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Statistical methods on detecting differentially expressed genes for RNA-seq data

机译:检测RNA-seq数据差异表达基因的统计方法

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BackgroundFor RNA-seq data, the aggregated counts of the short reads from the same gene is used to approximate the gene expression level. The count data can be modelled as samples from Poisson distributions with possible different parameters. To detect differentially expressed genes under two situations, statistical methods for detecting the difference of two Poisson means are used. When the expression level of a gene is low, i.e., the number of count is small, it is usually more difficult to detect the mean differences, and therefore statistical methods which are more powerful for low expression level are particularly desirable. In statistical literature, several methods have been proposed to compare two Poisson means (rates). In this paper, we compare these methods by using simulated and real RNA-seq data.ResultsThrough simulation study and real data analysis, we find that the Wald test with the data being log-transformed is more powerful than other methods, including the likelihood ratio test, which has similar power as the variance stabilizing transformation test; both are more powerful than the conditional exact test and Fisher exact test.ConclusionsWhen the count data in RNA-seq can be reasonably modelled as Poisson distribution, the Wald-Log test is more powerful and should be used to detect the differentially expressed genes.
机译:背景对于RNA序列数据,来自同一基因的短读段的总计数用于近似基因表达水平。可以将计数数据建模为具有可能不同参数的Poisson分布的样本。为了在两种情况下检测差异表达的基因,使用了检测两种泊松方法差异的统计方法。当基因的表达水平低时,即计数数少时,通常更难以检测均值差异,因此特别需要对低表达水平更有效的统计方法。在统计文献中,已经提出了几种方法来比较两种泊松均值(比率)。结果通过仿真研究和真实数据分析,我们发现对数转换后的数据进行Wald检验比其他方法更有效,包括似然比测试,具有与方差稳定转换测试相似的功效;结论当条件可以精确地将RNA-seq中的计数数据建模为Poisson分布时,Wald-Log检验的功能更强大,应用于检测差异表达的基因。

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