Search results for "Oligosaccharides"

showing 10 items of 71 documents

Prebiotic effect of xylooligosaccharides produced from birchwood xylan by a novel fungal GH11 xylanase.

2017

34 p.-4 fig.-1 tab.

0106 biological sciences0301 basic medicineSCFAsBreast-fedStaphylococcus hominisMicroorganismmedicine.medical_treatmentOligosaccharidesXyloseBiologyXylosidase01 natural sciencesAnalytical Chemistry03 medical and health scienceschemistry.chemical_compound010608 biotechnologyXylobiosemedicineGlycoside hydrolaseEndo-14-beta XylanasesPrebioticHydrolysisGeneral MedicineXylanLactic acid030104 developmental biologyPrebioticschemistryBiochemistryTalaromycesXOSXylanaseXylansMicrobiomeBifidobacteriumFood ScienceFood chemistry
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Anti-Inflammatory and Cytoprotective Effect of Plant Sterol and Galactooligosaccharides-Enriched Beverages in Caco-2 Cells

2019

Plant sterol (PS) (1 g/100 mL) enriched milk-based fruit beverages with or without galactooligosaccharides (GOS) (1.8 g/100 mL) were used in differentiated Caco-2 cells. Their potential cytopreventive effect against oxidative stress induced by cholesterol oxidation products (COPs) and their anti-inflammatory properties were evaluated. Preincubation (24 h) with bioaccessible fractions from beverages without and with GOS (MfB and MfB-G) completely prevented the COPs (60 μM/4 h) induced oxidative stress independent to GOS presence with exception to calcium influx and GSH content, where a partial protective effect was observed. Besides, MfB produced a significant (p < 0.05) reduction of IL-8 (4…

0106 biological sciencesAntioxidantmedicine.drug_classmedicine.medical_treatmentInterleukin-1betaAnti-Inflammatory AgentsOligosaccharidesChromosomal translocationProtective Agentsmedicine.disease_cause01 natural sciencesAnti-inflammatoryBeverageschemistry.chemical_compoundmedicineHumansFood scienceCholesterol010401 analytical chemistryTranscription Factor RelAPhytosterolsGeneral ChemistryGlutathionePlant sterol0104 chemical sciencesOxidative StresschemistryCytoprotectionCaco-2Caco-2 CellsGeneral Agricultural and Biological SciencesOxidative stress010606 plant biology & botanyJournal of Agricultural and Food Chemistry
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Involvement of the glutamate receptor AtGLR3.3 in plant defense signaling and resistance toHyaloperonospora arabidopsidis

2013

Like their animal counterparts, plant glutamate receptor-like (GLR) homologs are intimately associated with Ca(2+) influx through plasma membrane and participate in various physiological processes. In pathogen-associated molecular patterns (PAMP)-/elicitor-mediated resistance, Ca(2+) fluxes are necessary for activating downstream signaling events related to plant defense. In this study, oligogalacturonides (OGs), which are endogenous elicitors derived from cell wall degradation, were used to investigate the role of Arabidopsis GLRs in defense signaling. Pharmacological investigations indicated that GLRs are partly involved in free cytosolic [Ca(2+)] ([Ca(2+)]cyt) variations, nitric oxide (N…

0106 biological sciencesArabidopsis thaliana[SDV]Life Sciences [q-bio]ArabidopsisOligosaccharidesPlant Science01 natural sciencesCALCIUM SIGNATURESchemistry.chemical_compoundGene Expression Regulation PlantSYSTEMIC ACQUIRED-RESISTANCEArabidopsisPlant defense against herbivoryArabidopsis thalianaPlant ImmunityGENE-EXPRESSIONCalcium signaling0303 health sciencesIMMUNE-RESPONSESTOBACCO CELLSfood and beveragesCYTOSOLIC CALCIUMElicitorOomycetesReceptors GlutamateBiochemistryHost-Pathogen Interactions[SDE]Environmental SciencesoligogalacturonidesSignal transductionSignal Transductionglutamate receptorHyaloperonospora arabidopsidisBiologyNitric Oxidecalcium signaling03 medical and health sciencesplant defenseGeneticsDNQX[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyBOTRYTIS-CINEREA030304 developmental biologyHyaloperonospora arabidopsidisNITRIC-OXIDEArabidopsis ProteinsCell Biologybiology.organism_classificationSALICYLIC-ACIDchemistryPLASMA-MEMBRANEReactive Oxygen Species010606 plant biology & botanyThe Plant Journal
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Glutathione deficiency of the Arabidopsis mutant pad2-1 affects oxidative stress-related events, defense gene expression and hypersensitive response

