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通过进行广谱RNA测序分析,全面深入了解转录组的生物学特性。

Gaining comprehensive biological insight into the transcriptome by performing a broad-spectrum RNA-seq analysis.

作者信息

Sahraeian Sayed Mohammad Ebrahim, Mohiyuddin Marghoob, Sebra Robert, Tilgner Hagen, Afshar Pegah T, Au Kin Fai, Bani Asadi Narges, Gerstein Mark B, Wong Wing Hung, Snyder Michael P, Schadt Eric, Lam Hugo Y K

机构信息

Roche Sequencing Solutions, Belmont, CA, 94002, USA.

Department of Genetics and Genomic Sciences, Icahn School of Medicine at Mount Sinai, New York, NY, 10029, USA.

出版信息

Nat Commun. 2017 Jul 5;8(1):59. doi: 10.1038/s41467-017-00050-4.

Abstract

RNA-sequencing (RNA-seq) is an essential technique for transcriptome studies, hundreds of analysis tools have been developed since it was debuted. Although recent efforts have attempted to assess the latest available tools, they have not evaluated the analysis workflows comprehensively to unleash the power within RNA-seq. Here we conduct an extensive study analysing a broad spectrum of RNA-seq workflows. Surpassing the expression analysis scope, our work also includes assessment of RNA variant-calling, RNA editing and RNA fusion detection techniques. Specifically, we examine both short- and long-read RNA-seq technologies, 39 analysis tools resulting in ~120 combinations, and ~490 analyses involving 15 samples with a variety of germline, cancer and stem cell data sets. We report the performance and propose a comprehensive RNA-seq analysis protocol, named RNACocktail, along with a computational pipeline achieving high accuracy. Validation on different samples reveals that our proposed protocol could help researchers extract more biologically relevant predictions by broad analysis of the transcriptome.RNA-seq is widely used for transcriptome analysis. Here, the authors analyse a wide spectrum of RNA-seq workflows and present a comprehensive analysis protocol named RNACocktail as well as a computational pipeline leveraging the widely used tools for accurate RNA-seq analysis.

摘要

RNA测序(RNA-seq)是转录组研究的一项重要技术,自其问世以来已开发出数百种分析工具。尽管最近有人试图评估最新可用的工具,但他们并未全面评估分析工作流程以充分发挥RNA-seq的潜力。在此,我们进行了一项广泛的研究,分析了一系列广泛的RNA-seq工作流程。超越表达分析范围,我们的工作还包括对RNA变异检测、RNA编辑和RNA融合检测技术的评估。具体而言,我们研究了短读长和长读长RNA-seq技术、39种分析工具,产生了约120种组合,以及约490次分析,涉及15个样本,包含各种种系、癌症和干细胞数据集。我们报告了性能,并提出了一种名为RNACocktail的全面RNA-seq分析方案,以及一个实现高精度的计算流程。在不同样本上的验证表明,我们提出的方案可以帮助研究人员通过对转录组的广泛分析提取更多生物学相关的预测结果。RNA-seq被广泛用于转录组分析。在此,作者分析了一系列广泛的RNA-seq工作流程,并提出了一种名为RNACocktail的全面分析方案,以及一个利用广泛使用的工具进行准确RNA-seq分析的计算流程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c6f/5498581/cf363da03b6c/41467_2017_50_Fig1_HTML.jpg

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