Search results for "fluctuating environment"

showing 5 items of 5 documents

Experimental evolution in fluctuating environments: tolerance measurements at constant temperatures incorrectly predict the ability to tolerate fluct…

2015

The ability to predict the consequences of fluctuating environments on species distribution and extinction often relies on determining the tolerances of species or genotypes in different constant environments (i.e. determining tolerance curves). However, very little is known about the suitability of measurements made in constant environments to predict the level of adaptation to rapidly fluctuating environments. To explore this question, we used bacterial clones adapted to constant or fluctuating temperatures and found that measurements across a range of constant temperatures did not indicate any adaptation to fluctuating temperatures. However, adaptation to fluctuating temperatures was onl…

Experimental evolutionPhenotypic plasticityExtinctionEcologyClimate ChangeSpecies distributionTemperatureThermal fluctuationsfluctuating environmentsEnvironmentBiologyAtmospheric sciencesAdaptation PhysiologicalBiological Evolutionphenotypic plasticityG by E interactiontemperature adaptation13. Climate actionta1181AdaptationConstant (mathematics)bacteriaSerratia marcescensEcology Evolution Behavior and SystematicsJournal of Evolutionary Biology
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Rapid evolutionary adaptation to elevated salt concentrations in pathogenic freshwater bacteria Serratia marcescens.

2014

Rapid evolutionary adaptions to new and previously detrimental environmental conditions can increase the risk of invasion by novel pathogens. We tested this hypothesis with a 133-day-long evolutionary experiment studying the evolution of the pathogenic Serratia marcescens bacterium at salinity niche boundary and in fluctuating conditions. We found that S. marcescens evolved at harsh (80 g/L) and extreme (100 g/L) salt conditions had clearly improved salt tolerance than those evolved in the other three treatments (ancestral conditions, nonsaline conditions, and fluctuating salt conditions). Evolutionary theories suggest that fastest evolutionary changes could be observed in intermediate sele…

SELECTIONVARIABLE ENVIRONMENTSPREVENT EXTINCTIONniche expansionPopulationNicheGeneralist and specialist speciespathogen invasionstolerance curve14. Life underwaterexperimental evolutioneducationTEMPERATUREEcology Evolution Behavior and SystematicsNature and Landscape ConservationOriginal ResearchExperimental evolutioneducation.field_of_studyEcologybiologyEcologyfluctuating environmentharsh environmentbiology.organism_classificationTEMPORALLY VARYING ENVIRONMENT6. Clean waterSalinityDROSOPHILAExperimental evolutionESCHERICHIA-COLISerratia marcescens1181 Ecology evolutionary biologyPOPULATIONSVIRULENCEta1181AdaptationGENERALISTSBacteriaEcology and evolution
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Experimental evolution of evolutionary potential in fluctuating environments

2023

Variation is the raw material for evolution. Evolutionary potential is determined by the amount of genetic variation, but evolution can also alter the visibility of genetic variation to natural selection. Fluctuating environments are suggested to maintain genetic variation but they can also affect environmental variance, and thus, the visibility of genetic variation to natural selection. However, experimental studies testing these ideas are relatively scarce. In order to determine differences in evolutionary potential we quantified variance attributable to population, genotype and environment for populations of the bacterium Serratia marcescens. These populations had been experimentally evo…

luonnonvalintapopulaatiogenetiikkagenetic variationevoluutioexperimental evolutionfluctuating environmentsbet-hedginggeneettinen muunteluympäristönmuutoksetEcology Evolution Behavior and SystematicsJournal of Evolutionary Biology
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Experimental approaches for testing if tolerance curves are useful for predicting fitness in fluctuating environments

2017

Most experimental studies on adaptation to stressful environments are performed under conditions that are rather constant and rarely ecologically relevant. Fluctuations in natural environmental conditions are ubiquitous and include for example variation in intensity and duration of temperature, droughts, parasite loads, and availability of nutrients, predators and competitors. The frequency and amplitude of many of these fluctuations are expected to increase with climate change. Tolerance curves are often used to describe fitness components across environmental gradients. Such curves can be obtained by assessing performance in a range of constant environmental conditions. In this perspectiv…

0106 biological sciences0301 basic medicineSpecies distributionlcsh:EvolutionClimate changeEnvironmental stressBiology010603 evolutionary biology01 natural sciencesEnvironmental stress03 medical and health sciencesAbundance (ecology)lcsh:QH540-549.5Tolerance curveslcsh:QH359-425Range (statistics)EconometricsClimate changeConstant and fluctuating environmentsEcology Evolution Behavior and SystematicssietokykysopeutuminenEcologyEcologyconstant and fluctuating environmentsBiotailmastonmuutoksetenvironmental stressSpecies distributionsconstant and fluctuating environmentstolerance curvesclimate changespecies distributions030104 developmental biologyta1181lcsh:EcologyAdaptationConstant (mathematics)ympäristönmuutokset
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Data from: Effects of acclimation time and epigenetic mechanisms on growth of Neurospora in fluctuating environments

2018

Reaction norms or tolerance curves have often been used to predict how organisms deal with fluctuating environments. A potential drawback is that reaction norms measured in different constant environments may not capture all aspects of organismal responses to fluctuating environments. We examined growth of the filamentous fungus Neurospora crassa in fluctuating temperatures and tested if growth in fluctuating temperatures can be explained simply by growth in different constant temperatures or if more complex models are needed. In addition, as previous studies on fluctuating environments have revealed that past temperatures that organisms have experienced can affect their response to current…

medicine and health careNeurospora crassaepigeneticsfluctuating environmentfungiMedicineLife sciences
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