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基于成对微卫星等位基因匹配频率的群体结构和协变量分析。

Population structure and covariate analysis based on pairwise microsatellite allele matching frequencies.

作者信息

Givens Geof H, Ozaksoy Isin

机构信息

Colorado State University.

出版信息

Stat Appl Genet Mol Biol. 2007;6:Article31. doi: 10.2202/1544-6115.1305. Epub 2007 Nov 6.

Abstract

We describe a general model for pairwise microsatellite allele matching probabilities. The model can be used for analysis of population substructure, and is particularly focused on relating genetic correlation to measurable covariates. The approach is intended for cases when the existence of subpopulations is uncertain and a priori assignment of samples to hypothesized subpopulations is difficult. Such a situation arises, for example, with western Arctic bowhead whales, where genetic samples are available only from a possibly mixed migratory assemblage. We estimate genetic structure associated with spatial, temporal, or other variables that may confound the detection of population structure. In the bowhead case, the model permits detection of genetic patterns associated with a temporally pulsed multi-population assemblage in the annual migration. Hypothesis tests for population substructure and for covariate effects can be carried out using permutation methods. Simulated and real examples illustrate the effectiveness and reliability of the approach and enable comparisons with other familiar approaches. Analysis of the bowhead data finds no evidence for two temporally pulsed subpopulations using the best available data, although a significant pattern found by other researchers using preliminary data is also confirmed here. Code in the R language is available from www.stat.colostate.edu/~geof/gammmp.html.

摘要

我们描述了一种用于成对微卫星等位基因匹配概率的通用模型。该模型可用于分析群体亚结构,尤其专注于将遗传相关性与可测量的协变量联系起来。该方法适用于亚群体存在不确定且难以将样本预先分配到假设亚群体的情况。例如,在北极西部的弓头鲸中就会出现这种情况,那里的遗传样本仅来自可能混合的迁徙群体。我们估计与空间、时间或其他可能混淆群体结构检测的变量相关的遗传结构。在弓头鲸的案例中,该模型允许检测与年度迁徙中随时间脉冲的多群体组合相关的遗传模式。可以使用置换方法对群体亚结构和协变量效应进行假设检验。模拟和实际例子说明了该方法的有效性和可靠性,并能够与其他常见方法进行比较。对弓头鲸数据的分析表明,使用现有最佳数据未发现两个随时间脉冲的亚群体的证据,不过其他研究人员使用初步数据发现的显著模式在此也得到了证实。R语言代码可从www.stat.colostate.edu/~geof/gammmp.html获取。

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