Search results for "gas chromatography."

showing 10 items of 725 documents

Preliminary characterization of wild lactic acid bacteria and their abilities to produce flavour compounds in ripened model cheese system.

2007

Aims:  The aim of this work was to preliminary characterize wild lactic acid bacteria (LAB), previously isolated during artisanal Pecorino Siciliano (PS) cheese-making for technological and flavour formation abilities in a model cheese system. Methods and Results:  Twelve LAB were studied for the ability to grow at 10 and 45°C, to coagulate and acidify both reconstituted skim milk and ewe's milk. Moreover, the capacity of the strains to generate aroma compounds was evaluated in a model cheese system at 30- and 60-day ripening. Flavour compounds were screened by sensory analysis and throughout gas chromatography (GC)–mass spectrometry (MS). Most of the strains were able to grow both at 10 an…

Lactobacillus caseifood.ingredientFood HandlingFlavourlactic acid bacteria ; model cheese system ; sensory analysis ; volatile compoundsApplied Microbiology and BiotechnologySensory analysisModels Biologicalaroma microrganism characterizationGas Chromatography-Mass Spectrometrysensory analysischemistry.chemical_compoundfoodCheeseSkimmed milkFood microbiologyAnimalsmodel cheese systemFood sciencevolatile compoundsAromaFlavorlactic acid bacteria model cheese system sensory analysis volatile compoundsAldehydesSheepbiologyChemistryLacticaseibacillus rhamnosusfood and beveragesGeneral MedicineSettore AGR/15 - Scienze E Tecnologie Alimentaribiology.organism_classificationFatty Acids VolatileLactic acidlactic acid bacteriaFlavoring AgentsLactobacillusLacticaseibacillus caseiMilkAlcoholsTasteFood MicrobiologyFemaleLeuconostocBiotechnologyLactobacillus plantarum
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Removal of Cypermethrin from Water by Using Fucus Spiralis Marine Alga

2019

Alpha-cypermethrin is a synthetic pyrethroid that was extensively used for insect control, since the early 1980s. However, it is known that its presence in the environment has toxic effects on humans and aquatic life forms. For this reason, it is commendable for it to be removed completely from the contaminated environment. In this study, we evaluated the adsorption capacity of a marine alga for the removal of cypermethrin from water. The adsorption experiments were performed based on the batch equilibrium technique. The samples containing the pesticide were analyzed using gas chromatography with an electron capture detector, after liquid-liquid extraction in hexane. The results obtained fr…

LangmuirHealth Toxicology and Mutagenesislcsh:Medicine02 engineering and technologyalpha-cypermethrin010501 environmental sciences01 natural sciencesArticleWater PurificationCypermethrinchemistry.chemical_compoundsymbols.namesakeAdsorptionPyrethrinsWater Pollution ChemicalFreundlich equationdetoxificationEnvironmental Restoration and Remediation0105 earth and related environmental sciencesChromatographybiologyChemistrylcsh:RPublic Health Environmental and Occupational HealthLangmuir adsorption model021001 nanoscience & nanotechnologybiology.organism_classificationElectron capture detectorBiodegradation EnvironmentalkineticsFucus spiralisFucussymbolsisothermsAdsorptionbrown marine algaeGas chromatography0210 nano-technologyWater Pollutants ChemicalInternational Journal of Environmental Research and Public Health
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Fast preparation and gas-chromatographic separation of lanthanide and actinide hexafluoroacetylacetonates

1986

A fast method for the separation of lanthanide elements by gas chromatography of their hexafluoroacetylacetonates is described. Individual lanthanides can be isolated within a few minutes, and the whole group can be separated in less than 10 min. The hexafluoroacetylacetonates are applied in form of mixed complexes with tri-n-butyl phosphate or trioctylphosphine oxide prepared by fast extraction into quasi-solid solvents. The applicability of this method for the separation of trivalent actinide elements is shown, including the fast preparation of thin counting samples.

LanthanideClinical BiochemistryExtraction (chemistry)TrioctylphosphineAnalytical chemistryGeneral MedicineActinideAnalytical Chemistrychemistry.chemical_compoundChromatographic separationchemistryGeneral Materials ScienceGas chromatographyTrioctylphosphine oxideFresenius' Zeitschrift für analytische Chemie
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Comparative GC-MS Analysis of Bay Leaf (Laurus nobilisL.) Essential Oils in Commercial Samples

2015

Chemical composition of Laurus nobilis essential oils traded as spice and medicinal items was analyzed by gas chromatography-mass spectrometry. Sixty-four compounds accounting between 91–99% of the total oil was identified. Qualitative and quantitative differences were found among essential oils obtained from bay leaves used both for cooking and medicinal purposes. The oxygenated compounds were the principal fraction in all analyzed oils and consisted in oxygenated monoterpenes (73.13%), in medicinal essential oil and oxygenated monoterpenes (37.60 and 29.82%), oxygenated sesquiterpenes (15.98 and 22.99%), and phenylpropanoids (24.78 and 26.33%), respectively, in commercial food items. A hi…

