Search results for "Biodiversity and Ecology"

showing 10 items of 738 documents

Interspecific differences in carotenoid content and sensitivity to UVB radiation in three acanthocephalan parasites exploiting a common intermediate …

2011

9 pages; International audience; Few endoparasite species are pigmented. Acanthocephalans are an exception however, with several species being characterised by yellow to orange colouration both at the immature (cystacanth) and adult stages. However, the functional and adaptive significance of carotenoid-based colourations in acanthocephalans remains unclear. One possibility is that the carotenoid content of acanthocephalan cystacanths acts as a protective device against ultra-violet radiation (UVR) passing through the translucent cuticle of their crustacean hosts. Indeed, acanthocephalans often bring about behavioural changes in their aquatic intermediate hosts that can increase their expos…

Pigments[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyUltraviolet RaysPomphorhynchusAcanthocephalachemistry.chemical_compoundAstaxanthinBotany[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsAmphipodaCarotenoidchemistry.chemical_classification[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyAdaptive colourbiologyPhotoprotectionIntermediate hostfood and beveragesbiology.organism_classificationCarotenoidsSurvival AnalysisPolymorphusPolymorphusGammarus pulexInfectious DiseaseschemistryPhotoprotectionParasite manipulationParasitologyPomphorhynchus laevisAcanthocephala
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New national and regional bryophyte records, 42

2015

1. Acaulon triquetrum (Spruce) Mull.Hal.Contributors: S. Grdovic, A. Sabovljevic and M.S. SabovljevicSerbia: Belgrade, Bežanijska kosa, on loess soil, 16 March 2013, leg./det. Aneta Sabovljevic & M...

Plant Science15. Life on landPlagiothecium denticulatum var obtusifoliumLiguriabriofiteGeographyLoessBotanyBryophyte[SDE.BE]Environmental Sciences/Biodiversity and EcologyAcaulon triquetrumEcology Evolution Behavior and SystematicsPlagiothecium denticulatum var obtusifolium Liguria briofiteComputingMilieux_MISCELLANEOUS
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Pisum sativum – Pseudomonas interactions : influence on iron nutrution, growth and immunity of the host plant

2020

The project aimed at making progress in the knowledge of the iron-mediated interactions between pea and fluorescent pseudomonads in order to promote the iron-nutrition and health of the host-plant. A bibliographical study was conducted to draw up the state of the art concerning the influence of rhizosphere microorganisms on plant iron status (Chapter 1).Pisum sativum has been chosen as an agronomic model-plant because of its high potential in agroecology and in Human nutrition related to its ability to fix atmospheric nitrogen and to the high amino-acids content of its seeds. However, this species suffers from a high susceptibility to iron deficiency as expressed by the well-known chlorosis…

Plant iron nutrition[SDE.BE] Environmental Sciences/Biodiversity and EcologyPseudomonasIronInteractions plante-MicroorganismesNutrition en fer de la plantePyoverdines[SDE.BE]Environmental Sciences/Biodiversity and EcologyPlant-Microorganisms interactionsPisum sativumFer
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Experimental inhibition of nitric oxide increases Plasmodium relictum (lineage SGS1) parasitaemia.

2012

7 pages; International audience; Malaria is a widespread vector-borne disease infecting a wide range of terrestrial vertebrates including reptiles, birds and mammals. In addition to being one of the most deadly infectious diseases for humans, malaria is a threat to wildlife. The host immune system represents the main defence against malaria parasites. Identifying the immune effectors involved in malaria resistance has therefore become a major focus of research. However, this has mostly involved humans and animal models (rodents) and how the immune system regulates malaria progression in non-model organisms has been largely ignored. The aim of the present study was to investigate the role of…

PlasmodiumCanariesNitric Oxide Synthase Type IIDiseaseParasitemia[ SDV.IMM.IA ] Life Sciences [q-bio]/Immunology/Adaptive immunologyGuanidinesImmune defencechemistry.chemical_compound0302 clinical medicineImmunopathology[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisEnzyme InhibitorsExperimental infection0303 health sciencesbiologyGeneral Medicine3. Good healthNitric oxide synthaseInfectious Diseases[SDV.IMM.IA]Life Sciences [q-bio]/Immunology/Adaptive immunologyAvian malariaSparrows[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyMalaria Avian030231 tropical medicineImmunologyPlasmodium relictum lineage SGS1ImmunopathologyNitric oxide03 medical and health sciencesImmune systemAvian malariaparasitic diseasesmedicineAnimals[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/Parasitology030304 developmental biology[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyNitric oxidemedicine.diseasebiology.organism_classificationPlasmodium relictumchemistryImmunologybiology.proteinParasitology[SDE.BE]Environmental Sciences/Biodiversity and EcologyMalaria[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Immunity, resistance and tolerance in bird-parasite interactions.

