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MULTIPLE MODES OF SPECIATION INVOLVED IN THE PARALLEL EVOLUTION OF SYMPATRIC MORPHOTYPES OF LAKE WHITEFISH (COREGONUS CLUPEAFORMIS, SALMONIDAE).湖白鲑(Coregonus clupeaformis,鲑科)同域形态型平行进化中涉及的多种物种形成模式。
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GENETIC DIVERGENCE UNDER UNIFORM SELECTION. I. SIMILARITY AMONG POPULATIONS OF DROSOPHILA MELANOGASTER IN THEIR RESPONSES TO ARTIFICIAL SELECTION FOR MODIFIERS OF ci.均匀选择下的遗传分化。I. 黑腹果蝇群体对 ci 修饰因子人工选择反应的相似性
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CAN UNIFORM SELECTION RETARD RANDOM GENETIC DIVERGENCE BETWEEN ISOLATED CONSPECIFIC POPULATIONS?均匀选择能否延缓隔离同种群体之间的随机遗传分化?
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Population structure and local selection yield high genomic variation in Mimulus guttatus.种群结构和局部选择导致沟酸浆属植物具有高度的基因组变异。
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Selfish evolution of cytonuclear hybrid incompatibility in Mimulus.沟酸浆属细胞核质杂种不亲和性的自私进化
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Reconciling Differences in Pool-GWAS Between Populations: A Case Study of Female Abdominal Pigmentation in Drosophila melanogaster.调和不同人群中群体全基因组关联研究的差异:以黑腹果蝇雌性腹部色素沉着为例
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开花时间的基因组结构在……中随空间和时间而变化。 (原文句末不完整,推测是省略了某个具体范围)

The Genomic Architecture of Flowering Time Varies Across Space and Time in .

作者信息

Monnahan Patrick J, Kelly John K

机构信息

Department of Ecology and Evolutionary Biology, University of Kansas, Lawrence, Kansas 66045

Department of Ecology and Evolutionary Biology, University of Kansas, Lawrence, Kansas 66045.

出版信息

Genetics. 2017 Jul;206(3):1621-1635. doi: 10.1534/genetics.117.201483. Epub 2017 Apr 28.

DOI:10.1534/genetics.117.201483
PMID:28455350
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5500155/
Abstract

The degree to which genomic architecture varies across space and time is central to the evolution of genomes in response to natural selection. Bulked-segregant mapping combined with pooled sequencing provides an efficient means to estimate the effect of genetic variants on quantitative traits. We develop a novel likelihood framework to identify segregating variation within multiple populations and generations while accommodating estimation error on a sample- and SNP-specific basis. We use this method to map loci for flowering time within natural populations of , collecting the early- and late-flowering plants from each of three neighboring populations and two consecutive generations. Structural variants, such as inversions, and genes from multiple flowering-time pathways exhibit the strongest associations with flowering time. We find appreciable variation in genetic effects on flowering time across both time and space; the greatest differences evident between populations, where numerous factors (environmental variation, genomic background, and private polymorphisms) likely contribute to heterogeneity. However, the changes across years within populations clearly identify genotype-by-environment interactions as an important influence on flowering time variation.

摘要

基因组结构随空间和时间变化的程度是基因组响应自然选择而进化的核心。混合分离群体作图结合混合测序提供了一种估计遗传变异对数量性状影响的有效方法。我们开发了一种新颖的似然框架,以识别多个种群和世代中的分离变异,同时考虑样本和单核苷酸多态性(SNP)特异性的估计误差。我们使用这种方法在自然种群中定位开花时间的基因座,从三个相邻种群中的每一个以及两个连续世代中收集早花和晚花植物。结构变异,如倒位,以及来自多个开花时间途径的基因与开花时间表现出最强的关联。我们发现开花时间的遗传效应在时间和空间上都有明显的变化;种群之间的差异最为明显,众多因素(环境变异、基因组背景和私有多态性)可能导致了这种异质性。然而,种群内年份间的变化清楚地表明基因型与环境的相互作用是开花时间变异的重要影响因素。