2011

L'article original est publié par The American Society of Plant Biologists; International audience; The Arabidopsis (Arabidopsis thaliana) phytoalexin-deficient mutant pad2-1 displays enhanced susceptibility to a broad range of pathogens and herbivorous insects that correlates with deficiencies in the production of camalexin, indole glucosinolates, and salicylic acid (SA). The pad2-1 mutation is localized in the GLUTAMATE-CYSTEINE LIGASE (GCL) gene encoding the first enzyme of glutathione biosynthesis. While pad2-1 glutathione deficiency is not caused by a decrease in GCL transcripts, analysis of GCL protein level revealed that pad2-1 plants contained only 48% of the wild-type protein amoun…

0106 biological sciencesPhysiologyMutantGlutathione reductaseArabidopsisOligosaccharidesPlant Science01 natural scienceschemistry.chemical_compoundAnti-Infective AgentsGene Expression Regulation PlantCamalexinArabidopsis thaliana0303 health sciencesGlutathioneBiochemistryHost-Pathogen InteractionsDisease SusceptibilitySalicylic AcidOxidation-ReductionSignal TransductionHypersensitive responsePhytophthoradisease resistanceBiologyNitric Oxiderespiratory burst oxidase homolog d[SDV.GEN.GPL]Life Sciences [q-bio]/Genetics/Plants genetics03 medical and health sciencesStress PhysiologicalGeneticsPlants Interacting with Other Organismsglutathione reductase030304 developmental biologyPlant DiseasesArabidopsis ProteinsCell MembraneWild typeGlutathioneHydrogen Peroxidebiology.organism_classificationMolecular biologyPlant LeavesOxidative StresschemistryMutationglutathione-s-transferaseIsochorismate synthasebiology.proteinglutamate-cysteine ligaseReactive Oxygen Species010606 plant biology & botany
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Human milk and mucosa-associated disaccharides impact on cultured infant fecal microbiota

2020

Human milk oligosaccharides (HMOs) are a mixture of structurally diverse carbohydrates that contribute to shape a healthy gut microbiota composition. The great diversity of the HMOs structures does not allow the attribution of specific prebiotic characteristics to single milk oligosaccharides. We analyze here the utilization of four disaccharides, lacto-N-biose (LNB), galacto-N-biose (GNB), fucosyl-α1,3-GlcNAc (3FN) and fucosyl-α1,6-GlcNAc (6FN), that form part of HMOs and glycoprotein structures, by the infant fecal microbiota. LNB significantly increased the total levels of bifidobacteria and the species Bifidobacterium breve and Bifidobacterium bifidum. The Lactobacillus genus levels wer…

0301 basic medicineFormatesMolecular biologymedicine.medical_treatmentved/biology.organism_classification_rank.specieslcsh:MedicineMicrobiologiaGut floraAcetatesBifidobacterium breveDisaccharidesFecesfluids and secretionsFucosyl-α13-GlcNAcLactobacillusFood sciencelcsh:ScienceBifidobacterium2. Zero hungerClostridialesMultidisciplinaryBifidobacterium brevebiologyHuman milk oligosaccharidesfood and beveragesFucosyl-α16-GlcNAcEnterobacteriaceae3. Good healthDNA Bacterial030106 microbiologyGut microbiotaDisaccharidasesMicrobiologydigestive systemArticleAcetylglucosamine03 medical and health sciencesEnterobacteriaceaemedicineHumansLactic AcidGalacto-N-bioseBifidobacterium bifidumMilk Humanved/biologyPrebioticlcsh:RInfantbiology.organism_classificationLactobacilsGastrointestinal MicrobiomeLactobacillus030104 developmental biologyPrebioticslcsh:QFermentationBifidobacterium bifidumLacto-N-biose
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Human milk and mucosal lacto- and galacto-N-biose synthesis by transgalactosylation and their prebiotic potential in Lactobacillus species.

