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Balancing Selection in the Wild: Testing Population Genetics Theory of Self-Incompatibility in the Rare Species Brassica insularis

机译:在野生环境中进行平衡选择:在罕见的芸苔属中测试自交不亲和性的种群遗传学理论

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摘要

Self-incompatibility (SI) systems are widespread mechanisms that prevent self-fertilization in angiosperms. They are generally encoded by one genome region containing several multiallelic genes, usually called the S-locus. They involve a recognition step between the pollen and the pistil component and pollen is rejected when it shares alleles with the pistil. The direct consequence is that rare alleles are favored, such that the S-alleles are subject to negative frequency-dependent selection. Several theoretical articles have predicted the specific patterns of polymorphism, compared to neutral loci, expected for such genes under balancing selection. For instance, many more alleles should be maintained and populations should be less differentiated than for neutral loci. However, empirical tests of these predictions in natural populations have remained scarce. Here, we compare the genetic structure at the S-locus and microsatellite markers for five natural populations of the rare species Brassica insularis. As in other Brassica species, B. insularis has a sporophytic SI system for which molecular markers are available. Our results match well the theoretical predictions and constitute the first general comparison of S-allele and neutral polymorphism.
机译:自残(SI)系统是防止被子植物自体受精的广泛机制。它们通常由一个包含多个多等位基因(通常称为S基因座)的基因组区域编码。它们涉及花粉和雌蕊成分之间的识别步骤,并且当花粉与雌蕊共享等位基因时,花粉被拒绝。直接的结果是,稀有等位基因受到青睐,因此S等位基因受到负频率依赖性选择。几篇理论文章已经预测了与中性基因座相比多态性的特定模式,这些基因在平衡选择下有望实现。例如,与中性基因座相比,应保留更多的等位基因,并且群体的分化程度应降低。然而,在自然种群中对这些预测的实证检验仍然很少。在这里,我们比较了芸苔属罕见种的五个自然种群的S位点和微卫星标记的遗传结构。如同其他芸苔属物种一样,insularis的B. insularis具有孢子性SI系统,可以使用分子标记。我们的结果与理论预测相符,并且构成了S-等位基因和中性多态性的首次一般比较。

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