Search results for "OLFACTION"

showing 10 items of 251 documents

Relationship between olfactory reactivity and food rejections in infants

2006

N° 261; The role of hedonic reactions to odours on determining rejections of foods in infants is still debated. To answer this question, the first requirement is to have an instrument to test infants’ olfactory reactivity. Indeed, except in neonates, there is a lack of validated method. This study presents results of a new method designed to assess olfactory reactivity of 7- to 8-month-old infants. This method is based on the observation of infants’ reactions while they explored different rattles. The rattles were visually identical but differed in their odours (neutral or with a food odour). Two sequences of 6 rattles were presented to each infant. Eight odorants were used. Four odorants w…

OLFACTORY REACTIVITYRATTLE[CHIM.OTHE] Chemical Sciences/OtherHEDONIC REACTIONS[ CHIM.OTHE ] Chemical Sciences/OtherAutre (Chimie)OLFACTORY REACTIVITY;FOOD REJECTIONS;HEDONIC REACTIONS;RATTLEFOOD REJECTIONSOtherorgane olfactif[CHIM.OTHE]Chemical Sciences/Otherpsychological phenomena and processesolfaction
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Mammary olfactory signalisation in females and odor processing in neonates: ways evolved by rabbits and humans

2009

International audience; Mammalian females have long been known to release olfactory attraction in their offspring. Mammary odor cues control infant state, attention and directional responses, delay distress responses, stimulate breathing and positive oral actions, and finally can boost learning. Here, we survey female-offspring odor communication in two mammalian species - European rabbits and humans - taken as representatives of evolutionary extremes in terms of structure and dynamics of mother-infant relations, and level of neonatal autonomy. Despite these early psychobiological differences, females in both species have evolved mammary structures combining multiple sources of endogenous a…

OffspringPheromones HumanContext (language use)Sensory systemOlfactionBiologyPheromones03 medical and health sciencesBehavioral Neurosciencepheromone0302 clinical medicineSpecies Specificityrabbit (Oryctolagus cuniculus)AnimalsHumans0501 psychology and cognitive sciences050102 behavioral science & comparative psychologyhumanMaternal BehaviorComputingMilieux_MISCELLANEOUSInstinctCommunicationmilkbusiness.industryMechanism (biology)[SCCO.NEUR]Cognitive science/Neuroscience05 social sciencesOlfactory PathwaysBiological EvolutionAnimals SucklingBreast FeedingOdorAnimals NewbornOdorantsmother-infant relations[ SCCO.NEUR ] Cognitive science/NeurosciencePheromonePerceptionRabbitsneonatebusinessNeuroscienceBreast feeding030217 neurology & neurosurgeryolfaction
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Olfactory function in chronic rhinitis subtypes: Any differences?

2018

Introduction: Olfactory dysfunction is a common problem in rhinological disease, but it has been few evaluated among patients with different chronic rhinitis subtypes. The aim of this study was to assess olfactory function in patients with allergic rhinitis (AR), non-allergic rhinitis (NAR) and mixed rhinitis (MR). Materials and methods: A total of 122 patients with AR, NAR, and MR were included in the study. Sniffin' Sticks test was applied to all groups. The study groups were compared in terms of odor scores and an association between olfactory dysfunction and rhinitis grading, according to ARIA (Allergic Rhinitis and its Impact on Asthma) criteria, was also investigated. Results: A signi…

Olfaction disorders Rhinitis Allergic Rhinitis VasomotorAllergicVasomotorOlfaction disorderRhinitiOlfaction disordersRhinitis
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Baculovirus infection affects caterpillar chemoperception

2021

International audience; Baculoviruses are double-stranded DNA entomopathogenic viruses that infect predominantly insects of the order Lepidoptera. Research in the last decade has started to disentangle the mechanisms underlying the insect-virus interaction, particularly focusing on the effects of the baculovirus infection in the host's physiology. Among crucial physiological functions, olfaction has a key role in reproductive tasks, food source detection and enemy avoidance. In this work, we describe that Spodoptera exigua multiple nucleopolyhedrovirus (SeMNPV) induces expression changes in some odorant receptors (ORs)-the centrepiece of insect's olfaction-when infecting larvae from its nat…

