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首页> 外文期刊>Biotechnology Journal: Healthcare,Nutrition,Technology >Towards next generation CHO cell biology: Bioinformatics methods for RNA-Seq-based expression profiling
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Towards next generation CHO cell biology: Bioinformatics methods for RNA-Seq-based expression profiling

机译:迈向下一代CHO细胞生物学:基于RNA-Seq的表达谱分析的生物信息学方法

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摘要

High throughput, cost effective next generation sequencing (NGS) has enabled the publication of genome sequences for Cricetulus griseus and several Chinese hamster ovary (CHO) cell lines. RNA-Seq, the utilization of NGS technology to study the transcriptome, is expanding our understanding of the CHO cell biological system in areas ranging from the analysis of transcription start sites to the discovery of small noncoding RNAs. The analysis of RNA-Seq data, often comprised of several million short reads, presents a considerable challenge. If the CHO cell biology field is to fully exploit the potential of RNA-Seq, the development of robust data analysis pipelines is critical. In this manuscript, we outline bioinformatics approaches for the stages of a typical RNA-Seq expression profiling experiment including quality control, pre-processing, alignment and de novo transcriptome assembly. Algorithms for the analysis of mRNA and microRNA (miRNA) expression as well as methods for the detection of alternative splicing from RNA-Seq data are also presented. At this relatively early stage of Cricetulus griseus genome assembly and annotation, it is likely that a combination of isoform deconvolution and raw count based methods will provide the most complete picture of transcript expression patterns in CHO cell RNA-Seq experiments.
机译:高通量,经济高效的下一代测序(NGS)使得能够发布灰C和几种中国仓鼠卵巢(CHO)细胞系的基因组序列。 RNA-Seq是NGS技术用于研究转录组的一种手段,正在扩大我们对CHO细胞生物学系统的理解,其范围从分析转录起始位点到发现小的非编码RNA。 RNA-Seq数据的分析通常包含几百万个短读,这是一个巨大的挑战。如果CHO细胞生物学领域要充分利用RNA-Seq的潜力,那么开发强大的数据分析管道至关重要。在本手稿中,我们概述了典型RNA-Seq表达谱实验的各个阶段的生物信息学方法,包括质量控制,预处理,比对和从头转录组装配。还介绍了用于分析mRNA和微小RNA(miRNA)表达的算法,以及从RNA-Seq数据中检测可变剪接的方法。在灰蝗的基因组组装和注释的这一相对早期阶段,很可能将同种型反卷积和基于原始计数的方法相结合将在CHO细胞RNA-Seq实验中提供最完整的转录表达模式图。

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