Search results for " zoology"

showing 10 items of 2242 documents

No evidence of an immune adjustment in response to a parasitoid threat in Lobesia botrana larvae.

2017

5 pages; International audience; Immune function is a key determinant of an organism's fitness, and natural insect populations are highly variable for this trait, mainly due to environmental heterogeneity and pathogen diversity. We previously reported a positive correlation between infection prevalence by parasitoids and host immunity in natural populations of the vineyard pest Lobesia botrana. Here, we tested whether this correlation reflects a plastic adjustment of host immunity in response to the local presence of parasites. To this end, we measured immunity of non-parasitized L. botrana larvae exposed, respectively, to one of the two most common species of parasitoids in vineyards, over…

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyHemocytesPlasticityPhysiologymedia_common.quotation_subjectWaspsInsectMothsLobesia botrana010603 evolutionary biology01 natural sciences[SDV.IMM.II]Life Sciences [q-bio]/Immunology/Innate immunityParasitoidImmune systemCommon speciesImmunity[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimals[ SDV.IMM ] Life Sciences [q-bio]/Immunology[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyComputingMilieux_MISCELLANEOUSmedia_commonLarvaEnzyme PrecursorsbiologyGrapevine mothEcologyProphylaxis[SDV.BID.EVO]Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE]fungiCampoplex capitatorbiology.organism_classification[SDV.BA.ZI]Life Sciences [q-bio]/Animal biology/Invertebrate Zoology010602 entomologyPhytomiptera nigrinaInsect ScienceLarvaInsect immunityInsect Proteins[SDV.IMM]Life Sciences [q-bio]/ImmunologyPEST analysisCatechol Oxidase[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Investigating candidate neuromodulatory systems underlying parasitic manipulation: concepts, limitations and prospects.

2012

Summary Studies addressing the functional basis of parasitic manipulation suggest that alteration of the neuromodulatory system is a common feature of manipulated hosts. Screening of the neuromodulatory system has so far been carried out by performing ethopharmacological analysis, biochemical quantification of neurotransmitters and neuromodulators, and/or immunocytochemistry. Here, we review the advantages and limitations of such approaches through the analysis of case studies. We further address whether the analysis of candidate neuromodulatory systems fits the current view of manipulation as being multidimensional. The benefits in combining ethopharmacology with more recent molecular tool…

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyNeuroimmunomodulationPhysiologyMultidisciplinary studyAquatic ScienceBiology010603 evolutionary biology01 natural sciencesHost-Parasite Interactions03 medical and health sciences[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsHumansParasites[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyParasite transmissionMolecular BiologyEcology Evolution Behavior and Systematics030304 developmental biologyethopharmacologyBehavior0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyneuroethologypsychoneuroimmunologyBiological evolutionBiological EvolutionserotoninInsect Sciencephenotypic engineeringAnimal Science and Zoology[SDE.BE]Environmental Sciences/Biodiversity and EcologyNeurosciencebehavioural manipulation[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Multidimensionality in parasite-induced phenotypic alterations: ultimate versus proximate aspects.

2012

SummaryIn most cases, parasites alter more than one dimension in their host phenotype. Although multidimensionality in parasite-induced phenotypic alterations (PIPAs) seems to be the rule, it has started to be addressed only recently. Here, we critically review some of the problems associated with the definition, quantification and interpretation of multidimensionality in PIPAs. In particular, we confront ultimate and proximate accounts, and evaluate their own limitations. We end up by introducing several suggestions for the development of future research, including some practical guidelines for the quantitative analysis of multidimensionality in PIPAs.

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyPhysiologyAquatic Science010603 evolutionary biology01 natural scienceshost manipulationDevelopmental psychologyHost-Parasite Interactions03 medical and health sciencesadaptationismAdaptation Psychological[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsHumansParasites[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyMolecular BiologyEcology Evolution Behavior and Systematics030304 developmental biology0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyPhenotypePhenotypeAdaptationismEvolutionary biologyInsect ScienceparasiteAnimal Science and Zoology[SDE.BE]Environmental Sciences/Biodiversity and EcologyPsychology[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Cucumispora dikerogammari n. gen. (Fungi: Microsporidia) infecting the invasive amphipod Dikerogammarus villosus: a potential emerging disease in Eur…

2010

SUMMARYDikerogammarus villosusis an invasive amphipod that recently colonized the main rivers of Central and Western Europe. Two frequent microsporidian parasites were previously detected in this species, but their taxonomic status was unclear. Here we present ultrastructural and molecular data indicating that these two parasites are in fact a single microsporidian species. This parasite shares numerous characteristics ofNosemaspp. It forms elongate spores (cucumiform), developing in direct contact with host cell cytoplasm; all developmental stages are diplokaryotic and the life cycle is monomorphic with disporoblastic sporogony. Initially this parasite was described asNosema dikerogammariO…

