Search results for "Glycosyl"

showing 10 items of 317 documents

TheGCA1gene encodes a glycosidase-like protein in the cell wall ofCandida albicans

2016

Candida albicans Gca1p is a putative glucoamylase enzyme which contains 946 amino acids, 11 putative sites for N -glycosylation and 9 for O -glycosylation. Gca1p was identified in β-mercaptoethanol extracts from isolated cell walls of strain C. albicans SC5314 and it is involved in carbohydrate metabolism. The significance and the role of this protein within the cell wall structure were studied in the corresponding mutants. The homozygous mutant showed that GCA1 was not an essential gene for cell viability. Subsequent phenotypic analysis performed in the mutants obtained did not show significant difference in the behavior of mutant when compared with the wild strain SC5314. Zymoliase, Calco…

0301 basic medicineGlycosylationGlycoside HydrolasesGenes Fungal030106 microbiologyMutantCalcofluor-whiteApplied Microbiology and BiotechnologyMicrobiologyCell wallGene Knockout Techniques03 medical and health scienceschemistry.chemical_compoundGlucosidesCell WallCandida albicansCandida albicanschemistry.chemical_classificationMicrobial ViabilitybiologyGeneral Medicinebiology.organism_classificationMolecular biologyEnzyme assayCorpus albicansEnzymechemistryBiochemistrybiology.proteinFEMS Yeast Research
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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 the DNA repair glycosylase OGG1 in the activation of murine splenocytes

2017

OGG1 (8-oxoguanine-DNA glycosylase) is the major DNA repair glycosylase removing the premutagenic DNA base modification 8-oxo-7,8-dihydroguanine (8-oxoG) from the genome of mammalian cells. In addition, there is accumulating evidence that OGG1 and its substrate 8-oxoG might function in the regulation of certain genes, which could account for an attenuated immune response observed in Ogg1-/- mice in several settings. Indications for at least two different mechanisms have been obtained. Thus, OGG1 could either act as an ancillary transcription factor cooperating with the lysine-specific demethylase LSD1 or as an activator of small GTPases. Here, we analysed the activation by lipopolysaccaride…

0301 basic medicineGuanineDNA RepairDNA repairp38 mitogen-activated protein kinasesBiologyBiochemistryDNA GlycosylasesMice03 medical and health sciencesAnimalsMolecular BiologyTranscription factorTumor Necrosis Factor-alphaKinaseActivator (genetics)MacrophagesDNACell BiologyBase excision repairMolecular biology030104 developmental biologyGene Expression RegulationDNA glycosylaseTumor necrosis factor alphaSpleenDNA DamageTranscription FactorsDNA Repair
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Oxidatively generated base modifications in DNA: Not only carcinogenic risk factor but also regulatory mark?

2016

The generation of DNA modifications in cells is in most cases accidental and associated with detrimental consequences such as increased mutation rates and an elevated risk of malignant transformation. Accordingly, repair enzymes involved in the removal of the modifications have primarily a protective function. Among the well-established exceptions of this rule are 5-methylcytosine and uracil, which are generated in DNA enzymatically under controlled conditions and fulfill important regulatory functions in DNA as epigenetic marks and in antibody diversification, respectively. More recently, considerable evidence has been obtained that also 8-oxo-7,8-dihydroguanine (8-oxoG), a frequent pro-mu…

0301 basic medicineGuanineDNA RepairTranscription GeneticDNA repairCarcinogenesisBiochemistryDNA GlycosylasesEpigenesis Genetic03 medical and health sciencesRisk FactorsPhysiology (medical)NeoplasmsAnimalsGuanine Nucleotide Exchange FactorsHumansProtein–DNA interactionTranscription factor030102 biochemistry & molecular biologybiologyBase excision repairDNAProliferating cell nuclear antigenOxidative Stress030104 developmental biologyHistoneBiochemistryDNA glycosylasebiology.proteinOxidation-ReductionNucleotide excision repairSignal TransductionFree radical biologymedicine
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Hepatitis B Virus Exploits ERGIC-53 in Conjunction with COPII to Exit Cells.

