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edgeR: a Bioconductor package for differential expression analysis of digital gene expression data

机译:edgeR:用于数字基因表达数据差异表达分析的生物导体包装

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摘要

Summary: It is expected that emerging digital gene expression (DGE) technologies will overtake microarray technologies in the near future for many functional genomics applications. One of the fundamental data analysis tasks, especially for gene expression studies, involves determining whether there is evidence that counts for a transcript or exon are significantly different across experimental conditions. edgeR is a Bioconductor software package for examining differential expression of replicated count data. An overdispersed Poisson model is used to account for both biological and technical variability. Empirical Bayes methods are used to moderate the degree of overdispersion across transcripts, improving the reliability of inference. The methodology can be used even with the most minimal levels of replication, provided at least one phenotype or experimental condition is replicated. The software may have other applications beyond sequencing data, such as proteome peptide count data.
机译:简介:在许多功能基因组学应用中,预计新兴的数字基因表达(DGE)技术将在不久的将来取代微阵列技术。基本数据分析任务之一,尤其是对于基因表达研究而言,涉及确定是否有证据表明转录物或外显子的计数在整个实验条件下都存在显着差异。 edgeR是一个Bioconductor软件包,用于检查重复计数数据的差异表达。过度分散的泊松模型用于说明生物学和技术上的可变性。经验贝叶斯方法用于调节转录本的过度分散程度,从而提高推理的可靠性。只要复制的是至少一种表型或实验条件,该方法即使在复制水平最低的情况下也可以使用。除了蛋白质组肽计数数据等测序数据外,该软件还可以具有其他应用程序。

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