Search results for "VISIA"

showing 10 items of 764 documents

A comparison of the performance of natural hybrids Saccharomyces cerevisiae × Saccharomyces kudriavzevii at low temperatures reveals the crucial role…

2018

Fermentation performance at low temperature is a common approach to obtain wines with better aroma, and is critical in industrial applications. Natural hybrids S. cerevisiae × S. kudriavzevii, isolated from fermentations in cold-climate European countries, have provided an understanding of the mechanisms of adaptation to grow at low temperature. In this work, we studied the performance of 23 S. cerevisiae × S. kudriavzevii hybrids at low temperature (8, 12 and 24 °C) to characterize their phenotypes. Kinetic parameters and spot tests revealed a different ability to grow at low temperature. Interestingly, the genome content of the S. kudriavzevii in hybrids was moderately correlated with a s…

0301 basic medicineGenomic contributionSaccharomyces cerevisiaeS. cerevisiaeHybridsWineSaccharomyces cerevisiaeMicrobiologySaccharomyces03 medical and health sciencesSaccharomycesS. kudriavzeviiAlleleGeneHybridGeneticsbiologyGeneral Medicinebiology.organism_classificationAdaptation PhysiologicalCold TemperatureEurope030104 developmental biologyFermentationOdorantsHybridization GeneticFermentationAdaptationCold stressSaccharomyces kudriavzeviiFood ScienceInternational journal of food microbiology
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Alternative yeasts for winemaking: Saccharomyces non-cerevisiae and its hybrids

2017

Wine fermentation has not significantly changed since ancient times and the most traditional aspects are seen by the market as elements that uplift wine nuances and quality. In recent years, new trends have emerged from the sector in line with consumer preferences, and due to the effects of global climate change on grape ripening. In the first cases, the consumers are looking for wines with less ethanol and fruitier aromas and in the second cases the wineries want to reduce the wine alcohol levels and/or astringency. New yeast starters of alternative Saccharomyces species and their hybrids can help to solve some problems that wineries face. In this article we review several physiological an…

0301 basic medicineGlycerolCold fermentationFood Handling030106 microbiologyWineSaccharomyces cerevisiaeSaccharomycesIndustrial and Manufacturing EngineeringSaccharomyces03 medical and health sciencesYeastsVitisFood scienceAromaHybridWinemakingWineFermentation in winemakingEthanolMolecular Structurebiologybusiness.industryfood and beveragesGeneral Medicinebiology.organism_classificationAdaptation PhysiologicalYeastBiotechnologyCold TemperatureSmellYeast in winemakingSaccharomyces speciesTasteFermentationS. non-cerevisiaebusinessFood ScienceWinemaking
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RNAseq-based transcriptome comparison of Saccharomyces cerevisiae strains isolated from diverse fermentative environments.

2016

Transcriptome analyses play a central role in unraveling the complexity of gene expression regulation in Saccharomyces cerevisiae. This species, one of the most important microorganisms for humans given its industrial applications, shows an astonishing degree of genetic and phenotypic variability among different strains adapted to specific environments. In order to gain novel insights into the Saccharomyces cerevisiae biology of strains adapted to different fermentative environments, we analyzed the whole transcriptome of three strains isolated from wine, flor wine or mezcal fermentations. An RNA-seq transcriptome comparison of the different yeasts in the samples obtained during synthetic m…

0301 basic medicineGlycerolMicroorganismSaccharomyces cerevisiaeFlorWineSaccharomyces cerevisiaeEthanol fermentationEnvironmentMicrobiologyTranscriptome03 medical and health sciencesGeneWineGeneticsMembrane GlycoproteinsbiologyBase Sequencebusiness.industrySequence Analysis RNAGene Expression Profilingfood and beveragesGeneral Medicinebiology.organism_classificationBiotechnologycarbohydrates (lipids)030104 developmental biologyAlcoholsFermentationFermentationbusinessTranscriptomeFood ScienceInternational journal of food microbiology
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Molecular partners of hNOT/ALG3, the human counterpart of the Drosophila NOT and yeast ALG3 gene, suggest its involvement in distinct cellular proces…

2018

This study provides first insights into the involvement of hNOT/ALG3, the human counterpart of the Drosophila Neighbour of TID and yeast ALG3 gene, in various putative molecular networks. HNOT/ALG3 encodes two translated transcripts encoding precursor proteins differing in their N-terminus and showing 33% identity with the yeast asparagine-linked glycosylation 3 (ALG3) protein. Experimental evidence for the functional homology of the proteins of fly and man in the N-glycosylation has still to be provided. In this study, using the yeast two-hybrid technique we identify 17 molecular partners of hNOT-1/ALG3-1. We disclose the building of hNOT/ALG3 homodimers and provide experimental evidence f…

