Search results for "FLAVOR"

showing 10 items of 360 documents

Towards the improvement of food flavour analysis: Modelling chemical and sensory data and expert knowledge integration

2019

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionmixture of odorantsfood flavorexpert knowledgefuzzy logicpredictive modelling[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUSolfaction
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Flavour retention and release from protein solutions

2006

International audience; This paper briefly presents the main results obtained up to now on protein–flavour binding and release in relation with flavour perception. Among the food proteins, β-lactoglobulin is the most extensively studied for its binding properties, which involve both hydrophobic and hydrogen binding. Recent developments using molecular modelling and Quantitative Structure–Activity Relationship confirmed the existence of two different binding sites for flavour compounds on β-lactoglobulin. During the aroma release process in the mouth, not only free aroma compounds are released but also those reversibly bound by the protein, pointing out the fact that flavour perception is on…

[SDV.BIO]Life Sciences [q-bio]/BiotechnologyPROTEINSFlavourBioengineeringLactoglobulins01 natural sciencesApplied Microbiology and Biotechnology0404 agricultural biotechnologyComputational chemistryCyclohexenesHumansBinding siteAromaStrong bindingFlavorBinding SitesbiologyFLAVOUR RELEASETerpenesChemistry010401 analytical chemistryBinding propertiesfood and beveragesSerum Albumin Bovine04 agricultural and veterinary sciencesHydrogen-Ion ConcentrationMilk Proteinsbiology.organism_classification040401 food science0104 chemical sciences[SDV.BIO] Life Sciences [q-bio]/BiotechnologyFlavoring AgentsBiochemistryBenzaldehydesTasteFLAVOUR BINDINGSoybean ProteinsFood TechnologyLimoneneProtein BindingBiotechnology
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Rules and Mechanisms of Perceptual Interaction of Odor Mixtures : Application to Icewine aroma

2021

Icewine was used as an experimental object, and hundreds of wine- or food-related odor mixtures were designed and investigated for the first time based on the identification and analysis of icewine’ odorants. The aim of the thesis work was to explore the key odor elements that affected the perception of odor mixtures and the general laws behind olfactory perceptual interactions. The thesis manuscript contains seven chapters:The first review of the literature gives a brief introduction to the olfactory system and odor perception. Then, odorants’ mixture perception is highlighted through examples of interactions between odorants at the perceptual level. Research progress in perceptual interac…

[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesOdor qualityAroma compoundsOdor intensityEffet induit par le mélange d'odeursIntensité de l'odeurComposés aromatiquesQualité de l'odeurFlavor perceptionOdor mixture-Induced effectPerception des saveurs
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Using cross-modal interactions to counterbalance salt reduction in solid foods

2011

International audience; We investigated odour-induced saltiness enhancement (OISE) in a solid model cheese with the aim of evaluating the influence of cross-modal interactions (odour-texture-taste) on saltiness perception and assessing the efficacy of using OISE to counterbalance salt reduction. Four model cheeses, varying in texture, were flavoured with three commercial tasteless aromas (comte cheese, sardine and carrot) differently associated with salty and cheesy food products. Twenty-seven consumers evaluated taste intensity, aroma intensity and its congruence with the product flavour, and the overall pleasantness of 12 flavoured and four unflavoured samples. The comparison of the perce…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciences030309 nutrition & dieteticsFlavourDairy industryTEXTUREApplied Microbiology and Biotechnology03 medical and health sciences0404 agricultural biotechnologyFLAVOR PERCEPTIONFood scienceGELSAroma2. Zero hungerRELEASE0303 health sciencesTASTEbiologyCHEESEChemistryINTENSITYSalt reductionSardine04 agricultural and veterinary sciencesbiology.organism_classification040401 food scienceMULTIMODAL SENSORY INTEGRATIONORTHONASALTaste intensitySolid foodFood productsVISCOSITYFood Science
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Review : Compounds involved in the flavor of surface mold-ripened cheeses : Origins and properties

1996

Abstract Cheese flavor is obtained through a series of chemical changes that occur in the curd during the early stages of ripening. Lipid hydrolysis leads to FFA, which serve as substrates for further reactions. Peptides and amino acids, which results from proteolysis, also lead to aroma compounds through enzymic and chemical reactions. This paper is a review of the current knowledge about the compounds that contribute to flavor in mold-ripened cheeses, especially Camembert-type cheese. Discussed are the pathway of formation, the sensory properties (odorous notes and perception thresholds), and the quantities of the main volatile compounds encountered in these types of cheeses.

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesCheese FlavorProteolysisOrganolepticCheese ripeningHydrolysis0404 agricultural biotechnologyGeneticsmedicineOrganic chemistryFood scienceAromaFlavor[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesmedicine.diagnostic_testbiologyChemistry0402 animal and dairy sciencefood and beveragesRipening04 agricultural and veterinary sciencesbiology.organism_classification040401 food science040201 dairy & animal science3. Good healthAnimal Science and ZoologyFood Science
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Neutral volatile compounds in the raw milks from different species

