Search results for "1-Butanol"

showing 10 items of 10 documents

An acute exposure to ozone impairs human olfactory functioning

2018

Ozone is a ubiquitous and irritant gas. We questioned whether an acute exposure to 0.2 ppm ozone impaired olfactory functioning.Healthy, normosmic subjects were exposed according to a parallel group design either to 0.2 ppm ozone (n = 15) or to sham (n = 13) in an exposure chamber for two hours. Possible irritating effects were assessed by questionnaire (range 0-5). The detection threshold of n-butanol was measured with the Sniffin' Sticks test before and after exposure. Olfactory thresholds were logarithmized and a two-way analysis of variance (ANOVA) with repeated measurements was carried out to test the effects of exposure (ozone vs. sham) and time (before vs. after exposure). Additional…

OzoneMucous membrane of nose010501 environmental sciences01 natural sciencesBiochemistrySham groupOlfaction Disorders03 medical and health scienceschemistry.chemical_compound1-ButanolOzone0302 clinical medicineOlfactory thresholdHumansMedicine0105 earth and related environmental sciencesGeneral Environmental Sciencebusiness.industryDetection thresholdInterleukinsSmellchemistrySensory ThresholdsAnesthesiaAcute exposureExposure chamberAnalysis of variancebusiness030217 neurology & neurosurgeryEnvironmental Research
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Ethanol inhibits astroglial cell proliferation by disruption of phospholipase D-mediated signaling.

2002

The activation of phospholipase D (PLD) is a common response to mitogenic stimuli in various cell types. As PLD-mediated signaling is known to be disrupted in the presence of ethanol, we tested whether PLD is involved in the ethanol-induced inhibition of cell proliferation in rat cortical primary astrocytes. Readdition of fetal calf serum (FCS) to serum-deprived astroglial cultures caused a rapid, threefold increase of PLD activity and a strong mitogenic response; both effects were dependent on tyrosine kinases but not on protein kinase C. Ethanol (0.1-2%) suppressed the FCS-induced, PLD-mediated formation of phosphatidic acid (PA) as well as astroglial cell proliferation in a concentration…

medicine.medical_specialtyPlatelet-derived growth factorIndolestert-Butyl Alcoholmedicine.medical_treatmentButanolsBecaplerminPhosphatidic AcidsNerve Tissue ProteinsBiologyBiochemistryCulture Media Serum-FreeCellular and Molecular Neurosciencechemistry.chemical_compound1-ButanolInternal medicineLysophosphatidic acidmedicinePhospholipase DAnimalsPhosphorylationProtein kinase APlatelet-Derived Growth FactorEndothelin-1EthanolPhospholipase DCell growthGrowth factorPhosphatidic acidDNAProto-Oncogene Proteins c-sisProtein-Tyrosine KinasesGenisteinGrowth InhibitorsCell biologyRatsEndocrinologychemistryFetal Alcohol Spectrum DisordersAstrocyteslipids (amino acids peptides and proteins)Signal transductionVanadatesProtein Processing Post-TranslationalCell DivisionSignal TransductionJournal of neurochemistry
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Fed-batch simultaneous saccharification and fermentation including in-situ recovery for enhanced butanol production from rice straw

2021

Abstract This paper describes a study of fed-batch SSFR (simultaneous saccharification, fermentation and recovery) for butanol production from alkaline-pretreated rice straw (RS) in a 2-L stirred tank reactor. The initial solid (9.2% w/v) and enzyme (19.9 FPU g-dw-1) loadings were previously optimized by 50-mL batch SSF assays. Maximum butanol concentration of 24.80 g L-1 was obtained after three biomass feedings that doubled the RS load (18.4% w/v). Butanol productivity (0.344 g L-1h−1) also increased two-fold in comparison with batch SSF without recovery (0.170 g L-1h−1). Although fed-batch SSFR was able to operate with a single initial enzyme dosage, an extra dosage of nutrients was requ…

In situEnvironmental EngineeringRenewable Energy Sustainability and the EnvironmentButanolsHydrolysisButanolBiomassLignocellulosic biomassContinuous stirred-tank reactorOryzaBioengineeringGeneral MedicineRice strawPulp and paper industrychemistry.chemical_compoundHydrolysis1-ButanolchemistryFermentationFermentationBiomassWaste Management and DisposalBioresource Technology
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Vapor−Liquid Equilibrium of Binary Mixtures of Tetrachloroethylene with 1-Pentanol, 3-Methyl-1-butanol, and 2-Methyl-1-butanol

1999

Isobaric vapor−liquid equilibria have been obtained for the systems tetrachloroethylene + 1-pentanol, tetrachloroethylene + 3-methyl-1-butanol, and tetrachloroethylene + 2-methyl-1-butanol, using a...

chemistry.chemical_compoundchemistry1-PentanolGeneral Chemical EngineeringTetrachloroethyleneButanolVapor–liquid equilibriumIsobaric processOrganic chemistryGeneral Chemistry2-Methyl-1-butanolJournal of Chemical & Engineering Data
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Evidence for the Existence of an Effective Interfacial Tension between Miscible Fluids: Isobutyric Acid-Water and 1-Butanol-Water in a Spinning-Drop …

2006

We report definitive evidence for an effective interfacial tension between two types of miscible fluids using spinning-drop tensiometry (SDT). Isobutyric acid (IBA) and water have an upper critical solution temperature (UCST) of 26.3 degrees C. We created a drop of the IBA-rich phase in the water-rich phase below the UCST and then increased the temperature above it. Long after the fluids have reached thermal equilibrium, the drop persists. By plotting the inverse of the drop radius cubed (r(-)(3)) vs the rotation rate squared (omega(2)), we confirmed that an interfacial tension exists and estimated its value. The transition between the miscible fluids remained sharp instead of becoming more…