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologySSU rDNAZoologybiological invasion[SDV.BID.SPT]Life Sciences [q-bio]/Biodiversity/Systematics Phylogenetics and taxonomyphylogeny010603 evolutionary biology01 natural sciencesDikerogammarus villosusHost-Parasite InteractionsCucumispora gen. sp03 medical and health sciencesNosema dikerogammariMicroscopy Electron TransmissionRiversSpecies Specificity[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisParasite hostingAnimals[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyAmphipodaCucumispora gen. sp.DNA FungalRibosomal DNA030304 developmental biology0303 health sciencesLife Cycle Stages[ SDE.BE ] Environmental Sciences/Biodiversity and EcologybiologyDikerogammarus villosusSequence Analysis DNASpores Fungalbiology.organism_classificationEuropeInfectious DiseasesNosemaMicrosporidiaHost cell cytoplasmMicrosporidiaAnimal Science and ZoologyParasitologyPolar filament[SDE.BE]Environmental Sciences/Biodiversity and EcologySequence AlignmentHorizontal transmission[ SDV.BID.SPT ] Life Sciences [q-bio]/Biodiversity/Systematics Phylogenetics and taxonomy[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Immunity and Virulence in Bird-Parasite Interactions.

2010

8 pages; International audience; The interaction between hosts and parasites is characterized by the evolution of reciproca adaptations aiming at reducing the cost of infection (from the host point of view) and to optimize host exploitation (from the parasite point of view). Within this co-evolutionary scenario, the immune system takes a central role. The immune system has evolved to fight off parasitic attacks. However, immune defences cannot be deployed without costs which set a limit to the protective effect of immunity. Moreover, immune defences impose strong selection pressures on the parasite and can favour the evolution of more virulent pathogen strains. In this article, we will disc…

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyVirulenceBiology[ SDV.IMM.IA ] Life Sciences [q-bio]/Immunology/Adaptive immunology010603 evolutionary biology01 natural sciencesimmune response03 medical and health sciencesImmune systemImmunityImmunopathology[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisParasite hostingimmunopathology[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyPathogenCoevolution030304 developmental biology0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyHost (biology)biochemical phenomena metabolism and nutritioninfectionvirulence[SDV.IMM.IA]Life Sciences [q-bio]/Immunology/Adaptive immunologyEvolutionary biologyImmunologybacteriaAnimal Science and Zoology[SDE.BE]Environmental Sciences/Biodiversity and Ecology[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/SymbiosisCoevolution
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Bird and amphipod parasites illustrate a gradient from adaptation to exaptation in complex life cycle.

2010

6 pages; International audience; Trophically transmitted parasites modify the phenotype of their hosts, sometimes in a way that facilitates transmission. Parasite-induced changes can be either part of a manipulative strategy evolved to improve the transmission success of the parasite, or simply by-products of infection with no health effect. In the former case, manipulation is regarded as a parasite adaptation driven by the probability of being eaten by a suitable next host. Here, we consider the fact that manipulation may also be an 'exaptation': a trait that evolved for a certain use, but which has been co-opted for a new use. According to this view, features built by natural selection fo…

0106 biological sciences[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyZoologyadaptationBiology010603 evolutionary biology01 natural scienceshost manipulationPredationAcanthocephala03 medical and health sciencesGammarus roeseli[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/Symbiosis[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/Parasitologytransmission strategyEcology Evolution Behavior and Systematics030304 developmental biology0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyNatural selectionHost (biology)EcologyIntermediate hostExaptationbiology.organism_classificationObligate parasiteparasiteexaptationAnimal Science and ZoologyAdaptation[SDE.BE]Environmental Sciences/Biodiversity and Ecology[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Specific color sensitivities of prey and predator explain camouflage in different visual systems

2004

In situations of aggressive mimicry, predators adapt their color to that of the substrate on which they sit for hunting, a behavior that is presumed to hide them from prey as well as from their own predators. Females of few crab-spider species encounter such situations when lying on flowers to ambush pollinators. To evaluate the efficiency of spider camouflage on flowers, we measured by spectroradiometry adult female Thomisus onustus and marguerite daisies, Leucanthemum vulgare. We compared chromatic contrast (color used for short-range detection) of each pair of spider and flower to detection thresholds computed in the visual systems of both Hymenopteran prey and passerine bird predator. W…

0106 biological sciences[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT]0303 health sciencesSpiderbiology[SDV.OT] Life Sciences [q-bio]/Other [q-bio.OT]Ecologybiology.organism_classification010603 evolutionary biology01 natural sciencesPasserinePredation03 medical and health sciencesCamouflagebiology.animalThomisus onustusCrypsisAggressive mimicryAnimal Science and Zoology[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT]bird; camouflage; crab-spider; Hymenoptera; spectrometryPredatorComputingMilieux_MISCELLANEOUSEcology Evolution Behavior and Systematics030304 developmental biologyBehavioral Ecology
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Male bill colour and age are associated with parental abilities and breeding performance in blackbirds