LauraceaeBiologybiology.organism_classificationTerpenoidfood.foodlaw.inventionEugenolchemistry.chemical_compoundLaurus nobilisfoodchemistryMethyl eugenollawBotanyFood scienceGas chromatography–mass spectrometryChemical compositionEssential oilFood ScienceInternational Journal of Food Properties
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Chemical Composition of Two Different Lavender Essential Oils and Their Effect on Facial Skin Microbiota

2019

Lavender oil is one of the most valuable aromatherapy oils, its anti-bacterial and anti-fungal activities can be explained by main components such as linalool, linalyl acetate, lavandulol, geraniol, or eucalyptol. The aim of the study was to assess the anti-microbial effects of two different lavender oils on a mixed microbiota from facial skin. The commercial lavender oil and essential lavender oil from the Crimean Peninsula, whose chemical composition and activity are yet to be published, were used. Both oils were analysed by gas chromatography coupled to mass spectrometry. The composition and properties of studied oils were significantly different. The commercial ETJA lavender oil contain…

LavenderAcyclic Monoterpenesgas chromatography with mass spectrometryPharmaceutical ScienceLavender oilMicrobial Sensitivity Tests02 engineering and technologyLinalyl acetateGram-Positive Bacteria01 natural sciencesArticleGas Chromatography-Mass SpectrometryAnalytical Chemistrylcsh:QD241-441chemistry.chemical_compoundlcsh:Organic chemistryLinaloolGram-Negative BacteriaDrug DiscoveryOils Volatilelavender essential oilHumansPlant OilsFood sciencePhysical and Theoretical ChemistrySkinChemistryOrganic Chemistry021001 nanoscience & nanotechnologyAnti-Bacterial Agents0104 chemical sciences010404 medicinal & biomolecular chemistryLavandulaEucalyptolChemistry (miscellaneous)FaceMonoterpenesMolecular Medicine0210 nano-technologyLavandulolGeraniolfacial skin microbiotaAromatherapyMolecules
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Composition and variability of the essential oil of the flowers of Lavandula stoechas from various geographical sources

2015

Samples of flowers of wild Lavandula stoechas L. spp. stoechas populations were collected in three areas of Sicily (Italy) and were characterized in agronomic and chemical terms. Essential oil (EO) was extracted by hydrodistillation and analyzed by GC-FID and GC-MS. GC-FID and GC-MS analyses permitted identification of 89 compounds from the EO. The samples were separated into 3 groups using PCA (Principal Component Analysis) statistical method, with reference to the chemical composition of the EO. All three Sicilian populations of lavender were identified as the fenchone chemotype with percentage content ranged between 52.8–71.1%. The population of Partinico showed the highest dry weight o…

LavenderLavandulaPopulationWild populationFlowersPlant ScienceLavandula stoechas L. spp. StoechasChemotypeGas Chromatography-Mass SpectrometryEssential oillaw.inventionchemistry.chemical_compoundChemotype Essential oil Lavandula stoechas L. spp. Stoechas PCA Wild populationDry weightlawDrug DiscoveryOils VolatilePlant OilseducationSicilyEssential oilPharmacologyeducation.field_of_studyPCAbiologyChemotypeGeneral Medicinebiology.organism_classificationFenchoneSettore AGR/02 - Agronomia E Coltivazioni ErbaceeHorticultureLavandulaItalyComplementary and alternative medicinechemistryLavandula stoechas L. spp. Stoechas Wild population Essential oil Chemotype PCA.Lavandula stoechas
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Essential oil of Cyphostemma juttae (Vitaceae): Chemical composition and antitumor mechanism in triple negative breast cancer cells

2019

The genus Cyphostemma (Planch.) Alston (Vitaceae) includes about 150 species distrib- uted in eastern and southern Africa and Madagascar. Some species are used in traditional medicine and their biological activities, including antiproliferative effects against cancer cell lines, have been demonstrated. To date no investigations on Cyphostemma essential oils have been carried out. Essential oils, which play important roles in plant defenses have been demonstrated to be active in the treatment of several human diseases and to enhance bioavability of other drugs. The aim of this paper was to identify the chemical composition of the essential oil of the leaves of Cyphostemma juttae (Dinter &amp…