2013

12 pages; International audience; Interacting pathogens and hosts have evolved reciprocal adaptations whose function is to allow host exploitation (from the pathogen stand point) or minimize the cost of infection (from the host stand point). Once infected, two strategies are offered to the host: parasite clearing (resistance) or withstanding the infection while paying a low fitness cost (tolerance). In both cases, the immune system plays a central role. Interestingly, whatever the defence strategy adopted by the host, this is likely to have an effect on parasite evolution. Given their short generation time and large population size, parasites are expected to rapidly adapt to the environment…

Plasmodium[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyMalaria AvianImmunologyMycoplasma gallisepticumHost-Parasite InteractionsBirdsImmune systemImmunityAvian malariamedicineImmune Tolerance[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisParasite hostingAnimals[ SDV.IMM ] Life Sciences [q-bio]/ImmunologyMycoplasma InfectionsPathogen[ SDE.BE ] Environmental Sciences/Biodiversity and EcologybiologyHost (biology)Mechanism (biology)Bird DiseasesmmunopathologyPlasmodium relictumbiology.organism_classificationmedicine.diseaseBiological EvolutionPlasmodium relictuminfectionvirulenceImmunologyParasitology
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Modeling in Microbial Ecology

2014

SPE IPM; International audience; The bases and the principles of modeling in microbial community ecology and biogeochemistry are presented and discussed. Several examples are given. Among them, the fermentation process is largely developed, thus demonstrating how the model allows determining the microbial population growth rate, the death rate, and the maintenance rate. More generally, these models have been used to increase the development of bioenergetic formulations which are presently used in biogeochemical models (Monod, Droop, DEB models). Different types of interactions (competition, predation, and virus–bacteria) are also developed. For each topic, a complete view of the models used…

Population dynamicsComputer science[SDV]Life Sciences [q-bio][SDE.MCG]Environmental Sciences/Global ChangesEcology (disciplines)media_common.quotation_subjectBiotic interactionsFermenter modelsChemostatCompetition (biology)Microbial Ecology03 medical and health sciences[SDV.EE.ECO]Life Sciences [q-bio]/Ecology environment/EcosystemsMicrobial ecology[SDV.BV]Life Sciences [q-bio]/Vegetal Biology030304 developmental biologymedia_common0303 health sciences030306 microbiologyBiogeochemistryBiofilm modelsChemostatMicrobial population biologyMetabolic models[SDE]Environmental SciencesBiochemical engineering[SDE.BE]Environmental Sciences/Biodiversity and Ecology
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Anxiété et manipulation parasitaire chez un invertébré aquatique : approches évolutive et mécanistique

2020

Trophically transmitted parasites induce changes in their host’s phenotype. These changes are supposed to increase transmission probability to definitive hosts through the predation of intermediate hosts. This phenomenon is known as ‘parasite manipulation’ has been hypothesized to be an adaptive trait of parasites for a long time. As manipulation involves predator-prey interactions, it is therefore necessary to understand how antipredatory behaviours are modulated by exogenous (predation pressure) and endogenous (infection, emotional state) factors. We tried to go into this phenomenon in depth, in amphipods, by responding toseveral questions : (1) what is the extent of the multidimensionali…

Predator-Prey interactionComportementInteractions prédateur-ProieAnxietyAcanthocephalaAcanthocéphale[SDE.BE] Environmental Sciences/Biodiversity and EcologyParasite manipulationManipulation parasitaireAmphipodaBehaviour[SDE.BE]Environmental Sciences/Biodiversity and EcologyAmphipodeAnxiété
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Metal stresses modify soluble proteomes and toxin profiles in two Mediterranean strains of the distributed dinoflagellate Alexandrium pacificum

2022

WOS:000789651000009; HABs involving Alexandrium pacificum have been reported in metal-contaminated ecosystems, suggesting that this distributed species adapts to and/or can tolerate the effects of metals. Modifications in soluble proteomes and PST contents were characterized in two Mediterranean A. pacificum strains exposed to mono- or polymetallic stresses (zinc, lead, copper, cadmium). These strains were isolated from two anthropized locations: Santa Giusta Lagoon (Italy, SG C10-3) and the Tarragona seaport (Spain, TAR C5-4F). In both strains, metals primarily downregulated key photosynthesis proteins. Metals also upregulated other proteins involved in photosynthesis (PCP in both strains)…

