Welch Joshua D, Hu Yin, Prins Jan F
Department of Computer Science, University of North Carolina, Chapel Hill, NC 27599-3175, USA Curriculum in Bioinformatics and Computational Biology, University of North Carolina, Chapel Hill, NC 27599-7264, USA.
Computational Oncology, Sage Bionetworks, 1100 Fairview Ave. N., Seattle, WA 98109, USA.
Nucleic Acids Res. 2016 May 5;44(8):e73. doi: 10.1093/nar/gkv1525. Epub 2016 Jan 5.
Single cell RNA-seq experiments provide valuable insight into cellular heterogeneity but suffer from low coverage, 3' bias and technical noise. These unique properties of single cell RNA-seq data make study of alternative splicing difficult, and thus most single cell studies have restricted analysis of transcriptome variation to the gene level. To address these limitations, we developed SingleSplice, which uses a statistical model to detect genes whose isoform usage shows biological variation significantly exceeding technical noise in a population of single cells. Importantly, SingleSplice is tailored to the unique demands of single cell analysis, detecting isoform usage differences without attempting to infer expression levels for full-length transcripts. Using data from spike-in transcripts, we found that our approach detects variation in isoform usage among single cells with high sensitivity and specificity. We also applied SingleSplice to data from mouse embryonic stem cells and discovered a set of genes that show significant biological variation in isoform usage across the set of cells. A subset of these isoform differences are linked to cell cycle stage, suggesting a novel connection between alternative splicing and the cell cycle.
单细胞RNA测序实验为细胞异质性提供了有价值的见解,但存在覆盖率低、3'端偏差和技术噪声等问题。单细胞RNA测序数据的这些独特特性使得对可变剪接的研究变得困难,因此大多数单细胞研究将转录组变异的分析限制在基因水平。为了解决这些局限性,我们开发了SingleSplice,它使用一种统计模型来检测那些在单细胞群体中其异构体使用情况显示出显著超过技术噪声的生物学变异的基因。重要的是,SingleSplice是针对单细胞分析的独特需求量身定制的,它在不试图推断全长转录本表达水平的情况下检测异构体使用差异。利用来自掺入转录本的数据,我们发现我们的方法能够以高灵敏度和特异性检测单细胞之间异构体使用的变异。我们还将SingleSplice应用于小鼠胚胎干细胞的数据,并发现了一组在整个细胞群体中异构体使用情况显示出显著生物学变异的基因。这些异构体差异的一个子集与细胞周期阶段相关,这表明可变剪接与细胞周期之间存在一种新的联系。