Search results for "Thermal adaptation"

showing 4 items of 4 documents

Effects of overabundant nitrate and warmer temperatures on charophytes: The roles of plasticity and local adaptation

2018

Global change effects, such as warming and increases in nitrogen loading, alter vulnerable Mediterranean aquatic systems, and charophytes can be one of the most affected groups. We addressed the possible interaction between these factors on two populations of the cosmopolitan charophytes Chara hispida and Chara vulgaris. Populations were taken from two different environments, a nitrate-poor mountain lake and a nitrate-rich Mediterranean coastal spring. The laboratory experiment had a 2 × 2 factorial design based on two nitrate levels (similar to and double the local conditions) and two temperatures. Increased temperatures favoured the growth of the four populations, but an increase in nitra…

Charophyte stoichiometry0106 biological sciencesMediterranean climatePhenotypic plasticityPlant ScienceNitrate reactive normsAquatic Science010603 evolutionary biology01 natural scienceschemistry.chemical_compoundNitrate pollutionMacroalgaeNitrateSemi-arid regionEcosystemLocal adaptationPioneer speciesbiologyEcotypeEcology010604 marine biology & hydrobiologyAquatic ecosystembiology.organism_classificationChara vulgarisThermal adaptationchemistryAquatic Botany
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Variation in spawning time promotes genetic variability in population responses to environmental change in a marine fish.

2015

Common-garden experiments suggest that the response of Atlantic cod larvae to temperature differs among populations that spawn at different times of year. Populations appear to be adapted to the temperatures experienced during the larval stage at a small spatial scale, despite a lack of physical barriers to gene flow.

Environmental changePhysiologyPopulationManagement Monitoring Policy and LawBiologythermal adaptationGenetic variation14. Life underwaterGenetic variabilityGene–environment interactioneducationcommon-garden experimentNature and Landscape Conservationeducation.field_of_studyPhenotypic plasticityEcologyEcological Modelingfungiclimate changeGadus morhua13. Climate actionAtlantic codSpatial ecologySpatial variabilitygenotype-by-environment interactionResearch ArticleConservation physiology
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Cytosine methylation patterns suggest a role of methylation in plastic and adaptive responses to temperature in European grayling (Thymallus thymallu…

2020

Temperature is a key environmental parameter affecting both the phenotypes and distributions of organisms, particularly ectotherms. Rapid organismal responses to thermal environmental changes have been described for several ectotherms; however, the underlying molecular mechanisms often remain unclear. Here, we studied whole genome cytosine methylation patterns of European grayling (Thymallus thymallus) embryos from five populations with contemporary adaptations of early life history traits at either 'colder' or 'warmer' spawning grounds. We reared fish embryos in a common garden experiment using two temperatures that resembled the 'colder' and 'warmer' conditions of the natal natural enviro…

0301 basic medicineCancer ResearchDATABASEsalmonidPopulationCytosine methylationSNPepigenetic variationCytosine03 medical and health sciences0302 clinical medicineINTRAGENIC DNA METHYLATIONthermal adaptationPHENOTYPIC PLASTICITYAnimalsADAPTATIONeducationMolecular BiologyGENE-EXPRESSIONLocal adaptationeducation.field_of_studyPhenotypic plasticitypromoterCLIMATE-CHANGEbiologyTemperatureGenetic VariationDNA Methylationbiology.organism_classificationThymallusEVOLUTIONEuropean graylingINSIGHTS030104 developmental biologyCpG siteEvolutionary biologydevelopmental plasticity030220 oncology & carcinogenesisEctotherm1181 Ecology evolutionary biologyDNA methylationTHERMAL PLASTICITYtranscriptionSalmonidaeResearch PaperEpigenetics
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Inducing Cold-Sensitivity in the Frigophilic Fly Drosophila montana by RNAi

2016

The work was supported by CNPq (Fellowship to FMV) and a NERC Studentship to DJP. Cold acclimation is a critical physiological adaptation for coping with seasonal cold. By increasing their cold tolerance individuals can remain active for longer at the onset of winter and can recover more quickly from a cold shock. In insects, despite many physiological studies, little is known about the genetic basis of cold acclimation. Recently, transcriptomic analyses in Drosophila virilis and D.montana revealed candidate genes for cold acclimation by identifying genes upregulated during exposure to cold. Here, we test the role of myo-inositol-1-phosphate synthase (Inos), in cold tolerance in D. montana …

cold-sensitivityQH301 Biologycold acclimationselviytyminenlcsh:Rfungilcsh:MedicineQH426 Geneticscold toleranceseasonal coldThermal adaptationQH301RNAitalvihyönteisetlcsh:Qlcsh:ScienceDrosophiliaQH426
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