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24 results for “polygenic adaptation”

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zenodo40/100

Data From: Powerful detection of polygenic selection and environmental adaptation in US beef cattle

<p>GEMMA output containing summary statistics for generation proxy selection mapping (GPSM) and environmental GWAS (envGWAS) selection analyses from&nbsp;<br> Rowan et al. &quot;Powerful detection of polygenic selection and environmental adaptation in US beef cattle&quot; 2021<br> https://doi.org/10.1101/2020.03.11.988121&nbsp; &nbsp;&nbsp;</p> <p>File names identify the analysis run, for example<br> &quot;Gelbvieh_envgwas_desert_summary_stats.txt.gz&quot;<br> Is the Gelbvieh dataset analyzed using the Desert ecoregion as the dependent variable&nbsp;<br> in a univariate envGWAS model.&nbsp;</p> <p>Files are formated according to GEMMA output.</p>

opencc-by-4.0Jan 2021View details →
zenodo40/100

Figure 2 in Adaptations in wild radish (Raphanus raphanistrum) flowering time, Part 1: Individual-based modeling of a polygenic trait

Figure 2. The relationship between the number of semidominant larger M1 alleles and days to first flower (DFF), needed to model the long-day selections. Note that six smallereffect M2 genes will add another 0 to 18 days to DFF. If each M1 allele added the same amount in the long-day selections, the relationship would be linear.

opencc-by-4.0Jan 2024View details →
zenodo40/100

Figure 1 in Adaptations in wild radish (Raphanus raphanistrum) flowering time, Part 1: Individual-based modeling of a polygenic trait

Figure 1. Goodness of fit of the modeled data (A) when compared with the recorded glasshouse data (B). Graphs show cumulative days to first flowering (DFF) adaptations in Raphanus raphanistrum populations as a result of repeated early and late days to flowering selection. In both graphs, the basal population is the black solid line in the center,the darker lines are the matched generations of early flowering (EF1, EF3, FE4,and EF5; colored orange), and late flowering (LF2 and LF3; colored purple), with and late flowering (LF2 and LF3),with the two unmatched generations (EF2 and LF2) shown in lighter tones.The far-left population (early flowering EF5) displays very little phenotypic variability, whereas the far-right population (late flowering 3) is very diverse.

opencc-by-4.0Jan 2024View details →
dryad40/100

Data From: Polygenic basis and the role of genome duplication in adaptation to similar selective environments

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publicSep 2021View details →
zenodo36/100

Dataset for Rapid polygenic adaptation in a wild population of ash trees under a novel fungal epidemic

<p><strong>Dataset for Rapid polygenic adaptation in a wild population of ash trees under a novel fungal epidemic</strong></p> <p>Code used for plotting of main figures and quantifying allelic shifts attached in the GitHub repository CareyMetheringham/MardenPark. Additional files for analysis of GEBV shifts between adults and juveniles, estimation of heritability, trends in green up and simulations of allelic shifts included as:</p> <ul> <li>GEBV-regression.Rmd</li> <li>heritabilityEst.R</li> <li>GreeningAnalysis.R</li> <li>Simulated_selection_analysis.Rmd</li> <li>Distinguishing the effects of selection from genetic drift.pdf</li> </ul> <p>Data files:</p> <ul> <li>S1 - phenotypic measurements for adult and juvenile trees</li> <li>S2 - Effect sizes for SNPs used to calculate GEBV</li> <li>S3 - Allelic frequencies of sites used to calculate GEBV</li> <li>related_trees.csv - Predicted parentage of trees</li> <li>gebv_model_df.csv - Data used for greenup calculations in&nbsp;GreeningAnalysis.R</li> <li>maf1.pass2.miss25.snps.only.LD.vcf - Filtered file of high MAF SNPs used for parentage estimation</li> <li>unlinked_sites.csv - unlinked sites used in GEBV-regression.Rmd</li> <li>ebv_table_10000_250 - table of estimated breeding values in field trial populatio, used for heritability estimation</li> <li>MP_eefects_MIA_and_MAA.csv - Data for plotting Figure 3 - Estimated effect size of the major and minor allele, plus standard error on the estimate</li> </ul>

opencc-by-4.0Mar 2024View details →
dryad36/100

Parallel polygenic urban adaptation despite high gene flow in a coastal marine invertebrate

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publicOct 2025View details →
dryad32/100

Polygenic basis for adaptive morphological variation in a threatened Aotearoa | New Zealand bird, the hihi (Notiomystis cincta)

