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Systematic integration of RNA-Seq statistical algorithms for accurate detection of differential gene expression patterns

机译:RNA-Seq统计算法的系统集成,可准确检测差异基因表达模式

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摘要

RNA-Seq is gradually becoming the standard tool for transcriptomic expression studies in biological research. Although considerable progress has been recorded in the development of statistical algorithms for the detection of differentially expressed genes using RNA-Seq data, the list of detected genes can differ significantly between algorithms. We present a new method (PANDORA) that combines multiple algorithms toward a summarized result, more efficiently reflecting true experimental outcomes. This is achieved through the systematic combination of several analysis algorithms, by weighting their outcomes according to their performance with realistically simulated data sets generated from real data. Results supported by the analysis of both simulated and real data from different organisms as well as correlation with PoIII occupancy demonstrate that PANDORA improves the detection of differential expression. It accomplishes this by optimizing the tradeoff between standard performance measurements, such as precision and sensitivity.
机译:RNA-Seq逐渐成为生物学研究中转录组表达研究的标准工具。尽管在使用RNA-Seq数据检测差异表达基因的统计算法的开发中已记录了可观的进展,但是在不同算法之间,被检测基因的列表可能会有很大差异。我们提出了一种新方法(PANDORA),该方法将多种算法结合起来以获得一个汇总结果,可以更有效地反映真实的实验结果。这是通过几种分析算法的系统组合来实现的,方法是根据其性能加权结果,并根据实际数据生成真实模拟的数据集。分析来自不同生物的模拟数据和真实数据以及与PoIII占用率的相关性所支持的结果表明,PANDORA可改善差异表达的检测。它通过优化标准性能测量(例如精度和灵敏度)之间的权衡来实现此目的。

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