SURFACE-TENSIONThermodynamicsGRADIENTSInstabilityIsobutyric acidSurface tensionchemistry.chemical_compoundNONEQUILIBRIUM FLUCTUATIONS1-ButanolIsobutyratesGRAVITYUpper critical solution temperatureElectrochemistrySurface TensionGeneral Materials ScienceSpectroscopyThermal equilibriumAqueous solutionDrop (liquid)ButanolDIFFUSION-COEFFICIENTWaterSurfaces and InterfacesCondensed Matter PhysicsKORTEWEG STRESSESLIGHT-SCATTERINGCAPILLARY TUBESButyrateschemistrySolubilityLIQUID-MIXTURESSYSTEM
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Sphingosine-1-phosphate increases human alveolar epithelial IL-8 secretion, proliferation and neutrophil chemotaxis

2009

Sphingosine-1-phosphate (S1P) has been presented recently as a pro-inflammatory agent in the airway epithelium since S1P levels are increased in bronchoalveolar lavage fluid of human asthmatics. However, the effects of S1P over the alveolar epithelium and neutrophil interactions are poorly understood. Here, we show that S1P increased interleukin 8 (IL-8) gene expression and protein secretion and proliferation in alveolar epithelial cells A549 at physiological concentrations (1 microM). At the same time, S1P increased intracellular Ca2+ concentration (potency 17.91 microM, measured by epifluorescence microscopy), phospholipase D (PLD) activity (measured by chemiluminiscence method) and extra…

LuminescenceNeutrophilsIntercellular Adhesion Molecule-1Gene ExpressionBiologyPertussis toxinReceptors G-Protein-Coupled1-ButanolSphingosineCell Line TumorPhospholipase DHumansInterleukin 8PhosphorylationExtracellular Signal-Regulated MAP KinasesEgtazic AcidCell ProliferationFlavonoidsPharmacologyA549 cellCell adhesion moleculeInterleukin-8Epithelial CellsChemotaxisIntercellular Adhesion Molecule-1Intercellular adhesion moleculeMolecular biologyPulmonary AlveoliChemotaxis LeukocytePertussis ToxinBiochemistryRespiratory epitheliumCalciumlipids (amino acids peptides and proteins)LysophospholipidsEuropean Journal of Pharmacology
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Organic solvents vapor pressure and relative humidity effects on the phase transition rate of α and β forms of tegafur.

2011

The objective of this work was to investigate the relative humidity (RH) and solvent vapor pressure effects on the phase transition dynamics between tegafur polymorphic forms that do not form hydrates and solvates. The commercially available α and β modifications of 5-fluoro-1-(tetrahydro-2-furyl)-uracil, known as the antitumor agent tegafur, were used as model materials for this study. While investigating the phase transitions of α and β tegafur under various partial pressures of methanol, n-propanol, n-butanol, and water vapor, it was determined that the phase transition rate increased in the presence of solvent vapors, even though no solvates were formed. By increasing the relative air h…

Phase transitionAntimetabolites AntineoplasticChromatographyCapillary condensationVapor PressureChemistryVapor pressureMethanolAnalytical chemistryPharmaceutical ScienceWaterHumidityGeneral MedicinePartial pressure1-PropanolPhase TransitionReaction rate constant1-ButanolPhase (matter)Relative humidityCrystallizationWater vaporTegafurPharmaceutical development and technology
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Analysis of pharmaceutical preparations containing antihistamine drugs by micellar liquid chromatography

2005

Rapid chromatographic procedures for analytical quality control of pharmaceutical preparations containing antihistamine drugs, alone or together with other kind of compounds are proposed. The method uses C18 stationary phases and micellar mobile phases of cetyltrimethylammonium bromide (CTAB) with either 1-propanol or 1-butanol as organic modifier. The proposed procedures allow the determination of the antihistamines: brompheniramine, chlorcyclizine, chlorpheniramine, diphenhydramine, doxylamine, flunarizine, hydroxyzine, promethazine, terfenadine, tripelennamine and triprolidine, in addition to caffeine, dextromethorphan, guaifenesin, paracetamol and pyridoxine in different pharmaceutical …

GuaifenesinChlorpheniramineTime FactorsClinical BiochemistryPharmaceutical Science1-PropanolPiperazinesDosage formAnalytical Chemistry1-ButanolChlorcyclizineDrug DiscoverymedicineTriprolidineMicellesSpectroscopyDosage FormsChromatographyCetrimoniumChemistryReproducibility of ResultsBrompheniramineBrompheniraminePromethazinePharmaceutical PreparationsDoxylamineMicellar liquid chromatographyCetrimonium CompoundsHistamine H1 AntagonistsChromatography Liquidmedicine.drugJournal of Pharmaceutical and Biomedical Analysis
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CCDC 615462: Experimental Crystal Structure Determination

2007

Related Article: H.Sopo, A.Vaisanen, R.Sillanpaa|2007|Polyhedron|26|184|doi:10.1016/j.poly.2006.08.006

Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D CoordinatesDioxo-bis(NN-bis(2-hydroxy-35-dimethylbenzyl)-4-amino-1-butanol)-uranium acetonitrile solvate
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CCDC 615461: Experimental Crystal Structure Determination

2007

Related Article: H.Sopo, A.Vaisanen, R.Sillanpaa|2007|Polyhedron|26|184|doi:10.1016/j.poly.2006.08.006

Space GroupCrystallographyCrystal SystemCrystal StructureDioxo-bis(NN-bis(2-hydroxy-35-dimethylbenzyl)-4-amino-1-butanol)-uraniumCell ParametersExperimental 3D Coordinates
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