<p>To predict if a threatened species can adapt to changing selective pressures, it is crucial to understand the genetic basis of adaptive traits, especially in species historically affected by severe bottlenecks. We estimated the heritability of three hihi (<em>Notiomystis cincta</em>) morphological traits known to be under selection: nestling tarsus length, body mass and head-bill length, using 523 individuals and 39,699 single nucleotide polymorphisms (SNPs) from a 50K Affymetrix SNP chip. We then examined the genetic architecture of the traits via chromosome partitioning analyses and genome-wide association scans (GWAS). Heritabilities estimated using pedigree relatedness or genomic relatedness were low. For tarsus length, the proportion of genetic variance explained by each chromosome was positively correlated with its size, and more than one chromosome explained significant variation for body mass and head-bill length. Finally, GWAS analyses suggested many loci of small effect contributing to trait variation for all three traits, although one locus (a SNP within an intron of the transcription factor HEY2) was tentatively associated with tarsus length. Our findings suggest a polygenic nature for the morphological traits, with many small effect size loci contributing to the majority of the variation, similar to results from many other wild populations. However, the small effective population size, polygenic architecture and already low heritabilities suggest that both the total response and rate of response to selection are likely to be limited in hihi.</p>

opencc-zeroAug 2020View details →
dryad32/100

Data from: Polygenic adaptation: from sweeps to subtle frequency shifts

Evolutionary theory has produced two conflicting paradigms for the adaptation of a polygenic trait. While population genetics views adaptation as a sequence of selective sweeps at single loci underlying the trait, quantitative genetics posits a collective response, where phenotypic adaptation results from subtle allele frequency shifts at many loci. Yet, a synthesis of these views is largely missing and the population genetic factors that favor each scenario are not well understood. Here, we study the architecture of adaptation of a binary polygenic trait (such as resistance) with negative epistasis among the loci of its basis. The genetic structure of this trait allows for a full range of potential architectures of adaptation, ranging from sweeps to small frequency shifts. By combining computer simulations and a newly devised analytical framework based on Yule branching processes, we gain a detailed understanding of the adaptation dynamics for this trait. Our key analytical result is an expression for the joint distribution of mutant alleles at the end of the adaptive phase. This distribution characterizes the polygenic pattern of adaptation at the underlying genotype when phenotypic adaptation has been accomplished. We find that a single compound parameter, the population-scaled background mutation rate $\Theta_{bg}$, explains the main differences among these patterns. For a focal locus, $\Theta_{bg}$ measures the mutation rate at all redundant loci in its genetic background that offer alternative ways for adaptation. For adaptation starting from mutation-selection-drift balance, we observe different patterns in three parameter regions. Adaptation proceeds by sweeps for small $\Theta_{bg} \lesssim 0.1$, while small polygenic allele frequency shifts require large $\Theta_{bg} \gtrsim 100$. In the large intermediate regime, we observe a heterogeneous pattern of partial sweeps at several interacting loci.

opencc-zeroDec 2018View details →
dryad32/100

Data from: Recent natural selection causes adaptive evolution of an avian polygenic trait

We used extensive data from a long-term study of great tits (Parus major) in the United Kingdom and Netherlands to better understand how genetic signatures of selection translate into variation in fitness and phenotypes. We found that genomic regions under differential selection contained candidate genes for bill morphology and used genetic architecture analyses to confirm that these genes, especially the collagen gene COL4A5, explained variation in bill length. COL4A5 variation was associated with reproductive success, which, combined with spatiotemporal patterns of bill length, suggested ongoing selection for longer bills in the United Kingdom. Last, bill length and COL4A5 variation were associated with usage of feeders, suggesting that longer bills may have evolved in the United Kingdom as a response to supplementary feeding.

opencc-zeroDec 2016View details →
dryad32/100

Data from: Genetic redundancy fuels polygenic adaptation in Drosophila

The genetic architecture of adaptive traits is of key importance to predict evolutionary responses. Most adaptive traits are polygenic—i.e., result from selection on a large number of genetic loci—but most molecularly characterized traits have a simple genetic basis. This discrepancy is best explained by the difficulty in detecting small allele frequency changes (AFCs) across many contributing loci. To resolve this, we use laboratory natural selection to detect signatures for selective sweeps and polygenic adaptation. We exposed 10 replicates of a Drosophila simulans population to a new temperature regime and uncovered a polygenic architecture of an adaptive trait with high genetic redundancy among beneficial alleles. We observed convergent responses for several phenotypes—e.g., fitness, metabolic rate, and fat content—and a strong polygenic response (99 selected alleles; mean s = 0.059). However, each of these selected alleles increased in frequency only in a subset of the evolving replicates. We discerned different evolutionary paradigms based on the heterogeneous genomic patterns among replicates. Redundancy and quantitative trait (QT) paradigms fitted the experimental data better than simulations assuming independent selective sweeps. Our results show that natural D. simulans populations harbor a vast reservoir of adaptive variation facilitating rapid evolutionary responses using multiple alternative genetic pathways converging at a new phenotypic optimum. This key property of beneficial alleles requires the modification of testing strategies in natural populations beyond the search for convergence on the molecular level.

