Search results for "phototaxis"

showing 10 items of 10 documents

Carotenoid-based colour of acanthocephalan cystacanths plays no role in host manipulation.

2009

Manipulation by parasites is a catchy concept that has been applied to a large range of phenotypic alterations brought about by parasites in their hosts. It has, for instance, been suggested that the carotenoid-based colour of acanthocephalan cystacanths is adaptive through increasing the conspicuousness of infected intermediate hosts and, hence, their vulnerability to appropriate final hosts such as fish predators. We revisited the evidence in favour of adaptive coloration of acanthocephalan parasites in relation to increased trophic transmission using the crustacean amphipodGammarus pulexand two species of acanthocephalans,Pomphorhynchus laevisandPolymorphus minutus. Both species show car…

[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyFood ChaincolourTroutColorGeneral Biochemistry Genetics and Molecular Biologyhost manipulationPredationAcanthocephalaHost-Parasite InteractionsPomphorhynchus laevisGammarus pulex[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsAmphipodaGeneral Environmental ScienceNegative phototaxisGeneral Immunology and MicrobiologybiologyEcologyIntermediate hostGeneral Medicinebiology.organism_classificationCarotenoidsTroutGammarus pulexPulexPredatory BehaviorFreshwater fishPolymorphus minutusPomphorhynchus laevispredationGeneral Agricultural and Biological SciencesResearch Article
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Glial expression of Swiss cheese (SWS), the Drosophila orthologue of neuropathy target esterase (NTE), is required for neuronal ensheathment and func…

2016

ABSTRACT Mutations in Drosophila Swiss cheese (SWS) or its vertebrate orthologue neuropathy target esterase (NTE), respectively, cause progressive neuronal degeneration in Drosophila and mice and a complex syndrome in humans that includes mental retardation, spastic paraplegia and blindness. SWS and NTE are widely expressed in neurons but can also be found in glia; however, their function in glia has, until now, remained unknown. We have used a knockdown approach to specifically address SWS function in glia and to probe for resulting neuronal dysfunctions. This revealed that loss of SWS in pseudocartridge glia causes the formation of multi-layered glial whorls in the lamina cortex, the firs…

Medicine (miscellaneous)lcsh:MedicineAxonal degenerationSynaptic Transmission0302 clinical medicineImmunology and Microbiology (miscellaneous)Drosophila ProteinsNeurons0303 health sciencesGene knockdownCell Deathmusculoskeletal neural and ocular physiologyPhototaxisAnatomyCell biologymedicine.anatomical_structureDrosophila melanogasterPhospholipasesGene Knockdown TechniquesNeurogliaNeurogliaDrosophila Proteinpsychological phenomena and processesResearch Articlelcsh:RB1-214Programmed cell deathNeuriteNeuroscience (miscellaneous)Nerve Tissue ProteinsNeuropathy target esteraseNeurotransmissionBiologyMotor ActivityGeneral Biochemistry Genetics and Molecular Biology03 medical and health sciencesPNPLA6mental disordersNeuropilmedicineNeuriteslcsh:PathologyAnimalsPhospholipaseCell Shape030304 developmental biologySequence Homology Amino AcidSpastic paraplegialcsh:R302Reproducibility of ResultsEnsheathing gliabody regionsnervous systemVacuolesbiology.proteinCarboxylic Ester Hydrolases030217 neurology & neurosurgeryDisease Models & Mechanisms
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Co-variation between the intensity of behavioural manipulation and parasite development time in an acanthocephalan-amphipod system.

2010

8 pages; International audience; Pomphorhynchus laevis, a fish acanthocephalan parasite, manipulates the behaviour of its gammarid intermediate host to increase its trophic transmission to the definitive host. However, the intensity of behavioural manipulation is variable between individual gammarids and between parasite populations. To elucidate causes of this variability, we compared the level of phototaxis alteration induced by different parasite sibships from one population, using experimental infections of Gammarus pulex by P. laevis. We used a naive gammarid population, and we carried out our experiments in two steps, during spring and winter. Moreover, we also investigated co-variati…

0106 biological sciencesMale[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyPopulationZoology010603 evolutionary biology01 natural sciencesAcanthocephalaHost-Parasite Interactions03 medical and health sciencesGenetic variation[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisPhototaxishost–parasite associationParasite hostingAnimalsparasite development timeAmphipoda[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyeducationEcology Evolution Behavior and Systematics030304 developmental biologyTrophic level[ SDE.BE ] Environmental Sciences/Biodiversity and Ecology0303 health scienceseducation.field_of_studybiologyBehavior AnimalEcologyIntermediate hostGenetic Variationbiology.organism_classificationGammarus pulextrade-offsphototaxisPomphorhynchus laevisFemale[SDE.BE]Environmental Sciences/Biodiversity and Ecology[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Weiteres zum Lichtsinn augenloser Muscheln

