Search results for "Saccharomyces cerevisiae"

showing 10 items of 738 documents

Convergent adaptation of Saccharomyces uvarum to sulfite, an antimicrobial preservative widely used in human-driven fermentations

2021

Different species can find convergent solutions to adapt their genome to the same evolutionary constraints, although functional convergence promoted by chromosomal rearrangements in different species has not previously been found. In this work, we discovered that two domesticated yeast species, Saccharomyces cerevisiae, and Saccharomyces uvarum, acquired chromosomal rearrangements to convergently adapt to the presence of sulfite in fermentation environments. We found two new heterologous chromosomal translocations in fermentative strains of S. uvarum at the SSU1 locus, involved in sulfite resistance, an antimicrobial additive widely used in food production. These are convergent events that …

Metabolic ProcessesCancer ResearchAdaptation BiologicalYeast and Fungal ModelsArtificial Gene Amplification and ExtensionWineChromosomal translocationQH426-470BiochemistryGenomeTranslocation Geneticchemistry.chemical_compoundAnti-Infective AgentsMedicine and Health SciencesPromoter Regions GeneticPhylogenyGenetics (clinical)GeneticsChromosome BiologyAlcoholic BeveragesEukaryotaGenomicsChromosomal AberrationsPolymerase chain reactionChemistryExperimental Organism SystemsPhysical SciencesChromosomes FungalResearch ArticleSaccharomyces cerevisiae ProteinsAnion Transport ProteinsSaccharomyces cerevisiaeLocus (genetics)Saccharomyces cerevisiaeChromosomal translocationsBiologyResearch and Analysis MethodsBeveragesSaccharomycesModel OrganismsSulfiteGeneticsHumansSulfitesMolecular Biology TechniquesMolecular BiologyGeneEcology Evolution Behavior and SystematicsNutritionChemical CompoundsOrganismsFungiBiology and Life SciencesCell Biologybiology.organism_classificationYeastYeastDietMetabolismchemistryFermentationFood PreservativesAnimal StudiesAdaptationPLOS Genetics
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Influence of cell-cell contact between L. thermotolerans and S. cerevisiae on yeast interactions and the exo-metabolome

2019

International audience; Sequential fermentation of grape must inoculated with L. thermotolerans and then S. cerevisiae 24 h later (typical wine-making practice) was conducted with or without cell-cell contact between the two yeast species. We monitored cell viability of the two species throughout fermentation by flow cytometry. The cell viability of S. cerevisiae decreased under both conditions, but the decrease was greater if there was cell-cell contact. An investigation of the nature of the interactions showed competition between the two species for nitrogen compounds, oxygen, and must sterols. Volatile-compound analysis showed differences between sequential and pure fermentation and that…

MetaboliteL. thermotoleransInteractionsS. cerevisiaeWineSaccharomyces cerevisiaeMicrobiologyFlow cytometry03 medical and health scienceschemistry.chemical_compoundMetabolomicsMetabolomemedicineMetabolomics[CHIM]Chemical SciencesVitisViability assayFlow cytometryCell-cell contact030304 developmental biology0303 health sciencesCell cell contactMicrobial Viabilitymedicine.diagnostic_testEthanol030306 microbiologyChemistryfood and beveragesYeastCoculture TechniquesOxygenBiochemistryInteractions ; S. Cerevisiae ; L. Thermotolerans ; Cell-cell Contact ; Flow Cytometry ; MetabolomicsFermentationSaccharomycetalesMetabolomeMicrobial InteractionsFermentationFood Science
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FICC-Seq: a method for enzyme-specified profiling of methyl-5-uridine in cellular RNA.

2019

AbstractMethyl-5-uridine (m5U) is one the most abundant non-canonical bases present in cellular RNA, and in yeast is found at position U54 of tRNAs where modification is catalysed by the methyltransferase Trm2. Although the mammalian enzymes that catalyse m5U formation are yet to be identified via experimental evidence, based on sequence homology to Trm2, two candidates currently exist, TRMT2A and TRMT2B. Here we developed a genome-wide single-nucleotide resolution mapping method, Fluorouracil-Induced-Catalytic-Crosslinking-Sequencing (FICC-Seq), in order to identify the relevant enzymatic targets. We demonstrate that TRMT2A is responsible for the majority of m5U present in human RNA, and t…

