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Efficient and Comprehensive Representation of Uniqueness for Next-Generation Sequencing by Minimum Unique Length Analyses

机译:通过最小唯一长度分析有效且全面地表示下一代测序的唯一性

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摘要

As next generation sequencing technologies are getting more efficient and less expensive, RNA-Seq is becoming a widely used technique for transcriptome studies. Computational analysis of RNA-Seq data often starts with the mapping of millions of short reads back to the genome or transcriptome, a process in which some reads are found to map equally well to multiple genomic locations (multimapping reads). We have developed the Minimum Unique Length Tool (MULTo), a framework for efficient and comprehensive representation of mappability information, through identification of the shortest possible length required for each genomic coordinate to become unique in the genome and transcriptome. Using the minimum unique length information, we have compared different uniqueness compensation approaches for transcript expression level quantification and demonstrate that the best compensation is achieved by discarding multimapping reads and correctly adjusting gene model lengths. We have also explored uniqueness within specific regions of the mouse genome and enhancer mapping experiments. Finally, by making MULTo available to the community we hope to facilitate the use of uniqueness compensation in RNA-Seq analysis and to eliminate the need to make additional mappability files.
机译:随着下一代测序技术变得越来越高效和便宜,RNA-Seq正在成为转录组研究的一种广泛使用的技术。 RNA-Seq数据的计算分析通常始于将数百万个短读段映射回基因组或转录组,在此过程中,发现某些读段可同样好地映射到多个基因组位置(多重映射读段)。我们已经开发出最小唯一长度工具(MULTo),该框架可通过识别每个基因组坐标在基因组和转录组中变得独特所需的最短长度,来高效,全面地表示可映射性信息。使用最小的唯一长度信息,我们比较了转录表达水平定量的不同唯一性补偿方法,并证明了最好的补偿是通过丢弃多重映射读段并正确调整基因模型长度来实现的。我们还探索了小鼠基因组和增强子作图实验的特定区域内的唯一性。最后,通过向社区提供MULTo,我们希望能够促进在RNA-Seq分析中使用唯一性补偿,并消除制作其他可映射性文件的需要。

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