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Literature-based Evaluation of Microarray Normalization Procedures

机译:基于文献的微阵列归一化程序评估

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Normalization procedures attempt to remove non-biological variance found within micro array datasets. The choice of normalization procedure is important, as it has a dramatic effect on downstream data analysis. Although many normalization procedures have been developed, comparison and evaluation of their performance is difficult. We present a method to evaluate normalization procedures by utilizing gene-gene associations derived from the biomedical literature via Latent Semantic Indexing. The functional coherence of co-regulated genes obtained from different normalized data sets is calculated in order to evaluate the effectiveness of each normalization procedure. The method was tested on three popular normalization procedures (MAS5, PDNN and RMA) applied to gene expression across 71 recombinant inbred mouse brain samples. Results show that, on average, MAS5 outperforms both PDNN and RMA by producing a higher number of functionally cohesive gene sets. These results demonstrate that our literature-based cohesion analysis can provide an objective method for evaluation of normalization procedures.
机译:标准化程序试图去除微阵列数据集中发现的非生物差异。归一化程序的选择很重要,因为它对下游数据分析有很大的影响。尽管已经开发了许多标准化程序,但是很难比较和评估它们的性能。我们提出了一种方法,通过利用通过潜在语义索引从生物医学文献中获得的基因与基因的关联来评估标准化程序。计算从不同归一化数据集获得的共调控基因的功能一致性,以评估每种归一化程序的有效性。该方法在三种流行的归一化程序(MAS5,PDNN和RMA)上进行了测试,该程序可用于71种重组自交小鼠大脑样本中的基因表达。结果表明,平均而言,MAS5通过产生更多的功能内聚基因集而胜过PDNN和RMA。这些结果表明,我们基于文献的内聚分析可以为评估标准化程序提供客观的方法。

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