Search results for " Phase"

showing 10 items of 1862 documents

Application of a low transition temperature mixture for the dispersive liquid–liquid microextraction of illicit drugs from urine samples

2021

© 2021 by the authors.

BioanalysisLiquid Phase MicroextractionProductes biològicsIllicit drugsDispersive liquid–liquid mi-croextractionPharmaceutical ScienceOrganic chemistryUrineUrineHigh-performance liquid chromatographyBiological samples; Deep eutectic solvents; Dispersive liquid–liquid mi-croextraction; Drugs; High performance liquid chromatography; Illicit drugs; Low transition temperature mixtures; UrineArticleLow transition temperature mixturesAnalytical Chemistrychemistry.chemical_compoundBiological samplesQD241-441Limit of DetectionDrug DiscoveryHumansTransition TemperatureSample preparationPhysical and Theoretical ChemistryChromatographyChemistryExtraction (chemistry)Deep eutectic solventsDrugsSolventCold TemperatureChemistry (miscellaneous)Dispersive liquid–liquid microextractionMolecular MedicineDroguesGlass transitionCholine chlorideHigh performance liquid chromatography
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Combination of supported liquid membrane and solid-phase extraction for sample pretreatment of triazine herbicides in juice prior to capillary electr…

2002

A possibility of a combination of supported liquid membrane (SLM) and solid-phase extraction (SPE) for the determination of atrazine at microgram level in different type of fruit juices is presented. In comparison to SPE extraction from juice samples, the application of SLM-SPE enrichment provides much cleaner extracts and the possibility of lowering the limit of detection as low as 30 microg/l. However, it was also shown that by appropriate manipulation of SLM extraction conditions mainly flow-rate of donor phase and volume ratio between donor and acceptor phase, the level of detection can be further decreased to 10 microg/l. The results suggest that the application of SLM extraction prior…

Biochemistryfruit juiceAnalytical ChemistryBeveragessupporter liquid membrane extractionchemistry.chemical_compoundCapillary electrophoresistriazinesSample preparationsolid-phase extractionSolid phase extractionAtrazineTriazineDetection limitChromatographyChemistryHerbicidesOrganic ChemistryElectrophoresis CapillaryMembranes ArtificialGeneral MedicinepesticidesMembraneCalibrationQuantitative analysis (chemistry)atrazineJournal of Chromatography A
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A sustainable on-line CapLC method for quantifying antifouling agents like irgarol-1051 and diuron in water samples: Estimation of the carbon footpri…

2016

In this work, in-tube solid phase microextraction (in-tube SPME) coupled to capillary LC (CapLC) with diode array detection has been reported, for on-line extraction and enrichment of booster biocides (irgarol-1051 and diuron) included in Water Frame Directive 2013/39/UE (WFD). The analytical performance has been successfully demonstrated. Furthermore, in the present work, the environmental friendliness of the procedure has been quantified by means of the implementation of the carbon footprint calculation of the analytical procedure and the comparison with other methodologies previously reported. Under the optimum conditions, the method presents good linearity over the range assayed, 0.05-1…

BiocideEnvironmental Engineeringchemistry.chemical_element010501 environmental sciencesSolid-phase microextractionOnline Systems01 natural sciencesBiofoulingLimit of DetectionEnvironmental ChemistryWaste Management and DisposalSolid Phase MicroextractionCarbon Footprint0105 earth and related environmental sciencesDetection limitChromatographyFoulingHerbicidesTriazinesChemistry010401 analytical chemistryExtraction (chemistry)Pollution0104 chemical sciencesDiuronCarbon footprintCarbonWater Pollutants ChemicalChromatography LiquidDisinfectantsEnvironmental MonitoringScience of The Total Environment
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A miniaturized method for estimating di(2-ethylhexyl) phthalate in bivalves as bioindicators.