2020

Several decades after its discovery, the hepatitis B virus (HBV) still displays one of the most successful pathogens in human populations worldwide. The identification and characterization of interactions between cellular and pathogenic components are essential for the development of antiviral treatments. Due to its small-sized genome, HBV highly depends on cellular functions to produce and export progeny particles. Deploying biochemical-silencing methods and molecular interaction studies in HBV-expressing liver cells, we herein identified the cellular ERGIC-53, a high-mannose-specific lectin, and distinct components of the endoplasmic reticulum (ER) export machinery COPII as crucial factor…

0301 basic medicineHepatitis B virusSec24AEndosomeHBV assemblyVesicular Transport ProteinsN-glycosylationBiologymedicine.disease_causeEndoplasmic ReticulumTransfectionGenomeESCRTArticle03 medical and health sciencesN-linked glycosylationViral life cycleCell Line TumormedicineHBVHumansCOPIICOPIIlcsh:QH301-705.5Hepatitis B virus030102 biochemistry & molecular biologyEndosomal Sorting Complexes Required for TransportEndoplasmic reticulumVirionMembrane ProteinsGeneral MedicineHepatitis BHBV egressERGIC-53Cell biologyProtein Transport030104 developmental biologyMannose-Binding Lectinslcsh:Biology (General)HepatocytesLMAN-1COP-Coated VesiclesCells
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Genetic epidemiology of autosomal recessive hypercholesterolemia in Sicily: Identification by next-generation sequencing of a new kindred.

2017

Background Autosomal recessive hypercholesterolemia (ARH) is a rare inherited lipid disorder. In Sardinia, differently from other world regions, the mutated allele frequency is high. It is caused by mutations in the low-density lipoprotein receptor adaptor protein 1 gene. Fourteen different mutations have been reported so far; in Sardinia, 2 alleles (ARH1 and ARH2) explain most of the cases. Four ARH patients, all carriers of the ARH1 mutation, have been identified in mainland Italy and 2 in Sicily. Objective The objectives of the study were to improve the molecular diagnosis of familial hypercholesterolemia (FH) and to estimate the frequency of the ARH1 allele in 2 free-living Sicilian pop…

0301 basic medicineMaleSettore MED/09 - Medicina InternaEndocrinology Diabetes and MetabolismFamilial hypercholesterolemia030204 cardiovascular system & hematology0302 clinical medicineChildN-Glycosyl HydrolasesSicilyGeneticsAged 80 and overeducation.field_of_studyNutrition and DieteticsAllele frequencyHomozygoteHigh-Throughput Nucleotide SequencingAutosomal recessive hypercholesterolemiaMiddle AgedAutosomal Recessive HypercholesterolemiaSettore MED/26 - NeurologiaFemaleCardiology and Cardiovascular MedicineAdultAdolescentGenotypePopulationHypercholesterolemiaBiologyDNA sequencing03 medical and health sciencesYoung AdultARH1Internal MedicinemedicineHumansAlleleeducationGenotypingAllele frequencyAllelesAdaptor Proteins Signal TransducingAgedHeterozygous carrierSequence Analysis DNAmedicine.diseaseNGS-based gene panel030104 developmental biologyGenetic epidemiologyReceptors LDLJournal of clinical lipidology
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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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Regulation of GC box activity by 8-oxoguanine

2021

The oxidation-induced DNA modification 8-oxo-7,8-dihydro-2′-deoxyguanosine (8-oxodG) was recently implicated in the activation and repression of gene transcription. We aimed at a systematic characterisation of the impacts of 8-oxodG on the activity of a GC box placed upstream from the RNA polymerase II core promoter. With the help of reporters carrying single synthetic 8-oxodG residues at four conserved G:C base pairs (underlined) within the 5′-TGGGCGGAGC-3′ GC box sequence, we identified two modes of interference of 8-oxodG with the promoter activity. Firstly, 8-oxodG in the purine-rich (but not in the pyrimidine-rich) strand caused direct impairment of transcriptional activation. In addit…

