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Data from: Directional selection for flowering time leads to adaptive evolution in Raphanus raphanistrum (Wild radish)
负责人:
关键词:
nil;biomass;flowering time;wild radish;Evolution;flowering height;phenotypic resistance;Raphanus raphanistrum
DOI:
doi:10.5061/dryad.3j380
摘要:
for early maturity and three generations for late maturity. Phenology associated with flowering time and growth traits were measured. Our results demonstrate
Data from: The causes of selection on flowering time through male fitness in a hermaphroditic annual plant
负责人:
关键词:
paternity analysis;Brassica rapa;Life history;phenology;social selection;habitat choice;mate fecundity
DOI:
doi:10.5061/dryad.5g5rp
摘要:
Flowering is a key life history event whose timing almost certainly affects both male and female fitness, but tests of selection on flowering time
Data from: A collection of European sweet cherry phenology data for assessing climate change
负责人:
关键词:
Sweet cherry;flowering time;maturity;Prunus avium;1978 - 2015;climate change
DOI:
doi:10.5061/dryad.1d28m
摘要:
Professional and scientific networks built around the production of sweet cherry (Prunus avium L.) led to the collection of phenology data for a wide
Data from: Thank you for not flowering: conservation genetics and gene flow analysis of native and non-native populations of Fraxinus (Oleaceae
负责人:
关键词:
SSR Genotypes;Fraxinus
DOI:
doi:10.5061/dryad.55c2f
摘要:
the flowering phenology of the mother trees and genotyped with six microsatellite loci in progeny arrays from 132 native and plantation trees (1493 seeds) and 444 potential
Data from: Reproductive strategy of the polyploid species Varronia curassavica jacq. in restinga environment
负责人:
关键词:
genetic conservation;Varronia curassavica;phenology;microsatellite;medicinal plant;outcrossing rate Subject area: Reproductive strategies and kinship analysis;Atlantic Forest
DOI:
doi:10.5061/dryad.44ns0
摘要:
. This was accomplished by combining phenological and genetic data. Every two weeks over a period of two years, we measured flowering and fruiting phenology to evaluate
Data from: Artificial selection reveals high genetic variation in phenology at the trailing edge of a species range
负责人:
关键词:
Ecology: evolutionary;climate change;Erythranthe cardinalis;Selection: artificial;Genetics: quantitative;Biogeography;Geographic ranges;Mimulus cardinalis;Adaptation
DOI:
doi:10.5061/dryad.tc967
摘要:
for adaptation. Genetic adaptations to climate change often involve shifts in the timing of phenological events such as flowering. If populations at the edge
Data from: Investigation of the geographic scale of adaptive phenological variation and its underlying genetics in Arabidopsis thaliana
负责人:
关键词:
Arabidopsis thaliana;selection;Ecology;flowering time;Adaptation
DOI:
doi:10.5061/dryad.07s25
摘要:
) ecologically for 42 variables. Up to 63% of phenological variation could be explained by neutral genetic diversity. The remaining phenological variation
Data from: Foraging strategies of generalist and specialist Old World nectar bats in response to temporally variable floral resources
负责人:
关键词:
diet switching;pollination;steady-state resources;Pteropodidae;phenology;big-bang resources;chiropterophily
DOI:
doi:10.5061/dryad.6bg67
摘要:
. Moreover, these findings demonstrate how plant flowering phenology and pollinator diet breadth can shape the frequency and constancy of pollinator
Data from: ENSO and frost co-determine decade-long temporal variation in flower and seed production in a subtropical rain forest
负责人:
关键词:
Hoya carnosa;Melastoma candidum;Pileostegia viburnoide;Aeschynanthus acuminatus;Cinnamomum micranthum;Clematis crassifolia;Smilax spp.;Castanopsis spp.;Limlia uraiana;extreme weather events;Mussaenda pubescens;Helicia formosana;Lasianthus spp.;frost;Pothos chinensis;Pachycentria formosana;Prunus phaeosticta;Tricalysia dubia;Elaeocarpus japonicus;reproductive ecology;Elatostema lineolatum var. majus;Dischidia formosana Elaeocarpus japonicus;Cyclobalanopsis gilva;Glochidion acuminatum;Myrsine seguinii;Diospyros morrisiana;Miscanthus floridulus;Schefflera octophylla;Meliosma squamulata;Blastus cochinchinensis;Pyrenaria shinkoensis;Lagerstroemia subcostata;phylogenetic signal;Machilus zuihoensis;Engelhardtia roxburghiana;Cryptocarya chinensis;Pericampylus formosanus;Machilus thunbergii;Eurya loquaiana;Dischidia formosana;Vaccinium emarginatum;Fushan Forest Dynamics Plot;Symplocos glauca;Rubus pyrifolius;Ardisia quinquegona;Psychotria serpens;El Ni?o Southern Oscillation;Maesa japonica;phenology;Litsea acuminata;Ampelopsis cantoniensis;Maesa perlaria var. formosana;Cyclobalanopsis longinux;Randia cochinchinensis;Michelia compressa;Cleyera japonica;Symplocos theophrastifolia
DOI:
doi:10.5061/dryad.75v7c
摘要:
and seed production of several species. In particular, we detected phylogenetic signals in the relationships between phenological responses of flowering production

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