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基于单倍型分布的空间感知似然检验方法来检测选择信号

A spatially aware likelihood test to detect sweeps from haplotype distributions.

机构信息

Department of Electrical Engineering and Computer Science, Florida Atlantic University, Boca Raton, Florida, United States of America.

Department of Biology, Pennsylvania State University, University Park, Pennsylvania, United States of America.

出版信息

PLoS Genet. 2022 Apr 11;18(4):e1010134. doi: 10.1371/journal.pgen.1010134. eCollection 2022 Apr.

Abstract

The inference of positive selection in genomes is a problem of great interest in evolutionary genomics. By identifying putative regions of the genome that contain adaptive mutations, we are able to learn about the biology of organisms and their evolutionary history. Here we introduce a composite likelihood method that identifies recently completed or ongoing positive selection by searching for extreme distortions in the spatial distribution of the haplotype frequency spectrum along the genome relative to the genome-wide expectation taken as neutrality. Furthermore, the method simultaneously infers two parameters of the sweep: the number of sweeping haplotypes and the "width" of the sweep, which is related to the strength and timing of selection. We demonstrate that this method outperforms the leading haplotype-based selection statistics, though strong signals in low-recombination regions merit extra scrutiny. As a positive control, we apply it to two well-studied human populations from the 1000 Genomes Project and examine haplotype frequency spectrum patterns at the LCT and MHC loci. We also apply it to a data set of brown rats sampled in NYC and identify genes related to olfactory perception. To facilitate use of this method, we have implemented it in user-friendly open source software.

摘要

基因组中正向选择的推断是进化基因组学中一个非常有趣的问题。通过识别基因组中包含适应性突变的假定区域,我们能够了解生物体的生物学特性及其进化历史。在这里,我们引入了一种复合似然方法,通过搜索相对于作为中性的全基因组期望,沿基因组的单倍型频率谱的空间分布中的极端扭曲,来识别最近完成或正在进行的正向选择。此外,该方法同时推断了扫荡的两个参数:扫荡单倍型的数量和扫荡的“宽度”,这与选择的强度和时机有关。我们证明,该方法优于领先的基于单倍型的选择统计量,尽管在低重组区域的强信号值得进一步审查。作为一个阳性对照,我们将其应用于 1000 基因组计划中两个研究充分的人类群体,并检查 LCT 和 MHC 基因座的单倍型频率谱模式。我们还将其应用于在纽约市采样的褐鼠数据集,并鉴定与嗅觉感知相关的基因。为了方便使用这种方法,我们已经在用户友好的开源软件中实现了它。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fca0/9022890/dad19fd9ca93/pgen.1010134.g001.jpg

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