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Normalization for cDNA microarray data: a robust composite method addressing single and multiple slide systematic variation

机译:cDNA微阵列数据的标准化:解决单个和多个载玻片系统变异的强大复合方法

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摘要

There are many sources of systematic variation in cDNA microarray experiments which affect the measured gene expression levels (e.g. differences in labeling efficiency between the two fluorescent dyes). The term normalization refers to the process of removing such variation. A constant adjustment is often used to force the distribution of the intensity log ratios to have a median of zero for each slide. However, such global normalization approaches are not adequate in situations where dye biases can depend on spot overall intensity and/or spatial location within the array. This article proposes normalization methods that are based on robust local regression and account for intensity and spatial dependence in dye biases for different types of cDNA microarray experiments. The selection of appropriate controls for normalization is discussed and a novel set of controls (microarray sample pool, MSP) is introduced to aid in intensity-dependent normalization. Lastly, to allow for comparisons of expression levels across slides, a robust method based on maximum likelihood estimation is proposed to adjust for scale differences among slides.
机译:cDNA微阵列实验中有许多系统变异的来源,这些变异会影响测得的基因表达水平(例如两种荧光染料之间标记效率的差异)。术语标准化是指消除这种变化的过程。通常使用恒定调整来强制强度对数比率的分布,以使每个幻灯片的中位数为零。然而,在染料偏差可能取决于斑点整体强度和/或阵列内空间位置的情况下,这种全局归一化方法是不够的。本文提出了基于稳健的局部回归并考虑到不同类型的cDNA微阵列实验染料偏倚的强度和空间依赖性的归一化方法。讨论了用于归一化的适当对照的选择,并引入了一组新的对照(微阵列样品池,MSP)来帮助进行依赖于强度的归一化。最后,为了允许比较幻灯片之间的表达水平,提出了一种基于最大似然估计的健壮方法来调整幻灯片之间的比例差异。

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