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2005年SMBE三国青年研究者研讨会会议记录。群体基因组学中的准确推断与估计。

Proceedings of the SMBE Tri-National Young Investigators' Workshop 2005. Accurate inference and estimation in population genomics.

作者信息

Hahn Matthew W

机构信息

Center for Population Biology, University of California, Davis, USA.

出版信息

Mol Biol Evol. 2006 May;23(5):911-8. doi: 10.1093/molbev/msj094. Epub 2006 Jan 11.

Abstract

Both intra- and interspecific genomic comparisons have revealed local similarities in the level and frequency of mutational variation, as well as in patterns of gene expression. This autocorrelation between measurements leads to violations of assumptions of independence in many statistical methods, resulting in misleading and incorrect inferences. Here I show that autocorrelation can be due to many factors and is present across the genome. Using a one-dimensional spatial stochastic model, I further show how previous results can be employed to correct for autocorrelation along chromosomes in population and comparative genomics research. When multiple hypothesis tests are autocorrelated, I demonstrate that a simple correction can lead to increased power in statistical inference. I present a preliminary analysis of population genomic data from Drosophila simulans to show the ubiquity of autocorrelation and applicability of the methods proposed here.

摘要

种内和种间的基因组比较均揭示了突变变异的水平和频率以及基因表达模式方面的局部相似性。测量之间的这种自相关性导致许多统计方法中的独立性假设被违反,从而产生误导性和错误的推断。在这里,我表明自相关性可能由多种因素引起,并且在整个基因组中都存在。使用一维空间随机模型,我进一步展示了如何利用先前的结果来校正群体和比较基因组学研究中沿染色体的自相关性。当多个假设检验存在自相关性时,我证明了一种简单的校正方法可以提高统计推断的功效。我对拟暗果蝇的群体基因组数据进行了初步分析,以展示自相关性的普遍性以及这里提出的方法的适用性。

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