2012

This work has developed a miniaturized method based on matrix solid phase dispersion (MSPD), using C18 as dispersant and acetonitrile-water as eluting solvent, for the analysis of di(2-ethylhexyl) phthalate (DEHP) in biota samples by capillary liquid chromatography coupled to in-tube solid phase microextraction and diode array detection. Recovery studies showed that the combination of C18-Florisil® was optimal using low amount of samples (0.1 g) and with low volumes of acetonitrile-water (2.6 mL 1:3.25, v/v). The sample is processed in less than 30 min, no evaporation step is required. The proposed method was applied to the analysis of DEHP in mussels and of the coastal waters in which they…

BioconcentrationSolid-phase microextractionBiochemistryDispersantAnalytical ChemistryMatrix (chemical analysis)chemistry.chemical_compoundLimit of DetectionDiethylhexyl PhthalateMediterranean SeaAnimalsSolid Phase MicroextractionDetection limitChromatographyMiniaturizationOrganic ChemistryPhthalateGeneral MedicineBivalviaSolventchemistryEnvironmental chemistryEnvironmental PollutantsDispersion (chemistry)Chromatography LiquidEnvironmental MonitoringJournal of chromatography. A
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Exponential growth phase cells of the osmotolerant yeast Debaryomyces hansenii are extremely resistant to dehydration stress

2001

Abstract The osmotolerant yeast Debaryomyces hansenii is highly resistant to dehydration stress and this tolerance was more pronounced for cells taken from the exponential growth phase than from the stationary phase. Growth of D. hansenii in medium containing 10% (w v −1 ) NaCl, resulted in an additional increase in cellular resistance to dehydration, which was most marked for stationary phase cells. It is expected that further investigations of the mechanisms behind this exceptional dehydrational tolerance will reveal new approaches for improvement of the quality of dry yeast.

BioengineeringBiologymedicine.diseasebiology.organism_classificationApplied Microbiology and BiotechnologyBiochemistryYeastStress (mechanics)Exponential growthBiochemistryStationary phasePhase (matter)Debaryomyces hanseniimedicineDehydrationProcess Biochemistry
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Giant liposomes as model membranes for immunological studies: spontaneous insertion of purified K1-antigen (poly-alpha-2,8-NeuAc) of Escherichia coli.

1990

A flow chamber has been constructed to use giant liposomes (diameter 5-50 microns) as model membranes for immunological studies and other experiments involving the interaction with water-soluble compounds. As an example of immunological importance, the insertion of purified K-antigen from Escherichia coli K1 has been studied. Despite its large hydrophilic part (poly-alpha-2,8-NeuAc), which is capped at its potential reducing end with phosphatidic acid acting as a lipid anchor group, this water-soluble material is readily incorporated into liposomal membranes of dimyristoylphosphatidylcholine (DMPC). The incorporation has been proven by immunofluorescence using a FITC-labeled monoclonal anti…

BiophysicsFluorescent Antibody TechniqueNeuraminidaseBiologymedicine.disease_causeBiochemistryModels BiologicalResidue (chemistry)chemistry.chemical_compoundMembrane LipidsmedicineEscherichia coliMicroscopy Phase-ContrastEscherichia coliHEPESchemistry.chemical_classificationLiposomeAntigens BacterialAntibodies MonoclonalWaterCell BiologyPhosphatidic acidbiology.organism_classificationEnterobacteriaceaeEnzymeMembranechemistryBiochemistrySolubilityImmunoglobulin GAntigens SurfaceLiposomesDimyristoylphosphatidylcholineBiochimica et biophysica acta
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An enzyme caught in action: Direct imaging of hydrolytic function and domain formation of phospholipase A2 in phosphatidylcholine monolayers

1989

AbstractPhospholipase A2, a ubiquitous lipolytic enzyme that actively catalyses hydrolysis of phospholipids, has been studied as a model for enzyme-substrate reactions, as a membrane structural probe, and as a model for lipid-protein interactions. Its mechanism of action remains largely controversial. We report here for the first time direct microscopic observation of the lipolytic action of fluorescently marked phospholipase A2 (Naja naja naja) against phosphatidylcholine monolayers in the lipid phase transition region. Under these conditions, phospholipase A2 is shown to target and hydrolyse solid-phase lipid domains of L-α-dipalmitoylphosphatidylcholine. In addition, after a critical ext…

