Search results for " yeast"

showing 10 items of 152 documents

Physiological and genomic characterisation of Saccharomyces cerevisiae hybrids with improved fermentation performance and mannoprotein release capaci…

2015

Yeast mannoproteins contribute to several aspects of wine quality by protecting wine against protein haze, reducing astringency, retaining aroma compounds and stimulating lactic-acid bacteria growth. The selection of a yeast strain that simultaneously overproduces mannoproteins and presents good fermentative characteristics is a difficult task. In this work, a Saccharomyces cerevisiae × S. cerevisiae hybrid bearing the two oenologically relevant features was constructed. According to the genomic characterisation of the hybrids, different copy numbers of some genes probably related with these physiological features were detected. The hybrid shared not only a similar copy number of genes SPR1…

Saccharomyces cerevisiae ProteinsBiotecnología AgropecuariaSaccharomyces cerevisiaeGene DosageWineSaccharomyces cerevisiaeSPORE TO SPORE MATINGAliments MicrobiologiaMicrobiologyCell WallFermentacióHybridYEAST HYBRIDIZATIONMembrane Glycoproteinsbiologybusiness.industryGeneral MedicineHibridacióbiology.organism_classificationBiotechnologyYeast in winemakingCIENCIAS AGRÍCOLASRARE MATINGFermentationWINE YEASTBiotecnología Agrícola y Biotecnología AlimentariaHybridization GeneticFermentationChristian ministryGenome FungalbusinessFood ScienceInternational journal of food microbiology
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The budding yeast Start repressor Whi7 differs in regulation from Whi5, emerging as a major cell cycle brake in response to stress

2020

ABSTRACT Start is the main decision point in the eukaryotic cell cycle at which cells commit to a new round of cell division. It involves the irreversible activation of a transcriptional programme through the inactivation of Start transcriptional repressors: the retinoblastoma family in mammals, or Whi5 and its recently identified paralogue Whi7 (also known as Srl3) in budding yeast. Here, we provide a comprehensive comparison of Whi5 and Whi7 that reveals significant qualitative differences. Indeed, the expression, subcellular localization and functionality of Whi7 and Whi5 are differentially regulated. Importantly, Whi7 shows specific properties in its association with promoters not share…

Saccharomyces cerevisiae ProteinsCell division[SDV]Life Sciences [q-bio]RepressorSaccharomyces cerevisiaeBiologyCell cycleCicle cel·lularStress13503 medical and health sciences0302 clinical medicineWhi7Gene Expression Regulation FungalmedicineWhi5030304 developmental biology0303 health sciencesRetinoblastomaCèl·lules eucariotesPromoterCell BiologyCell cycleSubcellular localizationmedicine.diseaseStartBudding yeastCell biologyRepressor ProteinsDecision points[SDV] Life Sciences [q-bio]SaccharomycetalesCell Division030217 neurology & neurosurgeryResearch Article
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Cell cycle studies on the mode of action of yeast K28 killer toxin.

1996

The virally encoded K28 killer toxin of Saccharomyces cerevisiae kills sensitive cells by a receptor-mediated process. DNA synthesis is rapidly inhibited, cell viability is lost more slowly and cells eventually arrest, apparently in the S phase of the cell cycle with a medium-sized bud, a single nucleus in the mother cell and a pre-replicated (1n) DNA content. Cytoplasmic microtubules appear normal, and no spindle is detectable. Arrest of a sensitive haploid yeast strain by alpha-factor at START gave complete protection for at least 4 h against a toxin concentration that killed non-arrested cells at the rate of one log each 2.5 h. Cells released from alpha-factor arrest were killed by toxin…

Saccharomyces cerevisiae ProteinsCellSaccharomyces cerevisiaeSaccharomyces cerevisiaeBiologyMicrobiologyMicrotubulesS Phase4-ButyrolactonemedicineViability assayS phaseGeneticsDNA synthesisCell DeathCell CycleDNACell cycleMycotoxinsbiology.organism_classificationFlow CytometryKiller Factors YeastCell biologySpindle poisonmedicine.anatomical_structureCytoplasmFluorescent Antibody Technique Directmedicine.drugMicrobiology (Reading, England)
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A new chromosomal rearrangement improves the adaptation of wine yeasts to sulfite

