Search results for "FUNGAL"

showing 10 items of 1116 documents

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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Molecular cloning of the RPS0 gene from Candida tropicalis.

2001

The Saccharomyces cerevisiae RPS0 A and B genes encode proteins essential for maturation of the 40S ribosomal subunit precursors. We have isolated a homologue of the RPS0 gene from Candida tropicalis, which we named CtRPS0. The C. tropicalisRPS0 encodes a protein of 261 amino acid residues with a predicted molecular weight of 28.65 kDa and an isoelectric point of 4.79. CtRps0p displays significant amino acid sequence homology with Rps0p from C. albicans, S. cerevisiae, Neurospora crassa, Schizosaccharomyces pombe, Pneumocystis carinii and higher organisms, such as human, mouse and rat. CtRPS0 on a high copy number vector can complement the lethal phenotype linked to the disruption of both R…

Ribosomal ProteinsSaccharomyces cerevisiaeGenes FungalMolecular Sequence DataBioengineeringSaccharomyces cerevisiaeBiologyApplied Microbiology and BiotechnologyBiochemistryNeurospora crassaCandida tropicalisFungal ProteinsRibosomal proteinGeneticsAmino Acid SequenceCloning MolecularGeneSouthern blotCandidaGeneticsBase SequenceSequence Homology Amino AcidGenetic Complementation TestNucleic acid sequencebiology.organism_classificationSchizosaccharomyces pombeProtein Processing Post-TranslationalBiotechnologyYeast (Chichester, England)
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Risk stratification for invasive fungal infections in patients with hematological malignancies: SEIFEM recommendations

2016

Invasive fungal infections (IFIs) are an important cause of morbidity and mortality in immunocompromised patients. Patients with hematological malignancies undergoing conventional chemotherapy, autologous or allogeneic hematopoietic stem cell transplantation are considered at high risk, and Aspergillus spp. represents the most frequently isolated micro-organisms. In the last years, attention has also been focused on other rare molds (e.g., Zygomycetes, Fusarium spp.) responsible for devastating clinical manifestations. The extensive use of antifungal prophylaxis has reduced the infections from yeasts (e.g., candidemia) even though they are still associated with high mortality rates. This pa…

Riskmedicine.medical_specialtySettore MED/06 - Oncologia Medicamedicine.medical_treatmentHematopoietic stem cell transplantationNeutropeniaSettore MED/17 - MALATTIE INFETTIVEHematopoietic stem cell transplantation; Leukemia; Molds; Risk factors; Yeast; Antineoplastic Combined Chemotherapy Protocols; Disease Susceptibility; Hematologic Neoplasms; Hematopoietic Stem Cell Transplantation; Humans; Incidence; Invasive Fungal Infections; Risk; Hematology; OncologyHematopoietic stem cell transplantation; Leukemia; Molds; Risk factors; Yeast; Hematology; OncologyMolds03 medical and health sciences0302 clinical medicineInternal medicineAntineoplastic Combined Chemotherapy ProtocolsmedicineHumansIn patientAspergillusHematologyLeukemiabiologyIncidence (epidemiology)IncidenceHematopoietic Stem Cell TransplantationHematologyhematopoietic stem cell transplantation; Leukemia; Molds; Risk factors; Yeastmedicine.diseasebiology.organism_classificationYeastSettore MED/15 - MALATTIE DEL SANGUELeukemiaOncologyRisk factorsMold030220 oncology & carcinogenesisHematologic NeoplasmsRisk stratificationImmunologyhematopoietic stem cell transplantationRisk factorDisease SusceptibilityInvasive Fungal Infections030215 immunology
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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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Rtp1p Is a Karyopherin-Like Protein Required for RNA Polymerase II Biogenesis

2013

The assembly and nuclear transport of RNA polymerase II (RNA pol II) are processes that require the participation of many auxiliary factors. In a yeast genetic screen, we identified a previously uncharacterized gene, YMR185w (renamed RTP1), which encodes a protein required for the nuclear import of RNA pol II. Using protein affinity purification coupled to mass spectrometry, we identified interactions between Rtp1p and members of the R2TP complex. Rtp1p also interacts, to a different extent, with several RNA pol II subunits. The pattern of interactions is compatible with a role for Rtp1p as an assembly factor that participates in the formation of the Rpb2/Rpb3 subassembly complex and its bi…

Saccharomyces cerevisiae ProteinsActive Transport Cell NucleusRNA polymerase IISaccharomyces cerevisiaeKaryopherinsBiologyGene Expression Regulation FungalTranscriptional regulationRNA polymerase IProtein Interaction MapsMolecular BiologyRNA polymerase II holoenzymeR2TP complexGeneticsNuclear cap-binding protein complexArticlesCell BiologyPhosphoproteinsUp-RegulationCell biologyNuclear Pore Complex Proteinsbiology.proteinRNA Polymerase IITranscription factor II DCarrier ProteinsGene DeletionSmall nuclear RNATranscription Factors
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Btn2p is involved in ethanol tolerance and biofilm formation in flor yeast

2008

Flor yeasts are a particular kind of Saccharomyces cerevisiae strains involved in Sherry wine biological ageing. During this process, yeasts form a film on the wine surface and use ethanol as a carbon source, producing acetaldehyde as a by-product. Acetaldehyde induces BTN2 transcription in laboratory strains. Btn2p is involved in the control of the subcellular localization of different proteins. The BTN2 gene shows a complex expression pattern in wine yeast, increasing its expression by acetaldehyde, but repressing it by ethanol. A flor yeast strain transcribes more BTN2 than a first fermentation yeast during growth, but less under different stress conditions. BTN2 deletion decreases flor …

Saccharomyces cerevisiae ProteinsAmino Acid Transport SystemsSaccharomyces cerevisiaeFlorAcetaldehydeSaccharomyces cerevisiaeApplied Microbiology and BiotechnologyMicrobiologychemistry.chemical_compoundGene Expression Regulation FungalGrowth mediumMembrane GlycoproteinsEthanolbiologyBiofilmAcetaldehydeMembrane ProteinsGeneral Medicinebiology.organism_classificationYeastCulture MediaYeast in winemakingchemistryBiochemistryBiofilmsFermentationGene DeletionHeat-Shock ResponseBiotechnologyFEMS Yeast Research
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Addition of ammonia or amino acids to a nitrogen-depleted medium affects gene expression patterns in yeast cells during alcoholic fermentation

2007

Yeast cells require nitrogen and are capable of selectively using good nitrogen sources in preference to poor ones by means of the regulatory mechanism known as nitrogen catabolite repression (NCR). Herein, the effect of ammonia or amino acid addition to nitrogen-depleted medium on global yeast expression patterns in yeast cells was studied using alcoholic fermentation as a system. The results indicate that there is a differential reprogramming of the gene expression depending on the nitrogen source added. Ammonia addition resulted in a higher expression of genes involved in amino acids biosynthesis while amino acid addition prepares the cells for protein biosynthesis. Therefore, a high per…

Saccharomyces cerevisiae ProteinsBiologyApplied Microbiology and BiotechnologyMicrobiologySaccharomyceschemistry.chemical_compoundBiosynthesisAmmoniaGene expressionProtein biosynthesisRNA MessengerAmino AcidsGeneAmino acid synthesisOligonucleotide Array Sequence Analysischemistry.chemical_classificationEthanolReverse Transcriptase Polymerase Chain ReactionGene Expression ProfilingRNA FungalGeneral MedicineYeastBiosynthetic PathwaysCulture MediaAmino acidGene Expression RegulationBiochemistrychemistryProtein BiosynthesisFermentationFermentationFEMS Yeast Research
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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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