2005

9 pages; International audience; In monogamous bird species, male parental investment may influence offspring fitness and females may gain advantages through mating with males providing extensive paternal care. However, paternal care is a benefit that can only be assessed indirectly because mate choice precedes paternal activities. Individual quality and age, both signalled by morphological characteristics, may reflect parental abilities. Because they may reflect individual foraging abilities, carotenoid-based colorations have been proposed to honestly signal parental quality. The blackbird (Turdus merula), a socially monogamous species, exhibits biparental care and males show bills that va…

0106 biological sciences[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT]OffspringForagingParental careBiology010603 evolutionary biology01 natural sciencesColour0501 psychology and cognitive sciencesTurdus merula050102 behavioral science & comparative psychology[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT]Parental investmentEcology Evolution Behavior and SystematicsComputingMilieux_MISCELLANEOUSCarotenoid[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyEcology[SDV.OT] Life Sciences [q-bio]/Other [q-bio.OT]05 social sciencesBroodProlactin[ SDE.MCG ] Environmental Sciences/Global ChangesBeakMate choiceAnimal ecologyAnimal Science and ZoologyPaternal care[ SDE.ES ] Environmental Sciences/Environmental and SocietyDemography
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Sex-ratio and male sexual characters in a population of Blue tits Parus caeruleus

2005

Sex allocation theory proposes that parents should bias the sex ratio of their offspring if the reproductive value of one sex is greater than that of the other. In the monogamous blue tit (Parus caeruleus), males have a greater variance in reproductive success than females, and high-quality males have higher reproductive success than high-quality females due to extrapair paternity. Consequently, females mating with attractive males are expected to produce broods biased toward sons, as sons benefit more than daughters from inheriting their father’s characteristics. Song and plumage color in birds are secondary sexual characters indicating male quality and involved in female choice. We used t…

0106 biological sciences[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT][SDE.MCG]Environmental Sciences/Global ChangesPopulation[SDV.BID]Life Sciences [q-bio]/BiodiversityBiology010603 evolutionary biology01 natural sciences03 medical and health sciencesdawn chorus; male song; Parus caeruleus; plumage color; sex ratio[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT]Mating10. No inequalityeducationEcology Evolution Behavior and SystematicsSex allocationreproductive and urinary physiologyComputingMilieux_MISCELLANEOUS030304 developmental biology[SDV.EE]Life Sciences [q-bio]/Ecology environment0303 health scienceseducation.field_of_study[Parus caeruleus]Reproductive successEcology[SDV.OT] Life Sciences [q-bio]/Other [q-bio.OT][SDV.BID.EVO]Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE][plumage color][male song][SDV.BV.BOT]Life Sciences [q-bio]/Vegetal Biology/Botanics[SDV.MP]Life Sciences [q-bio]/Microbiology and ParasitologyMate choicePlumage[sex ratio]behavior and behavior mechanismsAnimal Science and ZoologyReproductive value[SDE.BE]Environmental Sciences/Biodiversity and Ecology[dawn chorus]Sex ratioDemography[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Habitat assessment by parasitoids: consequences for population distribution

2006

International audience; The ideal free distribution (IFD) is a stable distribution of competitors among resource patches. For equally efficient competitors, equilibrium is reached when the per capita rate of intake equalizes across patches. The seminal version of the IFD assumes omniscience, but populations may still converge toward the equilibrium provided that competitors 1) accurately assess their environment by learning and 2) remain for an optimal (rate-maximizing) time on each encountered patch. In the companion article (Tentelier C, Desouhant E, Fauvergue X. 2006. Habitat assessment by parasitoids: mechanisms for patch time allocation. Behav Ecol. Forthcoming), it is shown that the p…

0106 biological sciences[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT]aggregation; density dependence; ideal free distribution; interference; learning; Lysiphlebus testaceipesPopulationTime allocationLEARNINGLYSIPHLEBUS TESTACEIPES010603 evolutionary biology01 natural sciencesParasitoid waspParasitoid03 medical and health sciences[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT]educationEcology Evolution Behavior and SystematicsDENSITY DEPENDENCEComputingMilieux_MISCELLANEOUS030304 developmental biologyINTERFERENCE0303 health sciencesAphideducation.field_of_studyIdeal free distributionbiology[SDV.OT] Life Sciences [q-bio]/Other [q-bio.OT]EcologyHost (biology)AGGREGATIONbiology.organism_classificationINDIVIDUAL BEHAVIORDensity dependenceIDEAL FREE DISTRIBUTIONPOPULATION DISTRIBUTIONAnimal Science and Zoology[SDE.BE]Environmental Sciences/Biodiversity and Ecology
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