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Statistical inferences for isoform expression in RNA-Seq

机译:RNA-Seq中同工型表达的统计推断

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SUMMARY: The development of RNA sequencing (RNA-Seq) makes it possible for us to measure transcription at an unprecedented precision and throughput. However, challenges remain in understanding the source and distribution of the reads, modeling the transcript abundance and developing efficient computational methods. In this article, we develop a method to deal with the isoform expression estimation problem. The count of reads falling into a locus on the genome annotated with multiple isoforms is modeled as a Poisson variable. The expression of each individual isoform is estimated by solving a convex optimization problem and statistical inferences about the parameters are obtained from the posterior distribution by importance sampling. Our results show that isoform expression inference in RNA-Seq is possible by employing appropriate statistical methods.
机译:简介:RNA测序(RNA-Seq)的发展使我们能够以前所未有的精度和通量测量转录。然而,在理解读物的来源和分布,对转录本丰度进行建模以及开发有效的计算方法方面仍然存在挑战。在本文中,我们开发了一种处理异构体表达估计问题的方法。落入用多种同工型注释的基因组上的基因座的读数计数被建模为泊松变量。通过解决凸优化问题来估计每个同工型的表达,并通过重要性抽样从后验分布中获得有关参数的统计推断。我们的结果表明,通过采用适当的统计方法,可以推断RNA-Seq中的亚型表达。

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