1954

The cycless musselsAnodonta cygnea andPseudanodonta complanata do not show any phototaxis. In the “Zweilichterversuch” (two-light-experiment) they react to the decrease of light intensity. If light is increasing, the mussels will not react; if put in the shade, they immediately do so. If the shadow is moved, the mussels even react when the intensity of light decreases much less, which demonstrates the importance of motion. From this it follows that the reception of motion may be considered as possible where there is light sensitiveness of the skin, and where the experiment connects motion with shading.

PharmacologybiologyChemistryEcologyCell BiologyPseudanodonta complanatabiology.organism_classificationCellular and Molecular NeuroscienceLight intensityAnodonta cygneaPhototaxisMolecular MedicineMolecular BiologyMolluscaExperientia
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THE BEHAVIORAL RESPONSE OF AMPHIPODS HARBORING CORYNOSOMA CONSTRICTUM (ACANTHOCEPHALA) TO VARIOUS COMPONENTS OF LIGHT

2006

Many studies have shown that photic behavior of amphipods is subject to parasitic manipulation. However, all these investigations have focused on but one property of light (i.e., intensity). This study investigated the possibility that variable wavelength sensitivity, as a potentially important component of amphipod ecology, is subject to parasitic manipulation. The photic behavior of freshwater amphipods Hyalella azteca, infected with the duck acanthocephalan Corynosoma constrictum, was tested. The phototactic responses of infected and uninfected amphipods to various wavelengths in the visible spectrum were compared, and to delineate the effects of intensity and wavelength on behavior, the…

AmphipodaBehavior AnimalLightgenetic structuresbiologyEcologyMovementHyalella aztecabiology.organism_classificationCrustaceanAcanthocephalaHost-Parasite InteractionsLight intensityDucksBehavioral responsePhototaxisAnimalsAmphipodaFemaleParasitologyPhotic zonesense organsAcanthocephalaEcology Evolution Behavior and SystematicsJournal of Parasitology
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Larval size in acanthocephalan parasites : Influence of intraspecific competition and effects on intermediate host behavioural changes

2012

Abstract Background Parasites often face a trade-off between exploitation of host resources and transmission probabilities to the next host. In helminths, larval growth, a major component of adult parasite fitness, is linked to exploitation of intermediate host resources and is influenced by the presence of co-infecting conspecifics. In manipulative parasites, larval growth strategy could also interact with their ability to alter intermediate host phenotype and influence parasite transmission. Methods We used experimental infections of Gammarus pulex by Pomphorhynchus laevis (Acanthocephala), to investigate larval size effects on host behavioural manipulation among different parasite sibshi…

[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/Parasitologymedia_common.quotation_subjectZoologyHost behavioural manipulationIntraspecific competitionCompetition (biology)lcsh:Infectious and parasitic diseasesPomphorhynchus laevisAcanthocephalaHost-Parasite InteractionsGammarus pulexSpecies Specificity<it>Gammarus pulex</it>Crustacea[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalslcsh:RC109-216[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyPomphorhynchus laevis;Gammarus pulex;intraspecific competition;parasite larval size;host behavioural manipulation;phototaxisIntraspecific competitionmedia_commonLarva[ SDE.BE ] Environmental Sciences/Biodiversity and EcologybiologyEcologyHost (biology)ResearchIntermediate hostPhototaxisbiology.organism_classificationGammarus pulex<it>Pomphorhynchus laevis</it>Infectious DiseasesLarvaPomphorhynchus laevisParasitology[SDE.BE]Environmental Sciences/Biodiversity and EcologyAcanthocephalaParasite larval size[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Serotoninergic Modulation of Phototactic Variability Underpins a Bet-Hedging Strategy in Drosophila melanogaster

2021

When organisms’ environmental conditions vary unpredictably in time, it can be advantageous for individuals to hedge their phenotypic bets. It has been shown that a bet-hedging strategy possibly underlies the high inter-individual diversity of phototactic choice in Drosophila melanogaster. This study shows that fruit flies from a population living in a boreal and relatively unpredictable climate have more variable variable phototactic biases than fruit flies from a more stable tropical climate, consistent with bet-hedging theory. We experimentally show that phototactic variability of D. melanogaster is regulated by the neurotransmitter serotonin (5-HT), which acts as a suppressor of the var…

