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首页> 外文期刊>BMC Genomics >ReadqPCR and NormqPCR: R packages for the reading, quality checking and normalisation of RT-qPCR quantification cycle (Cq) data
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ReadqPCR and NormqPCR: R packages for the reading, quality checking and normalisation of RT-qPCR quantification cycle (Cq) data

机译:ReadqPCR和NormqPCR:R程序包,用于RT-qPCR定量循环(Cq)数据的读取,质量检查和标准化

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Background Measuring gene transcription using real-time reverse transcription polymerase chain reaction (RT-qPCR) technology is a mainstay of molecular biology. Technologies now exist to measure the abundance of many transcripts in parallel. The selection of the optimal reference gene for the normalisation of this data is a recurring problem, and several algorithms have been developed in order to solve it. So far nothing in R exists to unite these methods, together with other functions to read in and normalise the data using the chosen reference gene(s). Results We have developed two R/Bioconductor packages, ReadqPCR and NormqPCR, intended for a user with some experience with high-throughput data analysis using R, who wishes to use R to analyse RT-qPCR data. We illustrate their potential use in a workflow analysing a generic RT-qPCR experiment, and apply this to a real dataset. Packages are available from http://www.bioconductor.org/packages/release/bioc/html/ReadqPCR.html webcite and http://www.bioconductor.org/packages/release/bioc/html/NormqPCR.html webcite Conclusions These packages increase the repetoire of RT-qPCR analysis tools available to the R user and allow them to (amongst other things) read their data into R, hold it in an ExpressionSet compatible R object, choose appropriate reference genes, normalise the data and look for differential expression between samples.
机译:背景技术使用实时逆转录聚合酶链反应(RT-qPCR)技术测量基因转录是分子生物学的支柱。现在存在可以并行测量许多笔录数量的技术。为使该数据标准化而选择最佳参考基因是一个反复出现的问题,为了解决该问题已开发了几种算法。到目前为止,R中没有任何东西可以将这些方法与使用所选参考基因读入并标准化数据的其他功能结合在一起。结果我们开发了两个R / Bioconductor软件包ReadqPCR和NormqPCR,面向具有使用R进行高通量数据分析经验的用户,他们希望使用R来分析RT-qPCR数据。我们说明了它们在分析通用RT-qPCR实验的工作流程中的潜在用途,并将其应用于实际数据集。可以从http://www.bioconductor.org/packages/release/bioc/html/ReadqPCR.html网站和http://www.bioconductor.org/packages/release/bioc/html/NormqPCR.html网站中获得软件包。结论这些软件包增加了R用户可用的RT-qPCR分析工具的种类,并允许他们(除其他外)将数据读入R中,将其保存在与ExpressionSet兼容的R对象中,选择适当的参考基因,对数据进行规范化和外观样品之间的差异表达。

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