MethyltransferaseSaccharomyces cerevisiae ProteinsCell SurvivalSaccharomyces cerevisiaeBiology03 medical and health scienceschemistry.chemical_compound0302 clinical medicineRNA TransferYeastsGeneticsHumansNucleotideUridine030304 developmental biologychemistry.chemical_classification0303 health sciencestRNA MethyltransferasesDeoxyribonucleasesHEK 293 cellsRNAHigh-Throughput Nucleotide SequencingYeastUridineEnzymeHEK293 CellsBiochemistrychemistry030220 oncology & carcinogenesisTransfer RNARNAMethods OnlineFluorouracilNucleic acids research
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Approaches to study yeast cell aging and death

2014

For millennia, yeast has been exploited to obtain fermentation products, such as foods and beverages. For c. 50 years, yeast has been an established model organism for basic and applied research, and more specifically, for c. 15 years, this unicellular organism has been applied to dissect molecular mechanisms of cell aging and programmed cell death. In this review, we present an overview of approaches to study cell aging and death in yeast, including lifespan assessments, calorie restriction, cell viability, survival, and death markers.

Microbiological TechniquesProgrammed cell deathTime FactorsCell Deathved/biologyved/biology.organism_classification_rank.speciesCalorie restrictionSaccharomyces cerevisiaeMycologySaccharomyces cerevisiaeGeneral MedicineBiologybiology.organism_classificationApplied Microbiology and BiotechnologyMicrobiologyUnicellular organismYeastCell biologyyeast aging. chronological aging methods in yeast geneticsSettore BIO/13 - Biologia ApplicataViability assayModel organismCell agingFEMS Yeast Research
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Purine Auxotrophic Starvation Evokes Phenotype Similar to Stationary Phase Cells in Budding Yeast

2021

Purine auxotrophy is an abundant trait among eukaryotic parasites and a typical marker for many budding yeast strains. Supplementation with an additional purine source (such as adenine) is necessary to cultivate these strains. If not supplied in adequate amounts, purine starvation sets in. We explored purine starvation effects in a model organism, a budding yeast Saccharomyces cerevisiae ade8 knockout, at the level of cellular morphology, central carbon metabolism, and global transcriptome. We observed that purine-starved cells stopped their cycle in G1/G0 state and accumulated trehalose, and the intracellular concentration of AXP decreased, but adenylate charge remained stable. Cells becam…

Microbiology (medical)<i>Saccharomyces cerevisiae</i>QH301-705.5starvationSaccharomyces cerevisiaePlant ScienceBiology (General)purines<i>Saccharomyces cerevisiae</i>; starvation; purines; stress resistanceArticleEcology Evolution Behavior and Systematicsstress resistanceJournal of Fungi
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Iron regulatory mechanisms in Saccharomyces cerevisiae

2020

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox cofactor in many cellular processes. However, excess iron can damage cells since it promotes the generation of reactive oxygen species. The budding yeast Saccharomyces cerevisiae has been used as a model organism to study the adaptation of eukaryotic cells to changes in iron availability. Upon iron deficiency, yeast utilizes two transcription factors, Aft1 and Aft2, to activate the expression of a set of genes known as the iron regulon, which are implicated in iron uptake, recycling and mobilization. Moreover, Aft1 and Aft2 activate the expression of Cth2, an mRNA-binding protein that limits t…

Microbiology (medical)DNA damageSaccharomyces cerevisiaelcsh:QR1-502Saccharomyces cerevisiaeMicroorganismesyeastMicrobiologylcsh:Microbiology03 medical and health sciencesTranscriptional regulationiron deficiencyFongsiron metabolismPost-transcriptional regulationTranscription factorGene030304 developmental biology0303 health sciencesbiology030306 microbiologyChemistryPost-transcriptional regulationiron excessbiology.organism_classificationYeastCell biologyCytosolReguloniron homeostasisFerro
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Candida albicans UBI3 and UBI4 promoter regions confer differential regulation of invertase production to Saccharomyces cerevisiae cells in response …

2002

Candida albicans ubiquitin genes UBI3 and UBI4 encode a ubiquitin-hybrid protein involved in ribosome biogenesis and polyubiquitin, respectively. In this work we show that UBI3 and UBI4 promoter regions confer differentialexpr ession consistent with the function of their encoded gene products. Hybrid genes were constructed containing the SUC2 coding region under the controlof UBI3 or UBI4 promoters in the yeast vector pLC7. Invertase production in Saccharomyces cerevisiae transformants was differentially regulated: the UBI4 promoter was induced by stress conditions (thermalupshift and/or starvation) whereas the UBI3 promoter conferred constitutive invertase production in growing yeast cells…

