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The additive genetic variance after bottlenecks is affected by the number of loci involved in epistatic interactions

机译:瓶颈后加性遗传方差受上位相互作用中涉及的基因座数量影响

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We investigated the role of the number of loci coding for a neutral trait on the release of additive variance for this trait after population bottlenecks. Different bottleneck sizes and durations were tested for various matrices of genotypic values, with initial conditions covering the allele frequency space. We used three different types of matrices. First, we extended Cheverud and Routman's model by defining matrices of "pure" epistasis for three and four independent loci; second, we used genotypic values drawn randomly from uniform, normal, and exponential distributions; and third we used two models of simple metabolic pathways leading to physiological epistasis. For all these matrices of genotypic values except the dominant metabolic pathway, we find that, as the number of loci increases from two to three and four, an increase in the release of additive variance is occurring. The amount of additive variance released for a given set of genotypic values is a function of the inbreeding coefficient, independently of the size and duration of the bottleneck. The level of inbreeding necessary to achieve maximum release in additive variance increases with the number of loci. We find that additive-by-additive epistasis is the type of epistasis most easily converted into additive variance. For a wide range of models, our results show that epistasis, rather than dominance, plays a significant role in the increase of additive variance following bottlenecks. [References: 73]
机译:我们调查了人口瓶颈后,编码中性性状的基因座数量对释放该性状的加性方差的作用。针对各种基因型值矩阵测试了不同的瓶颈大小和持续时间,初始条件涵盖了等位基因频率空间。我们使用了三种不同类型的矩阵。首先,我们通过定义三个和四个独立基因座的“纯”上位性矩阵来扩展Cheverud和Routman模型。第二,我们使用从均匀,正态和指数分布中随机抽取的基因型值。第三,我们使用了导致生理上位的简单代谢途径的两种模型。对于除优势代谢途径外的所有这些基因型值矩阵,我们发现,随着基因座数量从2个增加到3个和4个,相加释放的发生正在增加。对于给定的一组基因型值,所释放的加性方差量是近交系数的函数,与瓶颈的大小和持续时间无关。为了实现加性方差最大化释放所需的近交水平随基因座数目的增加而增加。我们发现逐加的上位是最容易转换成加法方差的上位类型。对于各种各样的模型,我们的结果表明,上位而不是优势在瓶颈后增加相加方差中起着重要作用。 [参考:73]

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