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The fractured landscape of RNA-seq alignment: the default in our STARs

机译:RNA-SEQ对齐的裂缝景观:我们星星中的默认景观

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摘要

Many tools are available for RNA-seq alignment and expression quantification, with comparative value being hard to establish. Benchmarking assessments often highlight methods' good performance, but are focused on either model data or fail to explain variation in performance. This leaves us to ask, what is the most meaningful way to assess different alignment choices? And importantly, where is there room for progress? In this work, we explore the answers to these two questions by performing an exhaustive assessment of the STAR aligner. We assess STAR's performance across a range of alignment parameters using common metrics, and then on biologically focused tasks. We find technical metrics such as fraction mapping or expression profile correlation to be uninformative, capturing properties unlikely to have any role in biological discovery. Surprisingly, we find that changes in alignment parameters within a wide range have little impact on both technical and biological performance. Yet, when performance finally does break, it happens in difficult regions, such as X-Y paralogs and MHC genes. We believe improved reporting by developers will help establish where results are likely to be robust or fragile, providing a better baseline to establish where methodological progress can still occur.
机译:许多工具可用于RNA-SEQ对准和表达量化,具有比较值难以建立。基准评估往往突出了方法“良好的性能,而是专注于模型数据或未能解释性能的变化。这让我们询问,评估不同的对准选择是什么最有意义的方式?重要的是,有进展的空间在哪里?在这项工作中,我们通过对明星对齐器进行详尽评估来探索这两个问题的答案。我们使用公共指标在一系列对齐参数中评估STAR的性能,然后在生物学上聚焦的任务中进行对齐参数。我们发现技术指标,例如分数映射或表达配置文件相关性,以不可行进,捕获属性,不太可能在生物发现中具有任何作用。令人惊讶的是,我们发现广泛范围内的对准参数的变化几乎没有影响技术和生物学性能。然而,当表现最终突破时,它发生在困难的区域中,例如X-Y副病剂和MHC基因。我们认为,开发人员的提高报告将有助于确定结果可能是强大或脆弱的,提供更好的基准,以确定方法进展仍然可能发生。

著录项

  • 来源
    《Nucleic Acids Research》 |2018年第10期|共14页
  • 作者单位

    Cold Spring Harbor Lab Stanley Inst Cognit Genom Woodbury NY 11797 USA;

    Cold Spring Harbor Lab Stanley Inst Cognit Genom Woodbury NY 11797 USA;

    Cold Spring Harbor Lab Stanley Inst Cognit Genom Woodbury NY 11797 USA;

    Cold Spring Harbor Lab Stanley Inst Cognit Genom Woodbury NY 11797 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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