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Assessment and optimisation of normalisation methods for dual-colour antibody microarrays

机译:评估和优化双色抗体微阵列的标准化方法

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摘要

BackgroundRecent advances in antibody microarray technology have made it possible to measure the expression of hundreds of proteins simultaneously in a competitive dual-colour approach similar to dual-colour gene expression microarrays. Thus, the established normalisation methods for gene expression microarrays, e.g. loess regression, can in principle be applied to protein microarrays. However, the typical assumptions of such normalisation methods might be violated due to a bias in the selection of the proteins to be measured. Due to high costs and limited availability of high quality antibodies, the current arrays usually focus on a high proportion of regulated targets. Housekeeping features could be used to circumvent this problem, but they are typically underrepresented on protein arrays. Therefore, it might be beneficial to select invariant features among the features already represented on available arrays for normalisation by a dedicated selection algorithm.
机译:背景技术抗体微阵列技术的最新进展使得以类似于双色基因表达微阵列的竞争性双色方法同时测量数百种蛋白质的表达成为可能。因此,建立了基因表达微阵列的标准化方法,例如黄土回归,原则上可以应用于蛋白质微阵列。但是,由于要测量的蛋白质的选择存在偏差,可能会违反此类标准化方法的典型假设。由于高成本和高质量抗体的有限可用性,当前的阵列通常集中在高比例的调控靶标上。管家功能可用于解决此问题,但通常在蛋白质阵列上代表性不足。因此,从可用阵列上已经表示的特征中选择不变特征以通过专用选择算法进行标准化可能是有益的。

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