RNA-Seq基因表达估计归一化方法的评价。

Po-Yen Wu, John H Phan, Fengfeng Zhou, May D Wang
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引用次数: 4

摘要

对RNA-Seq数据的统计推断,例如检测差异基因表达,只有在适当归一化后才有意义。然而,对于从众多现有程序中选择一种正常化程序并没有达成共识。我们通过(1)将估计的RNA-Seq表达值与微阵列的表达值相关联,(2)检查平台之间稳定基因和差异基因检测的一致性,以及(3)将这些程序应用于模拟RNA-Seq数据来评估几种RNA-Seq归一化程序。结果表明,RNA-Seq归一化程序对平台间基因表达相关性以及检测到的稳定或差异表达基因的平台间一致性影响不大。然而,模拟分析的结果表明,一些归一化程序对差异表达基因分布的变化更为稳健。这些结果可为RNA-Seq归一化程序的选择提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of Normalization Methods for RNA-Seq Gene Expression Estimation.

Statistical inferences on RNA-Seq data, e.g., detecting differential gene expression, are meaningful only after proper normalization. However, there is no consensus for choosing a normalization procedure from among the many existing procedures. We evaluated several RNA-Seq normalization procedures by (1) correlating estimated RNA-Seq expression values to those of microarrays, (2) examining the concordance of stable and differential gene detection between the platforms, and (3) applying the procedures to simulated RNA-Seq data. Results suggested that RNA-Seq normalization procedures have little effect on both inter-platform gene expression correlation as well as inter-platform concordance of genes detected as stably or differentially expressed. However, the results of simulated analysis suggested that some normalization procedures are more robust to changes in distribution of differentially expressed genes. These results may provide guidance for selecting RNA-Seq normalization procedures.

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