2017

Lacto-N-biose (LNB) and galacto-N-biose (GNB) are major building blocks of free oligosaccharides and glycan moieties of glyco-complexes present in human milk and gastrointestinal mucosa. We have previously characterized the phospho-β-galactosidase GnbG from Lactobacillus casei BL23 that is involved in the metabolism of LNB and GNB. GnbG has been used here in transglycosylation reactions, and it showed the production of LNB and GNB with N-acetylglucosamine and N-acetylgalactosamine as acceptors, respectively. The reaction kinetics demonstrated that GnbG can convert 69 ± 4 and 71 ± 1 % of o-nitrophenyl-β-d-galactopyranoside into LNB and GNB, respectively. Those reactions were performed in a s…

0301 basic medicineGlycanLactobacillus caseiTransglycosylationAcetylgalactosamineGlycosylationMagnetic Resonance SpectroscopyGlycoside Hydrolasesmedicine.medical_treatment030106 microbiologyMicrobiologiaPrebioticBiologyLactobacillus gasseriDisaccharidesApplied Microbiology and BiotechnologyMicrobiologyAcetylglucosamine03 medical and health sciencesLactobacillus rhamnosusmedicineIntestinal MucosaGalacto-N-bioseLactobacillus johnsoniiMilk HumanPrebioticHuman milk oligosaccharidesfood and beveragesNucleic Acid HybridizationGeneral MedicineMetabolismbiology.organism_classificationLactobacilsKineticsLactobacillus030104 developmental biologyPrebioticsBiochemistrybiology.proteinFermentationLacto-N-bioseBiotechnologyApplied microbiology and biotechnology
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The extracellular wall-bound β-N-acetylglucosaminidase from Lactobacillus casei is involved in the metabolism of the human milk oligosaccharide lacto…

2015

Human milk oligosaccharides (HMOs) are considered to play a key role in establishing and maintaining the infant gut microbiota. Lacto-N-triose forms part of both type 1 and type 2 HMOs and also of the glycan moieties of glycoproteins. Upstream of the previously characterized gene cluster involved in lacto-N-biose and galacto-N-biose metabolism from Lactobacillus casei BL23, there are two genes, bnaG and manA, encoding a β-N-acetylglucosaminidase precursor and a mannose-6-phosphate isomerase, respectively. In this work, we show that L. casei is able to grow in the presence of lacto-N-triose as a carbon source. Inactivation of bnaG abolished the growth of L. casei on this oligosaccharide, dem…

0301 basic medicineLactobacillus caseiGlycan030106 microbiologyMutantMannoseOligosaccharidesGenetics and Molecular BiologyApplied Microbiology and BiotechnologyMicrobiology03 medical and health scienceschemistry.chemical_compoundBacterial ProteinsCell WallAcetylglucosaminidaseHumanschemistry.chemical_classificationEcologybiologyMilk Humanfood and beveragesOligosaccharidebiology.organism_classificationEnzyme assayLacticaseibacillus caseiEnzymechemistryBiochemistrybiology.proteinGlycoproteinTrisaccharidesFood ScienceBiotechnology
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The lactose operon from Lactobacillus casei is involved in the transport and metabolism of the human milk oligosaccharide core-2 N-acetyllactosamine

2018

The lactose operon (lacTEGF) from Lactobacillus casei strain BL23 has been previously studied. The lacT gene codes for a transcriptional antiterminator, lacE and lacF for the lactose-specific phosphoenolpyruvate: phosphotransferase system (PTS) EIICB and EIIA domains, respectively, and lacG for the phospho-β-galactosidase. In this work, we have shown that L. casei is able to metabolize N-acetyllactosamine (LacNAc), a disaccharide present at human milk and intestinal mucosa. The mutant strains BL153 (lacE) and BL155 (lacF) were defective in LacNAc utilization, indicating that the EIICB and EIIA of the PTS are involved in the uptake of LacNAc in addition to lactose. Inactivation of lacG aboli…