opencc-zeroDec 2018View details →
dryad32/100

Data from: Polygenic adaptation: from sweeps to subtle frequency shifts

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publicMar 2019View details →
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Polygenic basis for adaptive morphological variation in a threatened Aotearoa | New Zealand bird, the hihi (Notiomystis cincta)

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publicAug 2020View details →
dryad32/100

Data from: Recent natural selection causes adaptive evolution of an avian polygenic trait

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publicOct 2018View details →
dryad32/100

Data from: Genetic redundancy fuels polygenic adaptation in Drosophila

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publicFeb 2019View details →
dryad32/100

Data from: Landscape genomics of Colorado potato beetle provides evidence of polygenic adaptation to insecticides

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publicAug 2017View details →
dryad28/100

Data from: Reduced signal for polygenic adaptation of height in UK Biobank

Several recent papers have reported strong signals of selection on European polygenic height scores. These analyses used height effect estimates from the GIANT consortium and replication studies. Here, we describe a new analysis based on the the UK Biobank (UKB), a large, independent dataset. We find that the signals of selection using UKB effect estimates are strongly attenuated or absent. We also provide evidence that previous analyses were confounded by population stratification. Therefore, the conclusion of strong polygenic adaptation now lacks support. Moreover, these discrepancies highlight (1) that methods for correcting for population stratification in GWAS may not always be sufficient for polygenic trait analyses, and (2) that claims of differences in polygenic scores between populations should be treated with caution until these issues are better understood.

opencc-zeroDec 2018View details →
dryad28/100

Data from: Signatures of polygenic adaptation associated with climate across the range of a threatened fish species with high genetic connectivity

Adaptive differences across species' ranges can have important implications for population persistence and conservation management decisions. Despite advances in genomic technologies, detecting adaptive variation in natural populations remains challenging. Key challenges in gene-environment association studies involve distinguishing the effects of drift from those of selection, and identifying subtle signatures of polygenic adaptation. We used paired-end restriction-site associated-DNA sequencing data (6605 biallelic single nucleotide polymorphisms; SNPs) to examine population structure and test for signatures of adaptation across the geographic range of an iconic Australian endemic freshwater fish species, the Murray cod Maccullochella peelii. Two univariate gene-association methods identified 61 genomic regions associated with climate variation. We also tested for subtle signatures of polygenic adaptation using a multivariate method (redundancy analysis; RDA). The RDA analysis suggested that climate (temperature- and precipitation-related variables) and geography had similar magnitudes of effect in shaping the distribution of SNP genotypes across the sampled range of Murray cod. Although there was poor agreement among the candidate SNPs identified by the univariate methods, the top 5% of SNPs contributing to significant RDA axes included 67% of the SNPs identified by univariate methods. We discuss the potential implications of our findings for the management of Murray cod and other species generally, particularly in relation to informing conservation actions such as translocations to improve evolutionary resilience of natural populations. Our results highlight the value of using a combination of different approaches, including polygenic methods, when testing for signatures of adaptation in landscape genomics studies.

opencc-zeroDec 2016View details →
dryad28/100

Data from: Polygenic adaptation on height is overestimated due to uncorrected stratification in genome-wide association studies

Genetic predictions of height differ among human populations and these differences have been interpreted as evidence of polygenic adaptation. These differences were first detected using SNPs genome-wide significantly associated with height, and shown to grow stronger when large numbers of sub-significant SNPs were included, leading to excitement about the prospect of analyzing large fractions of the genome to detect polygenic adaptation for multiple traits. Previous studies of height have been based on SNP effect size measurements in the GIANT Consortium meta-analysis. Here we repeat the analyses in the UK Biobank, a much more homogeneously designed study. We show that polygenic adaptation signals based on large numbers of SNPs below genome-wide significance are extremely sensitive to biases due to uncorrected population structure. More generally, our results imply that typical constructions of polygenic scores are sensitive to population structure and that population-level differences should be interpreted with caution.

opencc-zeroDec 2018View details →
dryad28/100

Data from: Signatures of polygenic adaptation associated with climate across the range of a threatened fish species with high genetic connectivity

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publicSep 2017View details →
dryad28/100

Data from: Polygenic adaptation on height is overestimated due to uncorrected stratification in genome-wide association studies

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publicMar 2019View details →

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