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Soft truncation thresholding for gene set analysis of RNA-seq data: Application to a vaccine study

机译:软截断阈值用于RNA-seq数据的基因组分析:在疫苗研究中的应用

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Gene set analysis (GSA) has been used for analysis of microarray data to aid the interpretation and to increase statistical power. With the advent of next-generation sequencing, the use of GSA is even more relevant, as studies are often conducted on a small number of samples. We propose the use of soft truncation thresholding and the Gamma Method (GM) to determine significant gene set (GS), where a generalized linear model is used to assess per-gene significance. The approach was compared to other methods using an extensive simulation study and RNA-seq data from smallpox vaccine study. The GM was found to outperform other proposed methods. Application of the GM to the smallpox vaccine study found the GSs to be moderately associated with response, including focal adhesion (p = 0.04) and extracellular matrix receptor interaction (p = 0.05). The application of GSA to RNA-seq data will provide new insights into the genomic basis of complex traits.
机译:基因组分析(GSA)已用于分析微阵列数据,以帮助解释并提高统计能力。随着下一代测序的到来,GSA的使用变得更加重要,因为研究通常是针对少量样品进行的。我们建议使用软截断阈值和伽玛方法(GM)来确定重要的基因集(GS),其中使用广义线性模型来评估每个基因的重要性。使用广泛的模拟研究和来自天花疫苗研究的RNA-seq数据,将该方法与其他方法进行了比较。发现通用汽车优于其他提议的方法。 GM在天花疫苗研究中的应用发现GS与反应中等相关,包括粘着斑(p = 0.04)和细胞外基质受体相互作用(p = 0.05)。 GSA在RNA序列数据中的应用将为复杂性状的基因组基础提供新的见解。

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