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13 results for “Selection hypothesis”
Data and Code: No support for the genetic hypothesis of the Black-white achievement gap using polygenic scores and tests for divergent selection
<p>Data and Code for article "No support for the genetic hypothesis of the Black-white achievement gap using polygenic scores and tests for divergent selection"</p>
Data from: The selective advantage of a mast-flowering behavior in Veratrum album subsp. oxysepalum: Implications of the predator satiation hypothesis
<p><strong><span>Premise</span></strong><span>: The synchronous highly variable flower or seed production among years within a population– i.e., masting – has been reported in numerous perennial plants. Although ecological advantages of masting are recognized as the enhancement of pollination efficiency and/or escape from predator attack, little is known about the degree of these advantages and the variation in masting behavior among populations of conspecific plants.</span></p> <p><strong><span>Methods</span></strong><span>: </span><span>We observed flowering ramet density and reproductive success (fruit-set success and herbivorous damage) of a perennial herb, <em>Veratrum</em> <em>album</em> subsp. <em>oxysepalum</em>, across six lowland and six alpine populations in northern Japan during 2–3 years. We then analyzed the relationship between floral density and reproductive success to clarify the ecological significance of mast flowering. Furthermore, flowering intervals of individual plants were estimated by counting annual scars on rhizomes.</span></p> <p><strong><span>Results</span></strong><span>: </span><span>Mast flowering was observed in most populations, but flowering intervals of individual plants were shorter in the alpine populations compared with the lowland populations. Floral damage by stem borers (dipteran larvae) and seed predation by lepidopteran larvae were intense in the lowland populations. The seed production of individual ramets increased with higher floral density owing to the effective avoidance of floral-stem damage and seed predation. Although stem borers were absent in alpine habitat, seed predation decreased with higher floral density also in the alpine populations. Pollination success was independent of floral density in both the alpine and lowland populations. </span></p> <p><strong><span>Conclusions</span></strong><span>: </span><span>These results strongly support the predator satiation hypothesis for the mast flowering behavior in this species.</span></p>
Data from: The selective advantage of a mast-flowering behavior in Veratrum album subsp. oxysepalum: Implications of the predator satiation hypothesis
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Data from: Mimetic females do not bear reproductive costs: Challenging the sexual selection hypothesis in female-limited mimetic polymorphism in butterflies
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Data from: Clonality, genetic diversity, and support for the diversifying selection hypothesis, in natural populations of a flower-living yeast
Vast amounts of effort have been devoted to investigate patterns of genetic diversity and structuring in plants and animals, but similar information is scarce for organisms of other kingdoms. The study of the genetic structure of natural populations of wild yeasts can provide insights on the ecological and genetic correlates of clonality, and on the generality of recent hypotheses postulating that microbial populations lack the potential for genetic divergence and allopatric speciation. Ninety-one isolates of the flower-living yeast Metschnikowia gruessii from southeastern Spain were DNA fingerprinted using AFLP markers. Genetic diversity and structuring was investigated with band-based methods and model- and nonmodel-based clustering. Linkage disequilibrium tests were used to assess reproduction mode. Microsite-dependent, diversifying selection was tested by comparing genetic characteristics of isolates from bumble bee vectors and different floral microsites. AFLP polymorphism (91%) and genotypic diversity were very high. Genetic diversity was spatially structured, as shown by AMOVA (Φst = 0.155) and clustering. The null hypothesis of random mating was rejected, clonality seeming the prevailing reproductive mode in the populations studied. Genetic diversity of isolates declined from bumble bee mouthparths to floral microsites, and frequency of five AFLP markers varied significantly across floral microsites, thus supporting the hypothesis of diversifying selection on clonal lineages. Wild populations of clonal fungal microbes can exhibit levels of genetic diversity and spatial structuring that are not singularly different from those shown by sexually reproducing plants or animals. Microsite-dependent, divergent selection can maintain high local and regional genetic diversity in microbial populations despite extensive clonality.
Body size and digestive system shape resource selection by ungulates: a cross-taxa test of the Forage Maturation Hypothesis
<p>The Forage Maturation Hypothesis (FMH) states that energy intake for ungulates is maximized when forage biomass is at intermediate levels. Nevertheless, metabolic allometry and different digestive systems suggest that resource selection should vary across ungulate species. By combining GPS relocations with remotely-sensed data on forage characteristics and surface water, we quantified the effect of body size and digestive system in determining movements of 30 populations of hindgut fermenters (equids) and ruminants across biomes. Selection for intermediate forage biomass was negatively related to body size, regardless of the digestive system. Selection for proximity to surface water was stronger for equids relative to ruminants, regardless of body size. To be more generalizable, we suggest that the FMH explicitly incorporate contingencies in body size and digestive system, with small-bodied ruminants selecting more strongly for potential energy intake, and hindgut fermenters selecting more strongly for surface water.</p>
Data from: Clonality, genetic diversity, and support for the diversifying selection hypothesis, in natural populations of a flower-living yeast
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Body size and digestive system shape resource selection by ungulates: a cross-taxa test of the Forage Maturation Hypothesis
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Data from: Evolution of female multiple mating: a quantitative model of the "sexually-selected sperm" hypothesis
Explaining the evolution and maintenance of polyandry remains a key challenge in evolutionary ecology. One appealing explanation is the sexually-selected sperm (SSS) hypothesis, which proposes that polyandry evolves due to indirect selection stemming from positive genetic covariance with male fertilization efficiency, and hence with a male's success in post-copulatory competition for paternity. However, the SSS hypothesis relies on verbal analogy with 'sexy-son' models explaining co-evolution of female preferences for male displays, and explicit models that validate the basic SSS principle are surprisingly lacking. We developed analogous genetically-explicit individual-based models describing the SSS and 'sexy-son' processes. We show that the analogy between the two is only partly valid, such that the genetic correlation arising between polyandry and fertilization efficiency is generally smaller than that arising between preference and display, resulting in less reliable co-evolution. Importantly, indirect selection was too weak to cause polyandry to evolve in the presence of negative direct selection. Negatively-biased mutations on fertilization efficiency did not generally rescue runaway evolution of polyandry unless realized fertilization was highly skewed towards a single male, and co-evolution was even weaker given random mating-order effects on fertilization. Our models suggest that the SSS process is, on its own, unlikely to generally explain the evolution of polyandry.
Data from: A test of the hypothesis that correlational selection generates genetic correlations
Theory predicts that correlational selection on two traits will cause the major axis of the bivariate G matrix to orient itself in the same direction as the correlational selection gradient. Two testable predictions follow from this: for a given pair of traits (1) the sign of correlational selection gradient should be the same as that of the genetic correlation, and (2) the correlational selection gradient should be positively correlated with the value of the genetic correlation. We test this hypothesis with a meta-analysis utilizing empirical estimates of correlational selection gradients and measures of the correlation between the two focal traits. Our results are consistent with both predictions and hence support the underlying hypothesis that correlational selection generates a genetic correlation between the two traits and hence orients the bivariate G matrix.
Data from: Evolution of female multiple mating: a quantitative model of the "sexually-selected sperm" hypothesis
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Data from: Evaluating the postcopulatory sexual selection hypothesis for genital evolution reveals evidence for pleiotropic harm exerted by the male genital spines of Drosophila ananassae
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Data from: A test of the hypothesis that correlational selection generates genetic correlations
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