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DiCoExpress: a tool to process multifactorial RNAseq experiments from quality controls to co-expression analysis through differential analysis based on contrasts inside GLM models

机译:DicoExpress:一种工具,用于通过差分分析处理来自质量控制到共表达分析的多因素RNASEQ实验,通过差分分析基于GLM模型的对比度

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RNAseq is nowadays the method of choice for transcriptome analysis. In the last decades, a high number of statistical methods, and associated bioinformatics tools, for RNAseq analysis were developed. More recently, statistical studies realised neutral comparison studies using benchmark datasets, shedding light on the most appropriate approaches for RNAseq data analysis. DiCoExpress is a script-based tool implemented in R that includes methods chosen based on their performance in neutral comparisons studies. DiCoExpress uses pre-existing R packages including FactoMineR, edgeR and coseq, to perform quality control, differential, and co-expression analysis of RNAseq data. Users can perform the full analysis, providing a mapped read expression data file and a file containing the information on the experimental design. Following the quality control step, the user can move on to the differential expression analysis performed using generalized linear models thanks to the automated contrast writing function. A co-expression analysis is implemented using the coseq package. Lists of differentially expressed genes and identified co-expression clusters are automatically analyzed for enrichment of annotations provided by the user. We used DiCoExpress to analyze a publicly available RNAseq dataset on the transcriptional response of Brassica napus L. to silicon treatment in plant roots and mature leaves. This dataset, including two biological factors and three replicates for each condition, allowed us to demonstrate in a tutorial all the features of DiCoExpress. DiCoExpress is an R script-based tool allowing users to perform a full RNAseq analysis from quality controls to co-expression analysis through differential analysis based on contrasts inside generalized linear models. DiCoExpress focuses on the statistical modelling of gene expression according to the experimental design and facilitates the data analysis leading the biological interpretation of the results.
机译:如今,RNASEQ是转录组分析的选择方法。在过去的几十年中,开发了大量统计方法和相关的生物信息工具,用于RNA阵分析。最近,统计研究实现了使用基准数据集的中立性比较研究,脱落在最合适的RNASEQ数据分析方法上。 DicoExpress是一种基于脚本的工具,其在R中实现,该工具包括基于它们在中立性比较研究中的性能所选择的方法。 DicoExpress使用预先存在的R包,包括源代理,编辑和COSEQ,对RNASEQ数据进行质量控制,差异和共表达分析。用户可以执行完整的分析,提供映射的读取表达数据文件和包含实验设计信息的文件。在质量控制步骤之后,由于自动对比度写入功能,用户可以继续使用广义线性模型执行的差异表达式分析。使用COSEQ包来实现共表达分析。差异表达基因列表和鉴定的共表达簇被自动分析用于富集用户提供的注释。我们使用DicoExpress分析了芸苔属Napus L.转录响应的公开的RNAseq数据集。植物根和成熟叶片中的硅治疗。此数据集,包括两个生物因素和每个条件的三个重复,允许我们在教程中演示DicoExpress的所有功能。 DicoExpress是一种基于R脚本的工具,允许用户通过基于广义线性模型内对比度的差分分析来执行从质量控制到共表达分析的完整RNASEQ分析。 DicoExpress根据实验设计侧重于基因表达的统计建模,并促进了对结果的生物学解释的数据分析。

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