Search results for "Ecological immunology"

showing 10 items of 13 documents

Are immune responses gender-related in Carabus lefebvrei (Coleoptera: Carabidae)?

2016

The “live hard, die young” theory predicts the evolution of gender differences in immunocompetence, with males having a weaker immune system than females. To test this hypothesis in Carabus lefebvrei, total and basal phenoloxidase (PO) activities and lysozyme-like enzyme activity were compared among males and females of different reproductive status. The sexual dimorphism occurred only in reproductively active adults and for total and basal PO levels, while no significant differences were recorded between sexes in virgin adults. Differences were not recorded for lytic activity between sexes. Basal PO and lytic activities decreased in both males and females after mating, while the total PO v…

0106 biological sciences0301 basic medicineEcological immunologyecological immunology; life history; lytic activity; phenoloxidase; sexual dimorphism010603 evolutionary biology01 natural sciences03 medical and health sciencesSexual dimorphism030104 developmental biologylcsh:Biology (General)Lytic activityEcological immunology; Life history; Lytic activity; Phenoloxidase; Sexual dimorphism; Animal Science and ZoologyPhenoloxidaseAnimal Science and ZoologyLife historylcsh:QH301-705.5
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Telomere erosion varies with sex and age at immune challenge but not with maternal antibodies in pigeons

2018

International audience; Conditions experienced early in life have profound impact on adult fitness, and telomere erosion could be a key mechanism in this process. In particular, early exposure to parasites is a frequent phenomenon in young vertebrates, which is associated with several short- and long-term costs such as telomere erosion. However, the timing of exposure to parasites during ontogeny and maternal antibodies can strongly modulate the costs of immunity, and could differentially affect telomere erosion. Here, we compared the effects of an early or late immune challenge on telomere erosion rate in male and female young feral pigeons (Columba livia) having received or not maternal a…

0106 biological sciences0301 basic medicineMalePhysiologyOntogenyPhysiology010603 evolutionary biology01 natural sciencesErosion rateEarly-life effectAntibodies[ SDE ] Environmental Sciences03 medical and health sciencesImmune systemSex FactorsAntigenMaternal effectImmunityGeneticsAnimalsColumbidaeMolecular BiologyEcology Evolution Behavior and SystematicsTelomere ShorteningbiologyMaternal effectAge FactorsTelomereTelomere030104 developmental biologyImmune System[SDE]Environmental Sciencesbiology.proteinAnimal Science and ZoologyFemaleAntibodyImmunity Maternally-AcquiredEcological Immunology
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Relationship between maternal transfer of immunity and mother fecundity in an insect.

2012

Trans-generational immune priming (TGIP) corresponds to the plastic adjustment of offspring immunity as a result of maternal immune experience. TGIP is expected to improve mother's fitness by improving offspring individual performance in an environment where parasitism becomes more prevalent. However, it was recently demonstrated that maternal transfer of immunity to the offspring is costly for immune-challenged female insects. Thus, these females might not provide immune protection to all their offspring because of the inherent cost of other fitness-related traits. Females are therefore expected to adjust their investment to individual offspring immune protection in ways that maximize the…

0106 biological sciencesMealwormLipopolysaccharidesOffspringmedia_common.quotation_subjectanimal diseasesZoologyParasitismchemical and pharmacologic phenomenaecological immunologyInsectBiology[ SDV.IMM.IA ] Life Sciences [q-bio]/Immunology/Adaptive immunology010603 evolutionary biology01 natural sciencesGeneral Biochemistry Genetics and Molecular Biology03 medical and health sciencesImmune systemtrans-generational immune primingImmunity[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsArthrobacterTenebrioResearch Articles030304 developmental biologyGeneral Environmental Sciencemedia_commonOvuminsect immunity0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyGeneral Immunology and MicrobiologyMaternal effectGeneral Medicinebiochemical phenomena metabolism and nutritionFecunditybiology.organism_classificationFertility[SDV.IMM.IA]Life Sciences [q-bio]/Immunology/Adaptive immunologyImmunologybacteriamaternal effectsFemale[SDE.BE]Environmental Sciences/Biodiversity and EcologyGeneral Agricultural and Biological SciencesImmunity Maternally-Acquired[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Trans-generational immune priming in the mealworm beetle protects eggs through pathogen-dependent mechanisms imposing no immediate fitness cost for t…