2019

Sulfite‐generating compounds are widely used during winemaking as preservatives because of its antimicrobial and antioxidant properties. Thus, wine yeast strains have developed different genetic strategies to increase its sulfite resistance. The most efficient sulfite detoxification mechanism in Saccharomyces cerevisiae uses a plasma membrane protein called Ssu1 to efflux sulfite. In wine yeast strains, two chromosomal translocations (VIIItXVI and XVtXVI) involving the SSU1 promoter region have been shown to upregulate SSU1 expression and, as a result, increase sulfite tolerance. In this study, we have identified a novel chromosomal rearrangement that triggers wine yeast sulfite adaptation.…

Saccharomyces cerevisiae ProteinsChromosomal rearrangementsWine yeastSaccharomyces cerevisiaeWineSaccharomyces cerevisiaeChromosomal rearrangementBiologyMicrobiology03 medical and health scienceschemistry.chemical_compoundSulfiteSulfitesPromoter Regions GeneticSSU1Ecology Evolution Behavior and Systematics030304 developmental biologyWinemakingGene RearrangementWine0303 health sciences030306 microbiologyInversionPromoterbiology.organism_classificationAdaptation PhysiologicalYeast in winemakingBiochemistrychemistryRegulatory sequenceFermentationChromosomes FungalSulfite resistanceEnvironmental Microbiology
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Regulation of mating in the budding yeast Saccharomyces cerevisiae by the zinc cluster proteins Sut1 and Sut2

2013

This article is made available through the Brunel Open Access Publishing Fund. Copyright @ The Authors. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. The zinc cluster proteins Sut1 and Sut2 play a role in sterol uptake and filamentous growth in the budding yeast Saccharomyces cerevisiae. In this study, we show that they are also involved in mating. Cells that lack both SUT1 and SUT2 were defective in mating. The expression of the genes NCE102 and PRR2 was increased in the sut1 sut2 double deletion mutant…

Saccharomyces cerevisiae ProteinsMonosaccharide Transport ProteinsSaccharomyces cerevisiaeBiophysicsSaccharomyces cerevisiaeBiologyBiochemistryFungal ProteinsGene Expression Regulation FungalReproduction AsexualBudding yeastMatingMolecular BiologyGenereproductive and urinary physiologyGeneticsMatingZinc FingersCell Biologybiology.organism_classificationBudding yeastSut2Sut1Mating of yeastPheromone responseZinc cluster proteinsZinc Clusterbehavior and behavior mechanismsPheromoneTranscription FactorsSterol uptakeBiochemical and Biophysical Research Communications
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Blockage of cell wall receptors for yeast killer toxin KT28 with antimannoprotein antibodies.

1990

Binding of yeast killer toxin KT28 to its primary cell wall receptor was specifically blocked with polyclonal antimannoprotein antibodies which masked all toxin-binding sites on the surface of sensitive yeast cells. By indirect immunofluorescence, it was shown that KT28 binds to the cell wall mannoprotein and that the toxin resistance of mannoprotein mutants (mnn) of Saccharomyces cerevisiae was due to a lack of killer toxin-binding sites within the yeast cell wall. Structural analysis of acetylated mannoprotein from KT28-resistant mutant strains identified the outer mannotriose side chains as the actual killer toxin-binding domains.

Saccharomyces cerevisiae ProteinsMutantSaccharomyces cerevisiaeFluorescent Antibody TechniqueSaccharomyces cerevisiaeBiologymedicine.disease_causeAntibodiesCell wallCell WallmedicinePharmacology (medical)ReceptorPharmacologyMembrane GlycoproteinsToxinMycotoxinsbiology.organism_classificationYeastKiller Factors YeastCell biologycarbohydrates (lipids)Infectious DiseasesBiochemistryPolyclonal antibodiesbiology.proteinAntibodyResearch Article
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Molecular structure of the cell wall receptor for killer toxin KT28 in Saccharomyces cerevisiae

1988

The adsorption of the yeast killer toxin KT28 to susceptible cells of Saccharomyces cerevisiae was prevented by concanavalin A, which blocks the mannoprotein receptor. Certain mannoprotein mutants of S. cerevisiae that lack definite structures in the mannan of their cell walls were found to be resistant to KT28, whereas the wild-type yeast from which the mutants were derived was susceptible. Isolated mannoprotein from a resistant mutant was unable to adsorb killer toxin. By comparing the resistances of different mannoprotein mutants, information about the molecular structure of the receptor was obtained. At least two mannose residues have to be present in the side chains of the outer chain …

