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Data from: Slower environmental change hinders adaptation from standing genetic variation
负责人:
关键词:
Caenorhabditis elegans;Experimental evolution;standing genetic variation;Fitness;population genomics;statistical modeling;reaction norms;salt adaptation
DOI:
doi:10.5061/dryad.76n6f7c
摘要:
m standing genetic variation, adaptation at slower rates of environmental change may be impeded since the best genotypes at the most extreme environments can be lost duri
Data from: Can the environment have a genetic basis? a case study of seedling establishment in Arabidopsis thaliana
负责人:
关键词:
germination;habitat selection;habitat tracking;Arabidopsis thaliana;seed dormancy;seed dormancy Subject area: Molecular adaptation and selection;phenology;Molecular adaptation and selection
DOI:
doi:10.5061/dryad.6d13255
摘要:
of environmental conditions available, and seed dormancy increased the consistency of habitat selection. Strikingly, the post-germination environment affected fitness
Data from: Environmental adaptation contributes to gene polymorphism across the Arabidopsis thaliana genome
负责人:
关键词:
Arabidopsis thaliana;genome-wide polymorphism;environment;Genetic Variation
DOI:
doi:10.5061/dryad.q9p4s
摘要:
t genes with high environmental relevance are enriched in unknown function categories. These results suggest an important role for environmental factors
Data from: Environmental variation partitioned into separate heritable components
负责人:
关键词:
Genetic Variation;Phenotypic Plasticity;variation;quantitative genetics;drosophila melanogaster
DOI:
doi:10.5061/dryad.d8ts9
摘要:
t the traditional quantitative genetic view of environmental variation and genotype-by-environment interactions needs revisiting.
Data from: Light environment change induces differential expression of guppy opsins in a multi-generational evolution experiment
负责人:
Kranz, Alexandrea Megan
关键词:
gene expression opsin light environment visual system evolution experiment
DOI:
doi:10.5061/dryad.0d19278
摘要:
Light environments critically impact species that rely on vision to survive and reproduce. Animal visual systems must accommodate changes in light
Data from: Genetic variation in social environment construction influences the development of aggressive behavior in Drosophila melanogaster
负责人:
关键词:
social behavior;indirect genetic effects;gene-environment correlation;aggression;drosophila melanogaster
DOI:
doi:10.5061/dryad.gp3ng
摘要:
niche) construction. When genotypes differ in social environment-constructing behaviors, different genotypes are expected to experience different
Data from: Runaway coevolution: adaptation to heritable and nonheritable environments
负责人:
关键词:
population genetics;Models\/Simulations;Adaptation
DOI:
doi:10.5061/dryad.qs941
摘要:
s, the coadaptive process between genes and heritable environments is much faster than genetic adaptation to an abiotic non-heritable environment. The increased rate
Data from: Environmental stress does not increase the mean strength of selection
负责人:
关键词:
Mutation;Genetic Variation;drosophila melanogaster;environmental duress;natural selection
DOI:
doi:10.5061/dryad.8b5n18p
摘要:
d 20 inbred lines of Drosophila melanogaster to make repeated fitness measurements of the same genotypes in four different environments. This framework
Data from: Different genetic basis for ADH activity and plasticity in a novel alcohol environment for Drosophila melanogaster
负责人:
关键词:
DOI:
doi:10.5061/dryad.cnp5hqc2k
摘要:
ht change in novel environments is still unclear. Because much of gene expression can be environmentally influenced, each environment may trigger different
Data from: Dispersal propensity in Tetrahymena thermophila ciliates – a reaction norm perspective
负责人:
关键词:
Genetic Variation;Density-dependence;Tetrahymena thermophila;life-history evolution;Phenotypic Plasticity;condition-dependent dispersal;context-dependent dispersal
DOI:
doi:10.5061/dryad.2777k
摘要:
(G), environments (E) and their interaction (genotype and environment; G x E) each affects dispersal propensity is therefore instrumental for predicting

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