OlfactionSpodopteraSpodopteraReceptors OdorantBiochemistryLepidoptera genitalia03 medical and health sciences0302 clinical medicineExiguaAnimalsBehaviour[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyBaculovirusMolecular Biology030304 developmental biologyNeuronsGenetics0303 health sciencesbiologyOdorant receptorsHost (biology)fungibiology.organism_classificationOlfactionNucleopolyhedrovirusesBeet armywormDrosophila melanogasterLarvaInsect ScienceInsect ProteinsNoctuidaeCaterpillarHeterologous expressionDrosophila melanogaster030217 neurology & neurosurgeryInsect Biochemistry and Molecular Biology
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Just noticeable differences in component concentrations modify the odor quality of a blending mixture.

2008

International audience; The odors we perceive are mainly the result of mixtures of odorants that, however, are commonly perceived as single undivided entities; nevertheless, the processes involved remain poorly explored. It has been recently reported that perceptual blending based on configural olfactory processing can cause odorant mixtures to give rise to an emergent odor not present in the components. The present study examined whether specific component proportions are required to elicit an emergent odor. Starting from the composition of a ternary target mixture in which an emergent pineapple odor was perceived, 4 concentration levels of each component were chosen to elicit just noticea…

Olfactory perceptionAdultMalePhysiologymedia_common.quotation_subjectOlfactionComplex Mixtures01 natural sciences03 medical and health sciencesBehavioral Neuroscience0302 clinical medicineDiscrimination PsychologicalPhysiology (medical)HumansQuality (business)media_commonCommunicationCONFIGURAL PROCESSINGTERNARY MIXTURESbusiness.industryComponent (thermodynamics)musculoskeletal neural and ocular physiology010401 analytical chemistryOLFACTORY PERCEPTIONODOR TYPICALITYSensory Systems0104 chemical sciencesSmellOdorDISCRIMINATIONSensory ThresholdsOdorantsFemale[CHIM.OTHE]Chemical Sciences/OtherBiological systembusinessPsychologyJust noticeablepsychological phenomena and processes030217 neurology & neurosurgeryChemical senses
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Ontogenesis of the Extra-Bulbar Olfactory Pathway inXenopus laevis

2013

Although the development, anatomy, and physiology of the vertebrate olfactory system are fairly well understood, there is still no clear definition of the terminal nerve complex acknowledged by all. Among the most debated matters is whether or not the extrabulbar projections found in anamniotes should or should not be considered part of the terminal nerve complex. In this context, we investigated the early development of the extrabulbar pathway in Xenopus larvae from placodal differentiation to postmetamorphic stages. We showed that the extrabulbar fibers become visible around Stage 42 and are conserved throughout metamorphosis. We confirmed previous reports concerning their central project…

Olfactory system0303 health sciencesHistologyContext (language use)OlfactionAnatomyBiologyOlfactory bulb03 medical and health sciences0302 clinical medicinemedicine.anatomical_structureOlfactory nerveAnamniotesmedicineTerminal nerveAnatomyOlfactory epithelium030217 neurology & neurosurgeryEcology Evolution Behavior and Systematics030304 developmental biologyBiotechnologyThe Anatomical Record
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Acute effects of 1,1,1-trichloroethane on human olfactory functioning.

2004

Background Animal experiments indicate that 1,1,1-trichloroethane can cause degeneration of the olfactory epithelium. The effects of 1,1,1-trichloroethane on human odor perception still have not been investigated. The goal of this study was to learn more about acute effects of 1,1,1-trichloroethane. Methods Twelve healthy, nonsmoking students were exposed to 200 and 20 ppm (control) 1,1,1-trichloroethane in an exposure chamber for 4 hours according to a crossover design. Olfactory functioning was investigated with the Sniffin’ Sticks. The test includes the determination of the detection threshold for n-butanol and an odor identification test. Results After 1 hour of exposure to 200 ppm 1,1,…