0301 basic medicineGlycosylationSaccharomyces cerevisiae ProteinsRNA-binding proteinSaccharomyces cerevisiaeBiologyEndoplasmic ReticulumMannosyltransferases03 medical and health scienceschemistry.chemical_compoundCongenital Disorders of GlycosylationNeoplasmsNuclear Receptor Subfamily 4 Group A Member 2GeneticsAnimalsDrosophila ProteinsHumansMolecular BiologyTranscription factorOSBPGeneGenetics (clinical)Cellular compartmentEndoplasmic reticulumMembrane ProteinsRNA-Binding ProteinsGeneral MedicineLRP1Cell biology030104 developmental biologychemistryNerve DegenerationDrosophilaCarrier ProteinsHuman molecular genetics
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Role of saccharomyces cerevisiae nutrient signaling pathways during winemaking: a phenomics approach

2020

The ability of the yeast Saccharomyces cerevisiae to adapt to the changing environment of industrial processes lies in the activation and coordination of many molecular pathways. The most relevant ones are nutrient signaling pathways because they control growth and stress response mechanisms as a result of nutrient availability or scarcity and, therefore, leave an ample margin to improve yeast biotechnological performance. A standardized grape juice fermentation assay allowed the analysis of mutants for different elements of many nutrient signaling pathways under different conditions (low/high nitrogen and different oxygenation levels) to allow genetic-environment interactions to be analyze…

0301 basic medicineHistologylcsh:BiotechnologySaccharomyces cerevisiaeBiomedical EngineeringWineBioengineering02 engineering and technologySaccharomyces cerevisiaeNutrient signaling03 medical and health scienceslcsh:TP248.13-248.65PKARas2wineTranscription factorWinemaking2. Zero hungerFermentation in winemakingchemistry.chemical_classificationGln3biologynutrient signaling021001 nanoscience & nanotechnologybiology.organism_classificationYeast3. Good health030104 developmental biologyEnzymeBiochemistrychemistrySnf1 kinase[SDE]Environmental SciencesFermentation0210 nano-technologyglucose repressionTORC1 pathwayBiotechnology
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Responses of Saccharomyces cerevisiae Strains from Different Origins to Elevated Iron Concentrations

2015

ABSTRACT Iron is an essential micronutrient for all eukaryotic organisms. However, the low solubility of ferric iron has tremendously increased the prevalence of iron deficiency anemia, especially in women and children, with dramatic consequences. Baker's yeast Saccharomyces cerevisiae is used as a model eukaryotic organism, a fermentative microorganism, and a feed supplement. In this report, we explore the genetic diversity of 123 wild and domestic strains of S. cerevisiae isolated from different geographical origins and sources to characterize how yeast cells respond to elevated iron concentrations in the environment. By using two different forms of iron, we selected and characterized bot…

0301 basic medicineIronMicroorganismSaccharomyces cerevisiaeAnaemiaSaccharomyces cerevisiaeOxidative phosphorylationBiologymedicine.disease_causeApplied Microbiology and BiotechnologyEnvironmentalMicrobiology03 medical and health sciencesEnvironmental Microbiologymedicine030102 biochemistry & molecular biologyEcologyGene Expression ProfilingQR MicrobiologyIron deficiencymedicine.diseaseMicronutrientbiology.organism_classificationYeastOxidative Stress030104 developmental biologyBiochemistryIron-deficiency anemiaOxidative stressFood ScienceBiotechnologyApplied and Environmental Microbiology
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Soybean Ferritin Expression in Saccharomyces cerevisiae Modulates Iron Accumulation and Resistance to Elevated Iron Concentrations

2016

Fungi, including the yeast Saccharomyces cerevisiae, lack ferritin and use vacuoles as iron storage organelles. This work explored how plant ferritin expression influenced baker's yeast iron metabolism. Soybean seed ferritin H1 (SFerH1) and SFerH2 genes were cloned and expressed in yeast cells. Both soybean ferritins assembled as multimeric complexes, which bound yeast intracellular iron in vivo and, consequently, induced the activation of the genes expressed during iron scarcity. Soybean ferritin protected yeast cells that lacked the Ccc1 vacuolar iron detoxification transporter from toxic iron levels by reducing cellular oxidation, thus allowing growth at high iron concentrations. Interes…

