscription reinitiationTranscription factor II FTranscription factor II ETranscription factor II DTranscription factor II BCellular and Molecular Biology Letters
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Respiration and low cAMP-dependent protein kinase activity are required for high-level expression of the peroxisomal thiolase gene in Saccharomyces c…

1996

Transcription of genes for peroxisomal proteins is repressed by glucose and induced by oleate. At least for the peroxisomal thiolase gene (POT1) there is a third regulatory mechanism, mediated by the transcription factor Adr1p, which is responsible for the high-level expression of the gene in stationary phase. Here we show that a region in the POT1 promoter that extends from positions -238 to -152 mediates this mechanism, and we suggest that Adr1p acts indirectly on POT1. We have also analyzed the role of the cAMP-dependent protein kinase (PKA) in the transcriptional regulation of POT1. PKA exerts a negative control: the high, unregulated PKA activity in a bcy1 mutant maintains POT1 transcr…

Regulation of gene expressionSaccharomyces cerevisiae ProteinsTranscription GeneticThiolaseSaccharomyces cerevisiaeBiologyRegulatory Sequences Nucleic AcidCAMP-dependent protein kinase activityCyclic AMP-Dependent Protein KinasesMicrobodiesMitochondriaDNA-Binding ProteinsFungal ProteinsBiochemistryRegulatory sequenceGene Expression Regulation FungalGeneticsTranscriptional regulationRas2Acetyl-CoA C-AcetyltransferaseProtein kinase APromoter Regions GeneticMolecular BiologyTranscription factorTranscription FactorsMoleculargeneral genetics : MGG
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Promoter architecture and transcriptional regulation of Abf1-dependent ribosomal protein genes inSaccharomyces cerevisiae

2016

In Saccharomyces cerevisiae, ribosomal protein gene (RPG) promoters display binding sites for either Rap1 or Abf1 transcription factors. Unlike Rap1-associated promoters, the small cohort of Abf1-dependent RPGs (Abf1-RPGs) has not been extensively investigated. We show that RPL3, RPL4B, RPP1A, RPS22B and RPS28A/B share a common promoter architecture, with an Abf1 site upstream of a conserved element matching the sequence recognized by Fhl1, a transcription factor which together with Ifh1 orchestrates Rap1-associated RPG regulation. Abf1 and Fhl1 promoter association was confirmed by ChIP and/or gel retardation assays. Mutational analysis revealed a more severe requirement of Abf1 than Fhl1 …

Ribosomal Proteins0301 basic medicineSaccharomyces cerevisiae ProteinsTranscription GeneticTelomere-Binding ProteinsRibosome biogenesisSaccharomyces cerevisiaeMechanistic Target of Rapamycin Complex 1Biology03 medical and health sciencesRibosomal proteinTranscription (biology)Gene Expression Regulation FungalGeneticsTranscriptional regulationBinding sitePromoter Regions GeneticTranscription factorGeneGeneticsBinding SitesTOR Serine-Threonine KinasesGene regulation Chromatin and EpigeneticsForkhead Transcription FactorsPromoterDNA-Binding Proteins030104 developmental biologyMultiprotein ComplexesTrans-ActivatorsTranscription FactorsNucleic Acids Research
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The mRNA degradation factor Xrn1 regulates transcription elongation in parallel to Ccr4

2019

Abstract Co-transcriptional imprinting of mRNA by Rpb4 and Rpb7 subunits of RNA polymerase II (RNAPII) and by the Ccr4–Not complex conditions its post-transcriptional fate. In turn, mRNA degradation factors like Xrn1 are able to influence RNAPII-dependent transcription, making a feedback loop that contributes to mRNA homeostasis. In this work, we have used repressible yeast GAL genes to perform accurate measurements of transcription and mRNA degradation in a set of mutants. This genetic analysis uncovered a link from mRNA decay to transcription elongation. We combined this experimental approach with computational multi-agent modelling and tested different possibilities of Xrn1 and Ccr4 acti…

Ribosomal ProteinsSaccharomyces cerevisiae ProteinsRNA StabilitymRNAMutantRNA polymerase IISaccharomyces cerevisiaeBiology03 medical and health sciencesGenomic Imprinting0302 clinical medicineRibonucleasesRibosomal proteinTranscription (biology)Gene Expression Regulation FungalGeneticsGenomesGene030304 developmental biologyRegulation of gene expression0303 health sciencesMessenger RNAGene regulation Chromatin and EpigeneticsFungal geneticsCell biologyExoribonucleasesbiology.proteinRNARNA Polymerase IIGenome FungalTranscriptional Elongation Factors030217 neurology & neurosurgery
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A Candida albicans 37 kDa polypeptide with homology to the laminin receptor is a component of the translational machinery.

