首页> 外文期刊>Journal of computational biology >POPSTR: Inference of Admixed Population Structure Based on Single-Nucleotide Polymorphisms and Copy Number Variations
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POPSTR: Inference of Admixed Population Structure Based on Single-Nucleotide Polymorphisms and Copy Number Variations

机译:POPSTR:基于单核苷酸多态性和拷贝数变异的混合种群结构推断。

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Statistical approaches for population structure estimation have been predominantly driven by a particular data type, single-nucleotide polymorphisms (SNPs). However, in the presence of weak identifiability in SNPs, population structure estimation can suffer from undesirable accuracy loss. Copy number variations (CNVs) are genomic structural variants with loci that are commonly shared within a specific population and thus provide valuable information for estimation of the ancestry of sampled populations. We develop a Bayesian joint modeling framework of SNPs and CNVs, called POPSTR, to better understand population structure than approaches that use SNPs solely. To deal with the increased data volume, we use the Metropolis Adjusted Langevin algorithm (MALA) that guides the target distribution in a computationally efficient way. We illustrate applications of our approach using the HapMap 2005 project data. We carry out simulation studies and show that the performance of our approach is comparable or better than that of popular benchmarks, STRUCTURE and ADMIXTURE. We also observe that using only CNVs can be remarkably efficient if SNP data are not available.
机译:人口结构估计的统计方法主要由特定数据类型(单核苷酸多态性(SNP))驱动。但是,在SNP的可识别性较弱的情况下,总体结构估计可能会遭受不希望的准确性损失。拷贝数变异(CNV)是具有基因座的基因组结构变异,通常在特定人群中共享,因此可为评估抽样人群的祖先提供有价值的信息。我们开发了一个称为POPSTR的SNP和CNV的贝叶斯联合建模框架,以比仅使用SNP的方法更好地了解人口结构。为了处理增加的数据量,我们使用了Metropolis Adjusted Langevin算法(MALA),该算法以计算有效的方式指导目标分布。我们使用HapMap 2005项目数据来说明我们的方法的应用。我们进行了仿真研究,结果表明,我们的方法的性能与流行的基准,结构和ADMIXTURE相当或更好。我们还观察到,如果没有SNP数据,仅使用CNV会非常有效。

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