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Internal standard-based analysis of microarray data. Part 1: analysis of differential gene expressions.

机译:基于内部标准的微阵列数据分析。第1部分:差异基因表达分析。

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摘要

Genome-scale microarray experiments for comparative analysis of gene expressions produce massive amounts of information. Traditional statistical approaches fail to achieve the required accuracy in sensitivity and specificity of the analysis. Since the problem can be resolved neither by increasing the number of replicates nor by manipulating thresholds, one needs a novel approach to the analysis. This article describes methods to improve the power of microarray analyses by defining internal standards to characterize features of the biological system being studied and the technological processes underlying the microarray experiments. Applying these methods, internal standards are identified and then the obtained parameters are used to define (i) genes that are distinct in their expression from background; (ii) genes that are differentially expressed; and finally (iii) genes that have similar dynamical behavior.
机译:用于基因表达比较分析的基因组规模微阵列实验产生了大量信息。传统的统计方法无法在分析的敏感性和特异性上达到所需的准确性。由于既不能通过增加重复次数也不能通过操作阈值来解决问题,因此需要一种新颖的分析方法。本文介绍了一些方法,这些方法通过定义内部标准来表征正在研究的生物系统的特征以及微阵列实验基础的技术过程,从而提高微阵列分析的功能。应用这些方法,鉴定内部标准,然后使用获得的参数定义(i)与背景表达不同的基因; (ii)差异表达的基因;最后是(iii)具有相似动力学行为的基因。

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