1993

SummaryA comparative study was carried out on the flavour constituents of bovine, ovine, caprine and water buffalo fresh raw milks. The volatiles were isolated from milks by means of vacuum distillation and liquid–liquid extraction. Eighty neutral volatile compounds were identified using high resolution gas chromatography (HRGC) and HRGC-mass spectrometry. About 30 of these components have not been detected previously in milk. The volatiles in milk were similar for the four species, although several quantitative differences might explain the different odours. The volatiles consisted mainly of ethyl esters, especially those derived from butyric and hexanoic acids. Dimethylsulphone alone comp…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesNonanalVacuum distillationPentanalFlavourchemistry.chemical_compoundfluids and secretions0404 agricultural biotechnologyparasitic diseasesFood scienceFlavorAroma2. Zero hungerPhenylacetaldehyde[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesbiologyChemistry0402 animal and dairy sciencefood and beverages04 agricultural and veterinary sciencesGeneral Medicinebiology.organism_classification040401 food science040201 dairy & animal scienceAnimal Science and ZoologyGas chromatographyFood Science
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In-mouth aroma compound release during cheese consumption: Relationship with food bolus formation

2011

International audience; The present study describes the changes in mechanical properties and saliva incorporation for cheese samples with different composition and texture, and their influence on the rate of aroma release. Chewing work per cycle, salivary flow rate and chewing rate varied highly among subjects. Despite the differences in cheese hardness, at the end of mastication, bolus texture was the same for cheeses with the same lipid content. Low-fat cheeses gave harder bolus than high fat ones, despite being chewed longer, with higher work per cycle and more moisture. Salivary flow rate did not vary among cheese samples but, at the end of mastication, the amount of saliva in boluses d…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesSaliva030309 nutrition & dieteticsFLOWApplied Microbiology and BiotechnologyDIFFERENT TEXTURESSALIVA03 medical and health scienceschemistry.chemical_compound0404 agricultural biotechnologyBolus (medicine)MASTICATIONstomatognathic systemFood bolusHigh fatAroma compoundFood scienceMODEL CHEESESMasticationAroma0303 health sciencesPERCEPTIONbiology04 agricultural and veterinary sciencesbiology.organism_classification040401 food scienceCHEWING BEHAVIORstomatognathic diseasesSIZEchemistryMUSCLE-ACTIVITYLipid contentFLAVOR RELEASEFood Science
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Production of a cheese model for sensory evaluation of flavour compounds

1995

Summary - A cheese model used to perform sensory evaluation of flavour compounds extracted from various cheese varieties was made with caseins, low heat milk powder, deodorized milk fat, NaCI and renne!. Its composition and physicochemical properties were close to mature hard cheese, apart from a lower dry matter content and sodium concentration, and a higher lactose concentration. Its preparation was established in arder to avoid drainage for at least 24 h, which should allow the incorporation of not only sorne lipophilic substances such as aromas but also some water-soluble substances such as amino acids and peptides. The rheological behaviour of the cheese model measured by a compression…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesTaste030309 nutrition & dieteticsFlavourOrganolepticSensory analysis03 medical and health scienceschemistry.chemical_compound0404 agricultural biotechnologyDry matterFood scienceLactoseFlavorAromaComputingMilieux_MISCELLANEOUS2. Zero hunger0303 health sciences[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesChromatographybiologyChemistryfood and beverages04 agricultural and veterinary sciences[SDV.IDA] Life Sciences [q-bio]/Food engineeringbiology.organism_classification040401 food science[SDV.AEN] Life Sciences [q-bio]/Food and NutritionFood Science
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Effect of the association of surface flora on the sensory properties of mould-ripened cheese

1997

Summary - In cheese, flavour and taste are, in great part, generated by the starters during the ripening stage. Proteolysis and lipolysis are the first steps of the elaboration of a large number of taste and odour compounds directly invol ved in the sensory quality of cheeses. The pathways used by the microorganisms to produce flavour compounds are still unclear in many cases. It would be useful for the starter-producing industry to have screening criteria permitting diversification of the starter quality, and for the cheese industry to know which strain to associate to obtain cheeses with specifie sensory properties. The production of experimental cheeses with different associations of sur…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesTaste[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesbiologyChemistryFlavourOrganoleptic0402 animal and dairy sciencefood and beveragesGeotrichumSensory system04 agricultural and veterinary sciences[SDV.IDA] Life Sciences [q-bio]/Food engineeringbiology.organism_classification040401 food science040201 dairy & animal science[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition0404 agricultural biotechnologyStarterPenicillium camembertiFood scienceGEOTRICUM CANDIDUMFlavorComputingMilieux_MISCELLANEOUSFood Science
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Inactivation of lactococcal aromatic aminotransferase prevents the formation of flora aroma compounds from aromatic amino acids in semi-hard cheese

1999

The enzymatic conversion of aromatic amino acids to aroma compounds plays a role in the formation of an undesirable floral aroma in Cheddar-like cheeses. In lactococci, the first step of aromatic amino acid degradation is a transamination, catalysed by an aromatic aminotransferase (AraT). We observed previously that in vitro, araT inactivation prevented degradation of aromatic amino acids and decreased degradation of Met and Leu. In this study we evaluated the effect of araT inactivation in Lactococcus lactis on flavour development in St. Paulin-type cheese. The degradation of amino acids was monitored by using radiolabelled amino acids and the volatile compounds formed were analysed by GC-…

[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesTransaminationCheese ripeningApplied Microbiology and Biotechnology03 medical and health scienceschemistry.chemical_compoundAromatic amino acidsFlavorAromaComputingMilieux_MISCELLANEOUS2. Zero hungerchemistry.chemical_classification[SDV.SA] Life Sciences [q-bio]/Agricultural sciences0303 health sciencesMethioninebiology030306 microbiologyLactococcus lactis0402 animal and dairy sciencefood and beverages04 agricultural and veterinary sciencesbiology.organism_classification040201 dairy & animal scienceAmino acidchemistryBiochemistryFood Science
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