0301 basic medicineLactobacillus caseiScience030106 microbiologyDisaccharideOligosaccharideslac operonLactoseBacterisArticle03 medical and health scienceschemistry.chemical_compoundIntestinal mucosaHumansIntestinal MucosaLactosePhosphoenolpyruvate Sugar Phosphotransferase SystemAldose-Ketose IsomerasesCell Proliferationchemistry.chemical_classificationMultidisciplinaryMilk HumanbiologyQRGalactoseAmino SugarsPEP group translocationOligosaccharidebiology.organism_classificationLactobacilsLacticaseibacillus caseiLac OperonchemistryBiochemistryGalactoseMedicine
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The Complete Structure of the Core Oligosaccharide from Edwardsiella tarda EIB 202 Lipopolysaccharide

2017

The chemical structure and genomics of the lipopolysaccharide (LPS) core oligosaccharide of pathogenic Edwardsiella tarda strain EIB 202 were studied for the first time. The complete gene assignment for all LPS core biosynthesis gene functions was acquired. The complete structure of core oligosaccharide was investigated by 1H and 13C nuclear magnetic resonance (NMR) spectroscopy, electrospray ionization mass spectrometry MSn, and matrix-assisted laser-desorption/ionization time-of-flight mass spectrometry. The following structure of the undecasaccharide was established: The heterogeneous appearance of the core oligosaccharide structure was due to the partial lack of β-d-Galp and the replace…

0301 basic medicineLipopolysaccharidesMagnetic Resonance SpectroscopyChemical structureElectrospray ionization030106 microbiologyOligosaccharidesTandem mass spectrometryMass spectrometry<i>Edwardsiella tarda</i>; core oligosaccharide; MALDI-TOF MS; ESI MS<sup>n</sup>; NMR; genomicESI MSnCatalysisArticleInorganic Chemistrylcsh:Chemistrycore oligosaccharidegenomic03 medical and health scienceschemistry.chemical_compoundBiosynthesisTandem Mass SpectrometryBacterial geneticsMALDI-TOF MSPhysical and Theoretical ChemistryMolecular Biologylcsh:QH301-705.5Edwardsiella tardaSpectroscopyGenètica bacterianabiologyChemistryOrganic ChemistryEdwardsiella tardaGeneral MedicineNuclear magnetic resonance spectroscopybiology.organism_classificationNMRComputer Science ApplicationsMatrix-assisted laser desorption/ionization030104 developmental biologyBiochemistrylcsh:Biology (General)lcsh:QD1-999Carbohydrate SequencePathogenic bacteriaSpectrometry Mass Matrix-Assisted Laser Desorption-IonizationBacteris patògensInternational Journal of Molecular Sciences
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The New Structure of Core Oligosaccharide Presented by Proteus penneri 40A and 41 Lipopolysaccharides

2018

The new type of core oligosaccharide in Proteus penneri 40A and 41 lipopolysaccharides has been investigated by 1H and 13C NMR spectroscopy, electrospray ionization mass spectrometry and chemical methods. Core oligosaccharides of both strains were chosen for structural analysis based on the reactivity of LPSs with serum against P. penneri 40A core oligosaccharide–diphtheria toxoid conjugate. Structural analyses revealed that P. penneri 40A and 41 LPSs possess an identical core oligosaccharide.

0301 basic medicineLipopolysaccharidesSpectrometry Mass Electrospray IonizationMagnetic Resonance SpectroscopyStereochemistryElectrospray ionizationOligosaccharidesanti-conjugate serum; core oligosaccharide; lipopolysaccharide; NMR spectroscopy; ESI MS; <i>Proteus penneri</i>Immune seraProteus penneriCatalysisArticleInorganic Chemistrycore oligosaccharidelcsh:Chemistry03 medical and health sciencesStructure-Activity Relationship13c nmr spectroscopyNMR spectroscopyMoleculePhysical and Theoretical ChemistryESI MSMolecular Biologylcsh:QH301-705.5SpectroscopyAntigens Bacterial030102 biochemistry & molecular biologybiologyMolecular StructureChemistryCore oligosaccharideImmune Seraanti-conjugate serumOrganic ChemistrylipopolysaccharideGeneral MedicineNuclear magnetic resonance spectroscopybiology.organism_classificationProteus penneriComputer Science Applicationslcsh:Biology (General)lcsh:QD1-999ConjugateInternational Journal of Molecular Sciences
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