2018

8 pages; International audience; Immune-challenged mothers can improve their offspring immunity through trans-generational immune priming (TGIP). In insects, TGIP endows the offspring with lifetime immunity, including the eggs, which are likely exposed soon after maternal infection. Egg protection may rely on the transfer of maternal immune effectors to the egg or/and the induction of egg immune genes. These respective mechanisms are assumed to have early-life fitness costs of different magnitude for the offspring. We provide evidence in the mealworm beetle Tenebrio molitor that enhanced egg immunity following a maternal immune challenge is achieved by both of these mechanisms but in a path…

0301 basic medicineMealwormOffspringMaternal effectsmedia_common.quotation_subjectHost–pathogen interactionanimal diseasesImmunologyBacillus thuringiensisZoologychemical and pharmacologic phenomenaInsectBiologyEcological immunology03 medical and health sciencesImmune systemImmunity[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimals[ SDV.IMM ] Life Sciences [q-bio]/ImmunologyArthrobacterTenebrioCells CulturedOvummedia_commonHost-pathogen interactionEcologyHatching[SDV.BID.EVO]Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE]Maternal effectBacterial Infectionsbiochemical phenomena metabolism and nutritionbiology.organism_classificationBiological EvolutionInvertebrates[SDV.BA.ZI]Life Sciences [q-bio]/Animal biology/Invertebrate ZoologyFitness costs030104 developmental biologyLarvaHost-Pathogen Interactions[SDV.IMM]Life Sciences [q-bio]/ImmunologybacteriaImmunizationGenetic FitnessImmunity Maternally-AcquiredDevelopmental Biology[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Stabilising selection on immune response in male black grouse Lyrurus tetrix

2017

Illnesses caused by a variety of micro- and macro- organisms can negatively affect individuals’ fitness, leading to the expectation that immunity is under positive selection. However, immune responses are costly and individuals must trade-off their immune response with other fitness components (e.g. survival or reproductive success) meaning that individuals with intermediate response may have the greatest overall fitness. Such a process might be particularly acute in species with strong sexual selection because the condition-dependence of male secondary sexual-traits might lead to striking phenotypic differences amongst males of different immune response levels. We tested whether there is s…

Male0106 biological sciences0301 basic medicineImmunocompetanceanimal diseasesZoologyecological immunologychemical and pharmacologic phenomenaEcological immunologylife history theoryBiologykoiraat010603 evolutionary biology01 natural sciencesLife history theory03 medical and health sciencesImmune systemAntigenimmunologiaImmunityLife history theoryAnimalsHorsesGalliformesStabilising selectionstabilising selectionelämänhistoriaEcology Evolution Behavior and SystematicsSelection (genetic algorithm)immunocompetanceC300 ZoologyluonnonvalintateeriReproductive successReproductionBehavioral Ecology–Original Researchbiochemical phenomena metabolism and nutritionBlack grousebiology.organism_classificationPhenotype030104 developmental biologyimmuunivasteSexual selectionImmunologybacteriaELISAOecologia
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Limiting immunopathology: Interaction between carotenoids and enzymatic antioxidant defences.

