The Impact of RNA-seq Alignment Pipeline on Detection of Differentially Expressed Genes.

Cheng Yang, Po-Yen Wu, John H Phan, May D Wang
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引用次数: 3

Abstract

RNA-seq data analysis pipelines are generally composed of sequence alignment, expression quantification, expression normalization, and differentially expressed gene (DEG) detection. Each step has numerous specific tools or algorithms, so we cannot explore all combinatorial pipelines and provide a comprehensive comparison of pipeline performance. To understand the mechanism of RNA-seq data analysis pipelines and provide some useful information for pipeline selection, we believe it is necessary to analyze the interactions among pipeline components. In this paper, by combining different alignment algorithms with the same quantification, normalization, and DEG detection tools, we construct nine RNA-seq pipelines to analyze the impact of RNA-seq alignment on downstream applications of gene expression estimates. Specifically, we find moderate linear correlation between the number of DEGs detected and the percentage of reads aligned with zero mismatch.

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RNA-seq比对管道对差异表达基因检测的影响。
RNA-seq数据分析管道一般由序列比对、表达量化、表达归一化和差异表达基因(differential expression gene, DEG)检测组成。每个步骤都有许多特定的工具或算法,因此我们无法探索所有组合管道并提供管道性能的全面比较。为了了解RNA-seq数据分析管道的机制,并为管道选择提供一些有用的信息,我们认为有必要分析管道组分之间的相互作用。本文通过将不同的比对算法与相同的量化、归一化和DEG检测工具相结合,构建了9条RNA-seq管道,以分析RNA-seq比对对下游基因表达估计应用的影响。具体来说,我们发现检测到的基因变异数与零错配的reads百分比之间存在适度的线性相关。
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