在连续空间种群中选择性扫描的签名
Meera Chotai1, Xinzhu Wei1, Philipp W Messer1
1Department of Computational Biology, Cornell University.
bioRxiv : the preprint server for biology
|August 2, 2024
概括
空间结构通过减缓适应和改变遗传多样性模式,影响选择性扫描. 有限的分散可以使扫描看起来更柔软,并增加单 haplotype 异性,使进化推断复杂化.
科学领域:
- 进化遗传学的进化遗传学
- 人口遗传学 人口遗传学
背景情况:
- 选择性扫描,其中适应性突变的频率迅速增加,是关键的进化事件.
- 了解扫描签名至关重要,但传统模型往往假定panmixia (随机交配).
- 自然种群表现出空间结构,影响交配模式和遗传交换.
研究的目的:
- 研究空间人口结构对选择性扫描动态和特征的影响.
- 模拟选择性扫描在一个二维的景观与不同的分散率.
主要方法:
- 在2D连续景观上对人口进行选择性扫描的模拟.
- 操纵后代的分散距离来模拟不同层次的空间结构,从泛微到低分散的场景.
主要成果:
- 低分散率减缓了适应性突变的传播,并降低了重组的有效性,以打破围绕扫描的链接不平衡.
- 围绕扫描的遗传多样性降低的低谷在分散率上是一致的.
- 低分散种群的现场频谱显示中频变体的丰富,模仿软扫描.
- 在扫除位置的哈普类型异构性在低分散种群中相比于泛微种群中较高.
结论:
- 空间人口结构显著改变了选择性的扫描动态和可检测的特征.
- 关于选择性扫描的推断需要结合空间结构,以避免误解扫描特征.
- 在低分散下,哈普洛型模式可能类似于软扫描,需要仔细解释.
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