2015

The release of reactive oxygen and nitrogen species (ROS and RNS) during the inflammatory response generates damages to host tissues, referred to as immunopathology, and is an important factor in ecological immunology. The integrated antioxidant system, comprising endogenous antioxidant enzymes (e.g. superoxide dismutase SOD, and catalase CAT) and dietary antioxidants (e.g. carotenoids), helps to cope with immune-mediated oxidative stress. Crustaceans store large amounts of dietary carotenoids for yet unclear reasons. While being immunostimulants and antioxidants, the interaction of these pigments with antioxidant enzymes remains unclear. Here, we tested the interaction between dietary supp…

MaleAntioxidantmedicine.medical_treatmentImmunologyCrustaceanImmunopathologyEcological immunologyImmuno-stimulantsmedicine.disease_causeAntioxidantsSuperoxide dismutase03 medical and health sciencesImmune systemImmunityHemolymphmedicine[ SDV.IMM ] Life Sciences [q-bio]/ImmunologyAnimalsAmphipodaCarotenoidComputingMilieux_MISCELLANEOUS030304 developmental biologychemistry.chemical_classificationInflammation0303 health sciences[ SDE.BE ] Environmental Sciences/Biodiversity and EcologybiologySuperoxide Dismutase04 agricultural and veterinary sciencesCatalaseCarotenoidsReactive Nitrogen SpeciesOxidative StressEnzymechemistryBiochemistryCatalaseDietary Supplements040102 fisheriesbiology.protein0401 agriculture forestry and fisheries[SDV.IMM]Life Sciences [q-bio]/Immunology[SDE.BE]Environmental Sciences/Biodiversity and EcologyAntioxidantReactive Oxygen SpeciesOxidative stressDevelopmental BiologyDevelopmental and comparative immunology
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Is there a role for antioxidant carotenoids in limiting self-harming immune response in invertebrates?

2007

Innate immunity relies on effectors, which produce cytotoxic molecules that have not only the advantage of killing pathogens but also the disadvantage of harming host tissues and organs. Although the role of dietary antioxidants in invertebrate immunity is still unknown, it has been shown in vertebrates that carotenoids scavenge cytotoxic radicals generated during the immune response. Carotenoids may consequently decrease the self-harming cost of immunity. A positive relationship between the levels of innate immune defence and circulating carotenoid might therefore be expected. Consistent with this hypothesis, we show that the maintenance and use of the prophenoloxidase system strongly cor…

MaleantioxidantMESH : Immunity Natural[ SDV.IMM.IA ] Life Sciences [q-bio]/Immunology/Adaptive immunologyAntioxidantsMESH: Linear ModelsMESH: AmphipodaHemolymphMESH : Linear ModelsHemolymphMESH: AnimalsMESH : FemaleCarotenoidchemistry.chemical_classificationbiologyEffectorMonophenol Monooxygenasefood and beveragesProphenoloxidaseMESH : AmphipodaAgricultural and Biological Sciences (miscellaneous)MESH : Monophenol Monooxygenase[SDV.IMM.IA]Life Sciences [q-bio]/Immunology/Adaptive immunologyMESH : AntioxidantsFemaleGeneral Agricultural and Biological SciencesResearch ArticleMESH: Monophenol MonooxygenaseMESH : Maleimmune costsecological immunologyMESH : Hemolymph[ SDV.BBM.BM ] Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyImmune systemImmunityAnimalsAmphipodaMESH: Immunity NaturalMESH : CarotenoidsInnate immune systemMESH: HemolymphMESH: Antioxidants[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologybiochemical phenomena metabolism and nutritionbiology.organism_classificationCarotenoidsImmunity InnateMESH: MaleGammarus pulexchemistryImmunologyMESH: CarotenoidsLinear ModelsbacteriaMESH : AnimalsMESH: Female
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Specific expression of antimicrobial peptide and HSP70 genes in response to heat-shock and several bacterial challenges in mussels

2007

Abstract Defensin, mytilin and myticin are antimicrobial peptides (AMP) involved in mussel innate immunity. Their in vitro antibacterial activity is different according to the targeted bacterial species. To determine if this specificity is correlated to different regulations of gene expressions, adult mussels were challenged in vivo with either Vibrio splendidus LGP32, Vibrio anguillarum , Micrococcus lysodeikticus or by heat shock. RNAs were isolated from circulating hemocytes and AMP mRNAs were quantified by Q-PCR using 28S rRNA as housekeeping gene. In addition, HSP70 gene expression was also quantified as representing non-specific response to stress. In naive mussels, the three AMP mRNA…