0301 basic medicineIronSaccharomyces cerevisiaeGene ExpressionVacuoleSaccharomyces cerevisiaeBiologymedicine.disease_causeApplied Microbiology and Biotechnology03 medical and health sciencesOrganellemedicineCloning MolecularPlant ProteinsFerritin030102 biochemistry & molecular biologyEcologyIron deficiencyfood and beveragesMetabolismIron deficiencybiology.organism_classificationmedicine.diseaseIron metabolismRecombinant ProteinsYeastYeastFerritinSFerH2SFerH1030104 developmental biologyBiochemistryFerritinsbiology.proteinSoybeansOxidative stressFood ScienceBiotechnology
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Sequential cleavage of the proteins encoded by HNOT/ALG3, the human counterpart of the Drosophila NOT and yeast ALG3 gene, results in products acting…

2017

This study provides first insights into the biosynthesis, structure, biochemistry and complex processing of the proteins encoded by hNOT/ALG3, the human counterpart of the Drosophila Neighbour of TID (NOT) and the yeast asparagine linked glycosylation 3 gene (ALG3), which encodes a mannosyltransferase. Unambiguous evidence that both the fly and human proteins act as mannosyltransferases has not been provided yet. Previously, we showed that hNOT/ALG3 encodes two alternatively spliced main transcripts, hNOT-1/ALG3-1 and hNOT-4/ALG3-4, and their 15 truncated derivatives that lack diverse sets of exons and/or carry point mutations that result in premature termination codons. Here we show that t…

0301 basic medicineMannosyltransferaseGlycosylationSaccharomyces cerevisiae ProteinsGlycosylationProtein ConformationRNA SplicingSaccharomyces cerevisiaeBiologyMannosyltransferases03 medical and health scienceschemistry.chemical_compoundExonNuclear Receptor Subfamily 4 Group A Member 2GeneticsAnimalsHumansAmino Acid SequenceAsparagineMolecular BiologyGeneGenetics (clinical)Cellular compartmentPoint mutationComputational BiologyMembrane ProteinsExonsGeneral MedicineCell biologyAlternative Splicing030104 developmental biologychemistryCodon NonsenseDrosophilaCytokinesisHuman Molecular Genetics
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Search for a Minimal Set of Parameters by Assessing the Total Optimization Potential for a Dynamic Model of a Biochemical Network.

2017

Selecting an efficient small set of adjustable parameters to improve metabolic features of an organism is important for a reduction of implementation costs and risks of unpredicted side effects. In practice, to avoid the analysis of a huge combinatorial space for the possible sets of adjustable parameters, experience-, and intuition-based subsets of parameters are often chosen, possibly leaving some interesting counter-intuitive combinations of parameters unrevealed. The combinatorial scan of possible adjustable parameter combinations at the model optimization level is possible; however, the number of analyzed combinations is still limited. The total optimization potential (TOP) approach is…

0301 basic medicineMathematical optimizationLinear programmingApplied Mathematics0206 medical engineeringComputational Biology02 engineering and technologySaccharomyces cerevisiaeModels BiologicalSmall setBiochemical networkEnzymes03 medical and health sciences030104 developmental biologyFermentationGeneticsComputer SimulationMETABOLIC FEATURESGlycolysis020602 bioinformaticsMetabolic Networks and PathwaysBiotechnologyMathematicsIntuitionIEEE/ACM transactions on computational biology and bioinformatics
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Differential Contribution of the Parental Genomes to a S. cerevisiae × S. uvarum Hybrid, Inferred by Phenomic, Genomic, and Transcriptomic Analyses, …

2020

In European regions of cold climate, S. uvarum can replace S. cerevisiae in wine fermentations performed at low temperatures. S. uvarum is a cryotolerant yeast that produces more glycerol, less acetic acid and exhibits a better aroma profile. However, this species exhibits a poor ethanol tolerance compared with S. cerevisiae. In the present study, we obtained by rare mating (non-GMO strategy), and a subsequent sporulation, an interspecific S. cerevisiae × S. uvarum spore-derivative hybrid that improves or maintains a combination of parental traits of interest for the wine industry, such as good fermentation performance, increased ethanol tolerance, and high glycerol and aroma productions. G…

0301 basic medicineMating typeHistologylcsh:BiotechnologySaccharomyces cerevisiaeBiomedical EngineeringBioengineeringLocus (genetics)Ethanol tolerance02 engineering and technologySaccharomyces cerevisiaeBiologyGenome sequencingGenome03 medical and health scienceslcsh:TP248.13-248.65Artificial hybridWine fermentationHybridFermentation in winemakingGeneticsfungifood and beverages021001 nanoscience & nanotechnologybiology.organism_classificationYeastethanol tolerancegenome sequencing030104 developmental biologyS. uvarumwine fermentationartificial hybridRNA-seqPloidy0210 nano-technologyBiotechnologyFrontiers in Bioengineering and Biotechnology
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