Department of Biomolecular Engineering, University of California, Santa Cruz, CA, 95062, USA.
Department of Molecular Cell & Developmental Biology, University of California, Santa Cruz, CA, 95062, USA.
Nat Commun. 2020 Mar 18;11(1):1438. doi: 10.1038/s41467-020-15171-6.
While splicing changes caused by somatic mutations in SF3B1 are known, identifying full-length isoform changes may better elucidate the functional consequences of these mutations. We report nanopore sequencing of full-length cDNA from CLL samples with and without SF3B1 mutation, as well as normal B cell samples, giving a total of 149 million pass reads. We present FLAIR (Full-Length Alternative Isoform analysis of RNA), a computational workflow to identify high-confidence transcripts, perform differential splicing event analysis, and differential isoform analysis. Using nanopore reads, we demonstrate differential 3' splice site changes associated with SF3B1 mutation, agreeing with previous studies. We also observe a strong downregulation of intron retention events associated with SF3B1 mutation. Full-length transcript analysis links multiple alternative splicing events together and allows for better estimates of the abundance of productive versus unproductive isoforms. Our work demonstrates the potential utility of nanopore sequencing for cancer and splicing research.
虽然已知 SF3B1 体细胞突变引起的剪接变化,但鉴定全长异构体变化可能更能阐明这些突变的功能后果。我们报告了来自 CLL 样本(有和无 SF3B1 突变)以及正常 B 细胞样本的全长 cDNA 的纳米孔测序,总共获得了 1.49 亿个通过读取。我们提出了 FLAIR(RNA 全长异构体分析),这是一种计算工作流程,用于识别高可信度的转录本,进行差异剪接事件分析和差异异构体分析。使用纳米孔读数,我们证明了与 SF3B1 突变相关的 3'剪接位点变化,与之前的研究一致。我们还观察到与 SF3B1 突变相关的内含子保留事件强烈下调。全长转录本分析将多个可变剪接事件联系在一起,并能够更好地估计有功能和无功能异构体的丰度。我们的工作表明纳米孔测序在癌症和剪接研究方面具有潜在的应用价值。