Vibrio anguillarumHot TemperatureTime Factorsantimicrobial peptidemusselAntimicrobial peptidesecological immunologyAquatic ScienceMicrococcusMicrobiologychemistry.chemical_compoundAnimalsEnvironmental ChemistryHSP70 Heat-Shock ProteinsRNA MessengerDefensinHSP70DNA PrimersVibrioMytilusRegulation of gene expressionbiologyReverse Transcriptase Polymerase Chain ReactionMytilinmolluskGeneral Medicinebiology.organism_classificationMyticinMolecular biologyImmunity InnateHousekeeping geneHsp70Gene Expression Regulationchemistrygene regulationAntimicrobial Cationic PeptidesFish & Shellfish Immunology
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Prenatal androgen exposure modulates cellular and humoral immune function of black-headed gull chicks

2005

Avian eggs contain considerable amounts of maternal yolk androgens, which have been shown to beneficially influence the physiology and behaviour of the chick. As androgens may suppress immune functions, they may also entail costs for the chick. This is particularly relevant for colonial species, such as the black-headed gull (Larus ridibundus), in which the aggregation of large numbers of birds during the breeding season enhances the risk of infectious diseases for the hatching chick.To test the effect of maternal yolk androgens on the chick's immune function, we experimentally manipulated, in a field study, yolk androgen levels within the physiological range by in ovo injection of either a…

WITHIN-CLUTCHCharadriiformesEVOLUTIONARY ECOLOGYantibodyhumoral immunityECOLOGICAL IMMUNOLOGYTestosteroneNetherlandsLIFE-SPANGeneral Environmental ScienceTRADE-OFFSGeneral MedicineEgg Yolkembryonic structuresAndrogensLARUS-RIDIBUNDUSGeneral Agricultural and Biological SciencesResearch ArticleYOLK TESTOSTERONEmedicine.medical_specialtyanimal structuresfood.ingredientmedicine.drug_classOffspringMATERNAL TESTOSTERONEEnzyme-Linked Immunosorbent AssayphytohemagglutininBiologyIn ovoAntibodiesGeneral Biochemistry Genetics and Molecular BiologyImmune systemfoodPASSER-DOMESTICUSImmunityYolkInternal medicinemedicineAnimalsEGGPhytohemagglutininsBiologyGeneral Immunology and MicrobiologyBody WeightImmunitylipopolysaccharidesAndrogenEndocrinologytestosteroneHumoral immunityProceedings of the Royal Society B: Biological Sciences
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The immune role of the arthropod exoskeleton.

2012

7 pages; International audience; The exoskeleton or cuticle of arthropods is an important feature that contributes to their great success in colonising numerous habitats on earth. It has numerous functions among which to provide protection against parasites. Whereas often regarded as a simple physical barrier to the outside world, the immune protection of the cuticle is slightly more complex than that. Here, we provide an overview of the cuticle defensive traits against parasites and examine their variation as a response to parasitism. It appears that the cuticle is an efficient line of defense, which includes physical, biochemical and physiological defensive components that are potentially…

[ SDE.BE ] Environmental Sciences/Biodiversity and Ecologycuticle defenseecological immunology[SDV.EE.IEO] Life Sciences [q-bio]/Ecology environment/Symbiosis[ SDV.IMM.IA ] Life Sciences [q-bio]/Immunology/Adaptive immunologyinvertebratesimmunity[SDE.BE] Environmental Sciences/Biodiversity and Ecologylcsh:Biology (General)[SDV.IMM.IA]Life Sciences [q-bio]/Immunology/Adaptive immunology[SDV.IMM.IA] Life Sciences [q-bio]/Immunology/Adaptive immunologyparasite[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/Symbiosis[SDE.BE]Environmental Sciences/Biodiversity and Ecologylcsh:QH301-705.5[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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