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Spectrum: joint bayesian inference of population structure and recombination events

机译:频谱:种群结构和重组事件的联合贝叶斯推断

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Motivation: While genetic properties such as linkage disequilibrium (LD) and population structure are closely related under a common inheritance process, the statistical methodologies developed so far mostly deal with LD analysis and structural inference separately, using specialized models that do not capture their statistical and genetic relationships. Also, most of these approaches ignore the inherent uncertainty in the genetic complexity of the data and rely on inflexible models built on a closed genetic space. These limitations may make it difficult to infer detailed and consistent structural information from rich genomic data such as populational single nucleotide polymorphisms ( SNP) profiles. Results: We propose a new model-based approach to address these issues through joint inference of population structure and recombination events under a non-parametric Bayesian framework; we present Spectrum, an efficient implementation based on our new model. We validated Spectrum on simulated data and applied it to two real SNP datasets, including single-population Daly data and the four-population HapMap data. Our method performs well relative to LDhat 2.0 in estimating the recombination rates and hotspots on these datasets. More interestingly, it generates an ancestral spectrum for representing population structures which not only displays sub-structure based on population founders but also reveals details of the genetic diversity of each individual. It offers an alternative view of the population structures to that offered by Structure 2.1, which ignores chromosome-level mutation and recombination with respect to founders.
机译:动机:尽管遗传属性(例如连锁不平衡(LD)和种群结构)在一个共同的遗传过程中紧密相关,但迄今为止开发的统计方法大多使用独立的模型分别处理LD分析和结构推断,而无法使用其统计和遗传关系。而且,这些方法大多数都忽略了数据遗传复杂性的内在不确定性,而是依赖于建立在封闭遗传空间上的僵化模型。这些限制可能使得难以从丰富的基因组数据(例如群体单核苷酸多态性(SNP)配置文件)推断出详细且一致的结构信息。结果:我们提出了一种基于模型的新方法,通过在非参数贝叶斯框架下联合推断种群结构和重组事件来解决这些问题;我们介绍了Spectrum,这是基于我们的新模型的高效实现。我们在模拟数据上验证了Spectrum,并将其应用于两个真实的SNP数据集,包括单人口Daly数据和四人口HapMap数据。与LDhat 2.0相比,我们的方法在估计这些数据集的重组率和热点方面表现良好。更有趣的是,它生成了代表种群结构的祖先谱,它不仅显示了基于种群创建者的子结构,而且还揭示了每个个体遗传多样性的细节。它提供了结构2.1所提供的人口结构的替代视图,该结构忽略了针对创始者的染色体水平突变和重组。

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