Saccharomyces cerevisiae ProteinsMutantSaccharomyces cerevisiaeMannoseReceptors Cell Surfacechemical and pharmacologic phenomenaSaccharomyces cerevisiaeSpheroplastsMicrobiologyFungal Proteinschemistry.chemical_compoundCell WallConcanavalin AReceptorMolecular BiologyGlycoproteinsMannanMembrane GlycoproteinsbiologyMycotoxinsSpheroplastbiology.organism_classificationKiller Factors YeastYeastcarbohydrates (lipids)BiochemistrychemistryConcanavalin AMutationbiology.proteinAdsorptionResearch ArticleJournal of Bacteriology
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Genetic analysis of maintenance and expression of L and M double-stranded RNAs from yeast killer virus K28

1992

The killer phenotype expressed by Saccharomyces cerevisiae strain 28 differs from that of the more extensively studied K1 and K2 killers with respect to immunity, mode of toxin action and cell wall primary toxin receptor. We previously demonstrated that the M28 and L28 dsRNAs found in strain 28 are present in virus-like particles (VLPs) and that transfection with these VLPs is sufficient to confer the complete K28 phenotype on a dsRNA-free recipient cell. We also demonstrated that L28, like the L-A-H species in K1 killers, has [HOK] activity required for maintenance of M1-dsRNA, and predicted that M28 would share with M1 dependence on L-A for replication. We now confirm this prediction by g…

Saccharomyces cerevisiae ProteinsSaccharomyces cerevisiaeClone (cell biology)BioengineeringSaccharomyces cerevisiaeBiologyApplied Microbiology and BiotechnologyBiochemistryVirusFungal ProteinsGeneticsRNA Double-StrandedGeneticsTransfectionMycotoxinsbiology.organism_classificationPhenotypeFusion proteinKiller Factors YeastRNA silencingPhenotypeCapsidMutationVirusesRNA ViralBiotechnologyYeast
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Mannoprotein of the yeast cell wall as primary receptor for the killer toxin of Saccharomyces cerevisiae strain 28.

1987

The killer toxin KT 28 of Saccharomyces cerevisiae strain 28 is primarily bound to the mannoprotein of the cell wall of sensitive yeasts. The mannoprotein of S. cerevisiae X 2180 was purified; gel filtration and SDS-PAGE indicated an estimated Mr of 185,000. The ability to bind killer toxin KT 28 increased during purification of the mannoprotein. Removing the protein part of the mannoprotein by enzymic digestion or removing the alkali-labile oligosaccharide chains by beta-elimination did not destroy the ability to bind killer toxin KT 28. However, binding activity was lost when the 1,6-alpha-linkages of the outer carbohydrate backbone were hydrolysed by acetolysis. The separated oligomannos…

Saccharomyces cerevisiae ProteinsSaccharomyces cerevisiaeSaccharomyces cerevisiaeBiologymedicine.disease_causeMicrobiologyChromatography AffinityCell wallSepharoseAffinity chromatographyCell WallmedicineReceptorGlycoproteinschemistry.chemical_classificationMembrane GlycoproteinsToxinOligosaccharideMycotoxinsbiology.organism_classificationChromatography Ion ExchangeYeastKiller Factors Yeastcarbohydrates (lipids)chemistryBiochemistryAdsorptionJournal of general microbiology
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Comparison of the killer toxin of several yeasts and the purification of a toxin of type K2

1984

A total of 13 killer toxin producing strains belonging to the genera Saccharomyces, Candida and Pichia were tested against each other and against a sensitive yeast strain. Based on the activity of the toxins 4 different toxins of Saccharomyces cerevisiae, 2 different toxins of Pichia and one toxin of Candida were recognized. The culture filtrate of Pichia and Candida showed a much smaller activity than the strains of Saccharomyces. Extracellular killer toxins of 3 types of Saccharomyces were concentrated and partially purified. The pH optimum and the isoelectric point were determined. The killer toxins of S. cerevisiae strain NCYC 738, strain 399 and strain 28 were glycoproteins and had a m…

Saccharomyces cerevisiae ProteinsSaccharomyces cerevisiaeSaccharomyces cerevisiaemedicine.disease_causeBiochemistryMicrobiologySaccharomycesPichiaMicrobiologySpecies SpecificityYeastsGeneticsExtracellularmedicineIsoelectric PointAmino AcidsMolecular BiologyCandidaPichiachemistry.chemical_classificationbiologyStrain (chemistry)ToxinTemperatureGeneral MedicineHydrogen-Ion ConcentrationMycotoxinsbiology.organism_classificationKiller Factors YeastMolecular WeightIsoelectric pointchemistryBiochemistryGlycoproteinArchives of Microbiology
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