1998

A cDNA encoding a 37 kDa protein was isolated from an expression library using antibodies raised against mycelial cell walls fromCandida albicans.The 37 kDa protein has over 60% sequence identity with the 37 kDa laminin-binding protein (LBP) from humans and over 80% identity with the Yst proteins ofSaccharomyces cerevisiae. TheC. albicansprotein was named CaYst1. It was found in membrane and ribosome fractions but surprisingly, was not found in cell walls. Unlike the human LBP, CaYst1p does not bind laminin. These data indicate that CaYst1p is not a cell-surface receptor for laminin as has been proposed for the human LBP. Instead, like theS. cerevisiaeYst proteins, it appears to be a riboso…

Ribosomal ProteinsSaccharomyces cerevisiae ProteinsSaccharomyces cerevisiaeBlotting WesternMolecular Sequence DataMicrobiologyFungal ProteinsReceptors LamininRibosomal proteinComplementary DNACandida albicansAnimalsHumansCandida albicansAntibodies Fungalchemistry.chemical_classificationFungal proteinbiologyBase SequenceBinding proteinMembrane Proteinsbiology.organism_classificationBlotting NorthernMolecular biologyBlotting SouthernCytoskeletal ProteinsBiochemistrychemistryMembrane proteinProtein BiosynthesisRabbitsGlycoproteinSequence AlignmentMicrobiology (Reading, England)
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The telomeric Cdc13-Stn1-Ten1 complex regulates RNA polymerase II transcription

2019

Advance article.

S phase transcribed genesTranscription GeneticChromosomal Proteins Non-HistoneCell Cycle ProteinsRNA polymerase IIBur1[SDV.BC.BC]Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]Genome Integrity Repair and ReplicationS Phase0302 clinical medicineTranscription (biology)Gene Expression Regulation FungalTranscriptional regulation0303 health sciencesCdc13-Stn1-Ten1biology030302 biochemistry & molecular biologyTranscription regulationRNA pol IIChromatinCyclin-Dependent KinasesCell biologyTelomeres030220 oncology & carcinogenesisRNA Polymerase IITranscriptional Elongation FactorsSaccharomyces cerevisiae ProteinsDNA polymerase IITelomere-Binding ProteinsSaccharomyces cerevisiae[SDV.CAN]Life Sciences [q-bio]/CancerSaccharomyces cerevisiaeCST complex03 medical and health sciencesGeneticsBudding yeastGenomesGene030304 developmental biologyHmo1RNA[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyPromoterbiology.organism_classificationCromosomesTelomerebiology.proteinSpt5Cyclin-Dependent Kinase-Activating Kinase
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Potassium uptake system Trk2 is crucial for yeast cell viability during anhydrobiosis

2013

Yeasts grow at very different potassium concentrations, adapting their intracellular cation levels to changes in the external environment. Potassium homeostasis is maintained with the help of several transporters mediating the uptake and efflux of potassium with various affinities and mechanisms. In the model yeast Saccharomyces cerevisiae, two uptake systems, Trk1 and Trk2, are responsible for the accumulation of a relatively high intracellular potassium content (200-300 mM) and the efflux of surplus potassium is mediated by the Tok1 channel and active exporters Ena ATPase and Nha1 cation/proton antiporter. Using a series of deletion mutants, we studied the role of individual potassium tra…

Saccharomyces cerevisiae ProteinsATPaseAntiporterPotassiumSaccharomyces cerevisiaechemistry.chemical_elementSaccharomyces cerevisiaeMicrobiologyGeneticsHomeostasisViability assayDesiccationCation Transport ProteinsMolecular BiologySequence DeletionMicrobial ViabilitybiologyBiological Transportbiology.organism_classificationYeastBiochemistrychemistryPotassiumbiology.proteinEffluxIntracellularFEMS Microbiology Letters
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