BiophysicsPhospholipid02 engineering and technologyBiochemistry03 medical and health scienceschemistry.chemical_compoundPhospholipase A2Structural BiologyPhospholipase A2PhosphatidylcholineEnzymatic hydrolysisGeneticsmedicineLipid bilayer phase behaviorMolecular BiologyDomain030304 developmental biologyFluorescence microscopy0303 health sciencesPhospholipase APhospholipase BbiologyChemistryMonolayerCell Biology021001 nanoscience & nanotechnologyPhospholipidBiochemistryMechanism of actionEnzymatic hydrolysisbiology.proteinmedicine.symptom0210 nano-technologyFEBS Letters
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TORC1 controls G1–S cell cycle transition in yeast via Mpk1 and the greatwall kinase pathway

2015

The target of rapamycin complex 1 (TORC1) pathway couples nutrient, energy and hormonal signals with eukaryotic cell growth and division. In yeast, TORC1 coordinates growth with G1–S cell cycle progression, also coined as START, by favouring the expression of G1 cyclins that activate cyclin-dependent protein kinases (CDKs) and by destabilizing the CDK inhibitor Sic1. Following TORC1 downregulation by rapamycin treatment or nutrient limitation, clearance of G1 cyclins and C-terminal phosphorylation of Sic1 by unknown protein kinases are both required for Sic1 to escape ubiquitin-dependent proteolysis prompted by its flagging via the SCFCdc4 (Skp1/Cul1/F-box protein) ubiquitin ligase complex.…

BioquímicaBiologiaSaccharomyces cerevisiae ProteinsImmunoblottingGeneral Physics and AstronomyCell Cycle ProteinsSaccharomyces cerevisiaeMechanistic Target of Rapamycin Complex 1ArticleGeneral Biochemistry Genetics and Molecular Biology03 medical and health sciences0302 clinical medicineCyclin-dependent kinaseCyclinsImmunoprecipitationProtein Phosphatase 2Cell division control protein 4PhosphorylationProtein kinase ACyclin-Dependent Kinase Inhibitor Proteins030304 developmental biology0303 health sciencesMultidisciplinarybiologyTOR Serine-Threonine KinasesUbiquitin-Protein Ligase ComplexesGeneral ChemistryBlotting NorthernFlow CytometryG1 Phase Cell Cycle CheckpointsSic1Cyclin-Dependent KinasesCell biologyBiochemistryMultiprotein Complexes030220 oncology & carcinogenesisUbiquitin ligase complexbiology.proteinIntercellular Signaling Peptides and ProteinsPhosphorylationTOR Serine-Threonine KinasesMitogen-Activated Protein KinasesPeptidesProtein KinasesCyclin-dependent kinase inhibitor proteinNature Communications
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A Poly-L-Lactide scaffold with continuous gradient pore size for osteochondral regeneration validated in a microphysiological tissue system bioreactor

2016

A microphysiological tissue system (MPS) bioreactor has been developed to replicate in vitro the in vivo OC physiological conditions. The MPS allows separate control of the chondral and osseous environment while permitting communication between chondrocytes and osteoblasts across the OC junction, similar to the conditions of OC tissue in vivo. We have used here our MPS system to validate the TIPS -generated pore-gradient PLLA scaffold.

Bioreactor Phase Separation Gradient
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Isolation and identification of intermediates from biodegradation of low chlorinated biphenyls (Delor-103).

2004

Abstract Microorganism Pseudomonas species P2 metabolizes polychlorinated biphenyls (PCBs) and biphenyl, producing the whole spectrum of intermediates, among them coloured intermediates, which are suitable for the monitoring of PCBs degradation by optical sensors. Knowledge of chemical structures and conditions of development of colour metabolites is necessary for application of optical analytical methods. The main goal of this work was the isolation and identification of intermediates from the biodegradation of the mixture of low chlorinated biphenyls (Delor-103), which is based on the solid phase extraction (SPE) of the whole mixture using LiChrolut EN cartridges, then silylation of the e…

BiphenylPersistent organic pollutantEnvironmental EngineeringChromatographySilylationHealth Toxicology and MutagenesisMetabolitePublic Health Environmental and Occupational HealthGeneral MedicineGeneral ChemistryBiodegradationMetabolic intermediateMass spectrometryPollutionPolychlorinated BiphenylsGas Chromatography-Mass Spectrometrychemistry.chemical_compoundBiodegradation EnvironmentalchemistryPseudomonasEnvironmental ChemistryOrganic chemistryEnvironmental PollutantsSolid phase extractionEnvironmental MonitoringChemosphere
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