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复制测序文库对于等位基因失衡的定量分析很重要。

Replicate sequencing libraries are important for quantification of allelic imbalance.

机构信息

Skolkovo Institute of Science and Technology, Moscow, Russia.

Center for Cancer Systems Biology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, USA.

出版信息

Nat Commun. 2021 Jun 7;12(1):3370. doi: 10.1038/s41467-021-23544-8.

Abstract

A sensitive approach to quantitative analysis of transcriptional regulation in diploid organisms is analysis of allelic imbalance (AI) in RNA sequencing (RNA-seq) data. A near-universal practice in such studies is to prepare and sequence only one library per RNA sample. We present theoretical and experimental evidence that data from a single RNA-seq library is insufficient for reliable quantification of the contribution of technical noise to the observed AI signal; consequently, reliance on one-replicate experimental design can lead to unaccounted-for variation in error rates in allele-specific analysis. We develop a computational approach, Qllelic, that accurately accounts for technical noise by making use of replicate RNA-seq libraries. Testing on new and existing datasets shows that application of Qllelic greatly decreases false positive rate in allele-specific analysis while conserving appropriate signal, and thus greatly improves reproducibility of AI estimates. We explore sources of technical overdispersion in observed AI signal and conclude by discussing design of RNA-seq studies addressing two biologically important questions: quantification of transcriptome-wide AI in one sample, and differential analysis of allele-specific expression between samples.

摘要

一种针对二倍体生物转录调控的定量分析的敏感方法是对 RNA 测序 (RNA-seq) 数据进行等位基因失衡 (AI) 分析。在这类研究中,一种近乎普遍的做法是每个 RNA 样本仅准备和测序一个文库。我们提出了理论和实验证据,表明来自单个 RNA-seq 文库的数据不足以可靠地量化技术噪声对观察到的 AI 信号的贡献;因此,依赖于单重复实验设计可能会导致等位基因特异性分析中错误率的不可知变化。我们开发了一种计算方法 Qllelic,它通过使用重复的 RNA-seq 文库来准确地计算技术噪声。在新数据集和现有数据集上的测试表明,应用 Qllelic 可以大大降低等位基因特异性分析中的假阳性率,同时保留适当的信号,从而大大提高 AI 估计的可重复性。我们探讨了观察到的 AI 信号中技术过度分散的来源,并通过讨论解决两个生物学重要问题的 RNA-seq 研究设计来结束讨论:在一个样本中定量全转录组 AI,以及在样本之间进行等位基因特异性表达的差异分析。

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