0301 basic medicineMedicine (General)GuanineDNA RepairQH301-705.5Clinical BiochemistryCAAT box8-OxoguanineRNA polymerase IIBiochemistryDNA GlycosylasesAP endonuclease03 medical and health sciencesR5-9200302 clinical medicineGene expressionDNA-(Apurinic or Apyrimidinic Site) LyaseAP siteBiology (General)AP lesionbiologyChemistryOrganic ChemistryPromoterBase excision repairMolecular biologyGC boxBase excision repair (BER)030104 developmental biologyDNA glycosylasebiology.protein8-Oxoguanine DNA Glycosylase (OGG1)030217 neurology & neurosurgeryResearch PaperDNA DamageRedox Biology
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Probing Differential Binding Mechanisms of Phenylalanine-Glycine-Rich Nucleoporins by Single-Molecule FRET

2018

Abstract Phenylalanine-glycine-rich nucleoporins (FG-Nups) are intrinsically disordered proteins, constituting the selective barrier of the nuclear pore complex. They are highly dynamic under physiological conditions and studying their interaction with nuclear transport receptors (NTRs) is key to understanding the molecular mechanism of nucleocytoplasmic transport. Distinct conformational features of FG-Nups interacting with diverse NTRs can be detected by multiparameter single-molecule fluorescence energy transfer (smFRET), which is a powerful technique for studying the dynamics and interactions of biomolecules in solution. Here we provide a detailed protocol utilizing smFRET to reveal dif…

0301 basic medicineModels MolecularGlycosylationProtein ConformationPhenylalanineGlycineIntrinsically disordered proteinsArticle03 medical and health scienceschemistry.chemical_compoundFluorescence Resonance Energy TransferAnimalsHumansNuclear porechemistry.chemical_classificationBiomoleculeSingle-molecule FRETEquipment DesignIntrinsically Disordered ProteinsNuclear Pore Complex Proteins030104 developmental biologychemistryNucleocytoplasmic TransportBiophysicsNucleoporinNuclear transportProtein BindingIntrinsically Disordered Proteins
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Two differential binding mechanisms of FG-nucleoporins and nuclear transport receptors

2018

Summary Phenylalanine-glycine-rich nucleoporins (FG-Nups) are intrinsically disordered proteins, constituting the selective barrier of the nuclear pore complex (NPC). Previous studies showed that nuclear transport receptors (NTRs) were found to interact with FG-Nups by forming an “archetypal-fuzzy” complex through the rapid formation and breakage of interactions with many individual FG motifs. Here, we use single-molecule studies combined with atomistic simulations to show that, in sharp contrast, FG-Nup214 undergoes a coupled reconfiguration-binding mechanism when interacting with the export receptor CRM1. Association and dissociation rate constants are more than an order of magnitude lowe…

0301 basic medicineModels MolecularGlycosylationglycosylationProtein ConformationPhenylalanineGlycineSequence (biology)Intrinsically disordered proteinsnuclear transport receptorssingle-molecule FRETGeneral Biochemistry Genetics and Molecular BiologyArticle03 medical and health scienceschemistry.chemical_compound0302 clinical medicineEscherichia coliFluorescence Resonance Energy TransferHumansNuclear poreReceptorlcsh:QH301-705.5Single-molecule FRETmolecular dynamics simulationsbinding mechanismintrinsically disordered proteinFG-Nup3. Good healthNuclear Pore Complex Proteins030104 developmental biologychemistrylcsh:Biology (General)BiophysicsNuclear PoreNucleoporinNuclear transport030217 neurology & neurosurgeryProtein BindingCell Reports
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