Olfactory systemAdultMaleOlfactory Nerve040301 veterinary sciencesPhysiologyDegeneration (medical)030226 pharmacology & pharmacySensitivity and SpecificityStatistics Nonparametric0403 veterinary science03 medical and health sciencesOlfactory mucosachemistry.chemical_compoundOlfaction Disorders0302 clinical medicineOlfactory MucosaAdministration InhalationOlfactory thresholdMedicineHumansTrichloroethanesOlfactory memoryProbabilityCross-Over StudiesDose-Response Relationship Drugbusiness.industry04 agricultural and veterinary sciencesCrossover studymedicine.anatomical_structureOtorhinolaryngologychemistry111-TrichloroethaneCase-Control StudiesSensory ThresholdsPerceptionbusinessOlfactory epitheliumAmerican journal of rhinology
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Expression of Odorant Receptor Family, Type 2 OR in the Aquatic Olfactory Cavity of Amphibian Frog Xenopus tropicalis

2012

International audience; Recent genome wide in silico analyses discovered a new family (type 2 or family H) of odorant receptors (ORs) in teleost fish and frogs. However, since there is no evidence of the expression of these novel OR genes in olfactory sensory neurons (OSN), it remains unknown if type 2 ORs (OR2) function as odorant receptors. In this study, we examined expression of OR2 genes in the frog Xenopus tropicalis. The overall gene expression pattern is highly complex and differs depending on the gene and developmental stage. RT-PCR analysis in larvae showed that all of the OR2η genes we identified were expressed in the peripheral olfactory system and some were detected in the brai…

Olfactory systemAmphibian[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionXenopusXenopuslcsh:MedicineIn situ hybridizationOlfactionNoseBiologyReceptors OdorantModel Organismsbiology.animalGene expressionAnimalslcsh:ScienceReceptorBiologyGeneIn Situ HybridizationOlfactory SystemGenomeMultidisciplinarylcsh:RGene Expression Regulation DevelopmentalAnimal ModelsAnatomybiology.organism_classificationSensory SystemsCell biologySmellLarvaSensory Perceptionlcsh:Q[SDV.AEN]Life Sciences [q-bio]/Food and NutritionResearch ArticleNeurosciencePLoS ONE
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Characterization of somatostatin- and cholecystokinin-immunoreactive periglomerular cells in the rat olfactory bulb.

2005

Periglomerular cells (PG) are interneurons of the olfactory bulb (OB) that modulate the first synaptic relay of the olfactory information from the olfactory nerve to the dendrites of the bulbar principal cells. Previous investigations have pointed to the heterogeneity of these interneurons and have demonstrated the presence of two different types of PG. In the rat OB, type 1 PG receive synaptic contacts from the olfactory axons and are γ-aminobutyric acid (GABA)-ergic, whereas type 2 PG do not receive synaptic contacts from the olfactory axons and are GABA immunonegative. In this study, we analyze and characterize neurochemically a group of PG that has not been previously classified either …

Olfactory systemCalbindinsNeuropilOlfactory NervePresynaptic TerminalsSynaptic MembranesNeuropeptideOlfactionBiologyCalbindinSynaptic TransmissionS100 Calcium Binding Protein GOlfactory nerveMicroscopy Electron TransmissionInterneuronsNeural PathwaysNeuropilmedicineAnimalsRats Wistargamma-Aminobutyric AcidGeneral NeuroscienceNeural InhibitionImmunohistochemistryOlfactory BulbOlfactory bulbRatsSmellmedicine.anatomical_structurenervous systemFemaleCalretininCholecystokininSomatostatinNeuroscienceThe Journal of comparative neurology
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Exotic Models May Offer Unique Opportunities to Decipher Specific Scientific Question: The Case ofXenopusOlfactory System

2013

The fact that olfactory systems are highly conserved in all animal species from insects to mammals allow the generalization of findings from one species to another. Most of our knowledge about the anatomy and physiology of the olfactory system comes from data obtained in a very limited number of biological models such as rodents, Zebrafish, Drosophila, and a worm, Caenorhabditis elegans. These models have proved useful to answer most questions in the field of olfaction, and thus concentrating on these few models appear to be a pragmatic strategy. However, the diversity of the organization and physiology of the olfactory system amongst phyla appear to be greater than generally assumed and th…

Olfactory systemHistologybiologyXenopusOlfactionAnatomybiology.organism_classificationCaenorhabditisEvolutionary biologyGeneralization (learning)DECIPHERAnatomyAnimal speciesEcology Evolution Behavior and SystematicsBiotechnologyThe Anatomical Record
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