LeavesChemical CompositionTriple Negative Breast NeoplasmsPlant ScienceBiochemistryNF-κBAntioxidantsMass Spectrometrylaw.inventionAnalytical ChemistryTerpenechemistry.chemical_compound0302 clinical medicineSpectrum Analysis Techniquespro-oxidantlawBreast TumorsPlant defense against herbivoryMedicine and Health Sciencesantitumor0303 health sciencesMultidisciplinarybiologyTraditional medicineOrganic CompoundsPlant AnatomyQChromatographic TechniquesCell CycleRNF-kappa BLipidsChemistryOncologyVitaceaeCell Processes030220 oncology & carcinogenesisCyphostemmaPhysical SciencesMedicinecytotoxic effectterpenoidResearch ArticleCell SurvivalScienceVitaceaeResearch and Analysis Methodsessential oilGas Chromatography-Mass SpectrometryCell Growthphytol03 medical and health sciencesPhytolCyphostemma juttaeCell Line TumorBreast CancerOils VolatileHumansEssential oil030304 developmental biologyCell ProliferationCell growthTerpenesOrganic ChemistryChemical CompoundsBiology and Life SciencesCancers and NeoplasmsCell Biologybiology.organism_classificationAntineoplastic Agents PhytogenicPlant LeaveschemistrySettore BIO/03 - Botanica Ambientale E ApplicataSettore BIO/14 - FarmacologiaReactive Oxygen SpeciesOilsPLoS ONE
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Analysis of the Essential Oil of the So-called“Mentha mirennae”Bruno by GC and GC/MS

1992

ABSTRACT The essential oil of “Mentha mirennae” Bruno was analyzed by a combination of GC, GC/MS and 13C-NMR. It was found to contain more than 50 components of which about 40 (96%) were identified. The major compounds were linalool (70%), linalyl acetate (9.8%) and limonene (1.5%). From a comparison with the main constituents found in different Mentha oils, we presume that “M. mirennae” must be the hybrid M. citrata Ehrl. However, according to botanical and chemical data the possibility that “M. mirennae” is, in fact, M. spicata L. cannot be excluded.

LimoneneMentha spicataChromatographyChemical dataGeneral ChemistryLinalyl acetatefood.foodlaw.inventionchemistry.chemical_compoundfoodchemistryLinaloollawBotanyGas chromatography–mass spectrometryEssential oilJournal of Essential Oil Research
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Chemical composition and biological activities of Artemisia judaica essential oil from southern desert of Jordan

2016

Abstract Ethnopharmacologic relevance Artemisia judaica L. (Arabic name: Beithran ), is a medicinal and aromatic plant growing in the valley bottoms of desert areas, particularly in the southern desert of Jordan nearest to the Jordan-Saudi Arabia borders and in Wadi Araba in the Southern Badia. In Jordan, A. judaica is widely used in traditional medicine being recommended by aboriginal Bedouins in the North Badia region of Jordan as calmative. Furthermore, it is used for the treatment of stomach ache, heart diseases, sexual weakness, diabetes, gastro-intestinal disorders and external wounding. Additionally, other folk medicines of the Arabic region commonly use this aromatic plant for the t…

Lipopolysaccharides0301 basic medicineAntifungal AgentsDPPHAnti-Inflammatory AgentsGerm tube01 natural scienceslaw.inventionMicechemistry.chemical_compoundCamphorlawCandida albicansDrug DiscoveryCandida albicansbiologyTraditional medicineHep G2 CellsCorpus albicansDesert ClimatePiperitoneCell SurvivalMicrobial Sensitivity TestsNitric OxideGas Chromatography-Mass SpectrometryArtemisia judaica03 medical and health sciencesOils VolatileAnimalsHumansPlant OilsEssential oilPharmacologyJordanPlants MedicinalDose-Response Relationship DrugPlant ExtractsMacrophagesMacrophage ActivationPlant Components Aerialbiology.organism_classification0104 chemical sciences010404 medicinal & biomolecular chemistryRAW 264.7 Cells030104 developmental biologyArtemisiachemistryBiofilmsCryptococcus neoformansPhytotherapyJournal of Ethnopharmacology
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Wine analysis: Study and comparison of techniques developed for the study of volatile constituents

1986

A number of headspace techniques have been compared, using a standard solution containing 12 compounds and a wine sample, viz.: (1) purge and cold trap injection; (2) dynamic headspace combined with liquidliquid extraction; (3) static headspace with and without preconcentration; (4) direct liquid injection. The sensitivity, reproducibility and speed of analysis were determined. Considering the results obtained and dependent on the purpose of the experiments and the number of samples to be examined the appropriate technique can be selected. ?? 1980 Friedr. Vieweg & Sohn Verlagsgesellschaft mbH.

Liquid injection[SDV]Life Sciences [q-bio]Clinical BiochemistryAnalytical chemistryStandard solution01 natural sciencesBiochemistryCapillary gas chromatographyAnalytical ChemistryHeadspace analysis0404 agricultural biotechnologyMISE AU POINTAnalysis studyComputingMilieux_MISCELLANEOUSNutritionCold trapWineReproducibilityChromatographyChemistry010401 analytical chemistryOrganic ChemistryExtraction (chemistry)04 agricultural and veterinary sciences040401 food sciencePurge and trap injection0104 chemical sciences[SDV] Life Sciences [q-bio]Gas chromatographyWine volatiles
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