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NanoStringDiff: a novel statistical method for differential expression analysis based on NanoString nCounter data

机译:纳斯特林德德:一种基于纳米划分数据的差异表达分析的新型统计方法

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摘要

The advanced medium-throughput NanoString nCounter technology has been increasingly used for mRNA or miRNA differential expression (DE) studies due to its advantages including direct measurement of molecule expression levels without amplification, digital readout and superior applicability to formalin fixed paraffin embedded samples. However, the analysis of nCounter data is hampered because most methods developed are based on t-tests, which do not fit the count data generated by the NanoString nCounter system. Furthermore, data normalization procedures of current methods are either not suitable for counts or not specific for NanoString nCounter data. We develop a novel DE detection method based on NanoString nCounter data. The method, named NanoStringDiff, considers a generalized linear model of the negative binomial family to characterize count data and allows for multifactor design. Data normalization is incorporated in the model framework through data normalization parameters, which are estimated from positive controls, negative controls and housekeeping genes embedded in the nCounter system. We propose an empirical Bayes shrinkage approach to estimate the dispersion parameter in the model and a likelihood ratio test to identify differentially expressed genes. Simulations and real data analysis demonstrate that the proposed method performs better than existing methods.
机译:由于其优点,越来越多地用于MRNA或miRNA差异表达(DE)研究,包括直接测量未扩大,数字读出和对福尔马林固定石蜡包埋的样品的分子表达水平的直接测量。然而,由于大多数开发的方法都基于T检验,因此阻碍了NCounter数据的分析,这不适合纳米管道系统产生的计数数据。此外,当前方法的数据归一化程序不适用于数量或不具体用于纳米锁定NCounter数据。我们开发了一种基于纳克莱德NCounter数据的新型DE检测方法。命名为纳秒的方法,认为负二项式家族的广义线性模型,以表征计数数据并允许多因素设计。数据归一化通过数据归一化参数结合在模型框架中,这些参数估计了NCounter系统中的正控制,负控制和管家基因。我们提出了一种经验性贝叶斯收缩方法来估计模型中的分散参数和似然比试验,以鉴定差异表达基因。仿真和实际数据分析表明,所提出的方法比现有方法更好。

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