具有离散倍性阶段的物种中单倍体和二倍体之间的 F ST。

IF 2.1 3区 生物学 Q3 ECOLOGY Journal of Evolutionary Biology Pub Date : 2024-09-04 DOI:10.1093/jeb/voae104
Kazuhiro Bessho, Sarah P Otto
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引用次数: 0

摘要

许多生物在不同的单倍体和二倍体阶段交替出现,从而产生了不同倍性水平的种群结构。在这项研究中,我们使用为空间细分种群开发的统计方法来考虑单倍体-二倍体种群,其中单倍体代表一个 "斑块",二倍体代表另一个 "斑块"。在世代交替的物种中,有性生殖导致二倍体向单倍体移动(通过减数分裂和重组),以及单倍体向二倍体移动(通过合子交配)。因此,可以说一个倍性阶段的等位基因通过有性生殖 "迁移 "到另一个倍性阶段,而通过无性生殖 "保持 "在同一倍性阶段。通过分析单倍体-二倍体系统的后裔和状态特征概率凝聚模型,我们定义了单倍体和二倍体之间类似于 FST 的分化度量,并证明这些度量可以简化为每个倍性阶段有性程度的函数。我们利用无限等位基因模型进行了模拟,并讨论了一种利用观测到的单倍体-二倍体物种 FST 测量值从遗传数据集中估算有效性状程度的方法。
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F ST between haploids and diploids in species with discrete ploidy phases.

Many organisms alternate between distinct haploid and diploid phases, which generates population structure according to ploidy level. In this research, we consider a haploid-diploid population using statistical approaches developed for spatially subdivided populations, where haploids represent one "patch" and diploids another "patch". In species with alternating generations, sexual reproduction causes movement from diploids to haploids (by meiosis with recombination) and from haploids to diploids (by syngamy). Thus, an allele in one ploidy phase can be said to "migrate" to the other ploidy phase by sexual reproduction and to "remain" in the same ploidy phase by asexual reproduction. By analyzing a coalescent model of the probability of identity by descent and by state for a haploid-diploid system, we define FST-like measures of differentiation between haploids and diploids and show that these measures can be simplified as a function of the extent of sexuality in each ploidy phase. We conduct simulations with an infinite-alleles model and discuss a method for estimating the degree of effective sexuality from genetic data sets that uses the observed FST measures of haploid-diploid species.

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来源期刊
Journal of Evolutionary Biology
Journal of Evolutionary Biology 生物-进化生物学
CiteScore
4.20
自引率
4.80%
发文量
152
审稿时长
3-6 weeks
期刊介绍: It covers both micro- and macro-evolution of all types of organisms. The aim of the Journal is to integrate perspectives across molecular and microbial evolution, behaviour, genetics, ecology, life histories, development, palaeontology, systematics and morphology.
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