Microbiology (medical)Hot TemperatureGlycoside HydrolasesSaccharomyces cerevisiaeRibosome biogenesisSaccharomyces cerevisiaeMicrobiology:CIENCIAS DE LA VIDA [UNESCO]:CIENCIAS DE LA VIDA::Microbiología [UNESCO]Gene Expression Regulation FungalCandida albicansUNESCO::CIENCIAS DE LA VIDAPromoter Regions GeneticCandida albicansUNESCO::CIENCIAS DE LA VIDA::MicrobiologíaUbiquitinsGeneRegulation of gene expressionbeta-FructofuranosidasebiologyPromoterbiology.organism_classificationMolecular biologyCell biologyInvertaseCandida albicans ; Ubiquitin genes ; Invertase ; Saccharomyces cerevisiae ; Promoter gene fusion ; Heterologous expressionInvertaseUbiquitin genesHeterologous expressionHeterologous expressionPromoter gene fusionInternational Microbiology
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Development of novel immunoglobulin G (IgG), IgA, and IgM enzyme immunoassays based on recombinant Puumala and Dobrava hantavirus nucleocapsid protei…

2006

ABSTRACT Human infections with Asian and European hantaviruses can result in hemorrhagic fever with renal syndromes of differing severities characterized by renal dysfunction and sometimes by pulmonary symptoms. For the serological detection of human infections by hantaviruses relevant for Europe, we developed monoclonal antibody capture immunoglobulin G (IgG) and IgA enzyme-linked immunosorbent assays (ELISAs) based on yeast-expressed nucleocapsid proteins of Puumala and Dobrava hantaviruses. Moreover, for diagnosis of acute infections, μ-capture IgM ELISAs were established with nucleocapsid proteins expressed in Drosophila melanogaster Schneider S2 cells. The cutoff values of the ELISAs w…

Microbiology (medical)Immunoglobulin AOrthohantavirusvirusesHantavirus InfectionsClinical BiochemistryImmunologyEnzyme-Linked Immunosorbent AssaySaccharomyces cerevisiaeAntibodies ViralPuumala virusSensitivity and SpecificityVirusImmunoglobulin GSerologyImmunology and AllergyAnimalsHumansHantavirusbiologyNucleocapsid Proteinsbiology.organism_classificationVirologyRecombinant ProteinsImmunoglobulin ADrosophila melanogasterImmunoglobulin MImmunoglobulin MImmunoglobulin Gbiology.proteinPuumala virusMicrobial ImmunologyHantavirus InfectionClinical and vaccine immunology : CVI
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Comparative genomics of yeast species: new insights into their biology

2003

The genomes of two hemiascomycetous yeasts (Saccharomyces cerevisiae and Candida albicans) and one archiascomycete (Schizosaccharomyces pombe) have been completely sequenced and the genes have been annotated. In addition, the genomes of 13 more Hemiascomycetes have been partially sequenced. The amount of data thus obtained provides information on the evolutionary relationships between yeast species. In addition, the differential genetic characteristics of the microorganisms explain a number of distinctive biological traits. Gene order conservation is observed between phylogenetically close species and is lost in distantly related species, probably due to rearrangements of short regions of D…

Microbiology (medical)Llevat de cervesaHemiascomycetesSaccharomyces cerevisiaeSaccharomyces cerevisiaeMicrobiologyGenomeSaccharomyces cerevisiae; Candida albicans; Schizosaccharomyces pombe; Hemiascomycetes; Comparative genomicsYeastsSchizosaccharomycesCandida albicansCandida albicansGeneGeneticsComparative genomicsbiologyComparative genomicsUNESCO::CIENCIAS DE LA VIDA::Microbiología ::Metabolismo microbianoGenomicsbiology.organism_classificationYeastGenòmicaSchizosaccharomyces pombeSchizosaccharomyces pombe:CIENCIAS DE LA VIDA::Microbiología ::Metabolismo microbiano [UNESCO]Genome FungalFunction (biology)
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Wine yeast peroxiredoxin TSA1 plays a role in growth, stress response and trehalose metabolism in biomass propagation

2020

This article belongs to the Special Issue Wine Yeast 1.0.

Microbiology (medical)Protein moonlightingperoxiredoxinsThioredoxin reductaseSaccharomyces cerevisiaeMutantWineSaccharomyces cerevisiaeMicrobiology<i>Saccharomyces cerevisiae</i>03 medical and health scienceschemistry.chemical_compoundVirologyoxidative stressBiomasswinelcsh:QH301-705.5030304 developmental biologychemistry.chemical_classification0303 health sciencesTsa1biologybiomass030306 microbiologyChemistryPeroxiredoxinsbiology.organism_classificationTrehaloseYeast in winemakingEnzymeBiochemistrylcsh:Biology (General)Oxidative stressPeroxiredoxinMicroorganisms
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