Cognitive NeurosciencePopulationZoologyNeurosciences. Biological psychiatry. Neuropsychiatryadaptive strategies ; Drosophila melanogaster ; phototaxis ; serotonin ; variationSerotonergic03 medical and health sciencesBehavioral Neuroscienceadaptive strategies0302 clinical medicineTropical climatePhototaxisMelanogastereducation030304 developmental biologyOriginal Research0303 health scienceseducation.field_of_studybiologyfungibiology.organism_classificationSubarctic climateserotoninNeuropsychology and Physiological PsychologyDrosophila melanogasterphototaxisDrosophila melanogastervariation030217 neurology & neurosurgeryRC321-571Frontiers in Behavioral Neuroscience
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Trichromatic color vision in the salamander (Salamandra salamandra)

1995

Spectral sensitivity functions were measured between 334 nm and 683 nm in Salamandra salamandra by utilizing two behavioral reactions: the negative phototactic response, and the prey catching behavior elicited by a moving worm dummy. The action spectrum of the negative phototactic response revealed 3 pronounced maxima: at 360–400 nm, at 520–540 nm, and at 600–640 nm. In the range around 450 nm, there was a “reaction gap” where sensitivity could not be measured. The action spectrum of the prey catching behavior was entirely different: maximal sensitivity was found at 500 nm and at 570 nm. Between 500 nm and 334 nm sensitivity decreased continuously for about 1 log unit (Fig. 6).

biologyPhysiologybusiness.industryColor visionTrichromacybiology.organism_classificationBehavioral NeuroscienceOpticsSpectral sensitivitybiology.animalPhototaxisSalamanderAnimal Science and ZoologySalamandrabusinessEcology Evolution Behavior and SystematicsAction spectrumJournal of Comparative Physiology A
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Multidimensionality in host manipulation mimicked by serotonin injection.

2014

Manipulative parasites often alter the phenotype of their hosts along multiple dimensions. ‘Multidimensionality’ in host manipulation could consist in the simultaneous alteration of several physiological pathways independently of one another, or proceed from the disruption of some key physiological parameter, followed by a cascade of effects. We compared multidimensionality in ‘host manipulation’ between two closely related amphipods, Gammarus fossarum and Gammarus pulex, naturally and experimentally infected with Pomphorhynchus laevis (Acanthocephala), respectively. To that end, we calculated in each host–parasite association the effect size of the difference between infected and uninfect…

[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyamphipodsZoologyGeneral Biochemistry Genetics and Molecular BiologyHost-Parasite InteractionsAcanthocephalaPhototaxis[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisAnimalsAmphipoda[SDV.MP.PAR]Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologymultidimensionalityResearch ArticlesGeneral Environmental ScienceGeneral Immunology and MicrobiologybiologyEcologyHost (biology)General Medicinebiology.organism_classificationAttractionPhenotypeSerotonin Receptor AgonistsserotoninGammarus pulexPulexPhenotypeparasite manipulationPomphorhynchus laevisGeneral Agricultural and Biological SciencesAcanthocephala[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Behavioural and physiological effects of the trophically transmitted cestode parasite, Cyathocephalus truncatus, on its intermediate host, Gammarus p…

2007

SUMMARYSome parasites with complex life-cycles are able to manipulate the behaviour of their intermediate hosts in a way that increases their transmission to the next host. Gammarids infected by the tapeworm Cyathocephalus truncatus (Cestoda: Spathebothriidea) are known to be more predated by fish than uninfected ones, but potential behavioural manipulation by the parasite has never been investigated. In this study, we tested the hypothesis that C. truncatus is able to manipulate the behaviour of one of its intermediate hosts, Gammarus pulex (Crustacea: Amphipoda). To assess if any behavioural change was linked to other phenotypic alterations, we also measured the immunity of infected and u…

Male[ SDV.MP.PAR ] Life Sciences [q-bio]/Microbiology and Parasitology/ParasitologyAmphipodaCestodaZoologyBiologyHost-Parasite InteractionsPredationOxygen Consumption[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisPhototaxisAnimalsParasite hostingAmphipodacestodeSwimmingEnzyme Precursors[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyBehavior AnimalMonophenol MonooxygenaseHost (biology)EcologyIntermediate hostbiology.organism_classificationSurvival AnalysisimmunityGammarus pulexInfectious DiseasesCestodaAnimal Science and ZoologyParasitologypathogenic effectsCatechol OxidaseGammaridaebehavioural manipulationParasitology
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