ProteomicsEnvironmental EngineeringProteomeParalytic shellfish toxins[SDE.MCG]Environmental Sciences/Global Changeschemistry.chemical_elementmedicine.disease_causePhotosynthesiscomplex mixturesMicrobiologychemistry.chemical_compoundTar (tobacco residue)BiosynthesismedicineEnvironmental ChemistryWaste Management and DisposalEcosystemCadmiumbiologyStrain (chemistry)Harmful algal bloomToxinChemistryDinoflagellatebiology.organism_classificationPollutionADKMetalsDinoflagellida[SDE.BE]Environmental Sciences/Biodiversity and Ecology
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Potentiel de l’éco-acoustique pour l’étude des rythmes et paysages d’un socio-écosystème de montagne : le cas exploratoire de la vallée du Vicdessos

2022

Pyrénées[SHS.ARCHI]Humanities and Social Sciences/Architecture space management[SDE.MCG]Environmental Sciences/Global Changes[SHS.GEO] Humanities and Social Sciences/Geographybio-acoustiqueéco-acoustiquePyrénées ariégeoises[SHS.GEO]Humanities and Social Sciences/Geographysocio-écosystème[SDE.ES]Environmental Sciences/Environmental and Societypaysages sonoresOHM[SDE.BE] Environmental Sciences/Biodiversity and Ecology[SDE.MCG] Environmental Sciences/Global ChangesVicdessos[SHS.ENVIR] Humanities and Social Sciences/Environmental studies[SHS.ENVIR]Humanities and Social Sciences/Environmental studiesHaut Vicdessosacoustique[SDE.ES] Environmental Sciences/Environmental and Society[SDE.BE]Environmental Sciences/Biodiversity and Ecology[SHS.ARCHI] Humanities and Social Sciences/Architecture space managementObservatoire Homme Milieu
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The era of reference genomes in conservation genomics

2022

Progress in genome sequencing now enables the large-scale generation of reference genomes. Various international initiatives aim to generate reference genomes representing global biodiversity. These genomes provide unique insights into genomic diversity and architecture, thereby enabling comprehensive analyses of population and functional genomics, and are expected to revolutionize conservation genomics.

QH301 Biology580 Plants (Botany)Genetics -- ResearchEvolutionsbiologibiodiversity conservation; conservation genetics; ERGA; European Reference Genome AtlasConservation genetics; Biodiversity conservation; European Reference Genome Atlas; ERGAAnimal genome mappingudc:630*1GenomeGEERGA[SDV.BID.EVO]Life Sciences [q-bio]/Biodiversity/Populations and Evolution [q-bio.PE][SDE.BE.BIOD]Environmental Sciences/Biodiversity and Ecology/domain_sde.be.biodERGA ; Biodiversity [MeSH] ; Genomics [MeSH] ; Ecology Evolution Behavior and Systematics ; conservation genetics ; Genome [MeSH] ; biodiversity conservation ; European Reference Genome Atlas3rd-DASGenomicsBiodiversityreferenčni genomi[SDV.BIBS]Life Sciences [q-bio]/Quantitative Methods [q-bio.QM][SDE.BE.BEC]Environmental Sciences/Biodiversity and Ecology/domain_sde.be.becChemistry10121 Department of Systematic and Evolutionary BotanygenomikaGE Environmental Sciences:Informàtica::Aplicacions de la informàtica::Bioinformàtica [Àrees temàtiques de la UPC]biodiverzitetaSettore BIO/18 - GENETICAeducationQH426 GeneticsQH301European Reference Genome AtlasVDP::Matematikk og Naturvitenskap: 400::Basale biofag: 470[SDE.BE.EVO]Environmental Sciences/Biodiversity and Ecology/domain_sde.be.evoGeneticsconservation genetics ; biodiversity conservation ; European Reference Genome Atlas ; ERGAgenomi10211 Zurich-Basel Plant Science CenterGenomesGenetikBiologyQH426Ecology Evolution Behavior and SystematicsEvolutionary BiologyBiodiversity conservation; Conservation genetics; European Reference Genome AtlasAmbientaleEcologíaGenética1105 Ecology Evolution Behavior and Systematicsconservation geneticsWildlife conservation570 Life sciences; biologyHuman medicinebiodiversity conservationAnimal genetics[SDE.BE]Environmental Sciences/Biodiversity and EcologyGenètica
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