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Extracting binary signals from microarray time-course data

机译:从微阵列时程数据中提取二进制信号

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摘要

This article presents a new method for analyzing microarray time courses by identifying genes that undergo abrupt transitions in expression level, and the time at which the transitions occur. The algorithm matches the sequence of expression levels for each gene against temporal patterns having one or two transitions between two expression levels. The algorithm reports a P-value for the matching pattern of each gene, and a global false discovery rate can also be computed. After matching, genes can be sorted by the direction and time of transitions. Genes can be partitioned into sets based on the direction and time of change for further analysis, such as comparison with Gene Ontology annotations or binding site motifs. The method is evaluated on simulated and actual time-course data. On microarray data for budding yeast, it is shown that the groups of genes that change in similar ways and at similar times have significant and relevant Gene Ontology annotations.
机译:本文提出了一种新的方法,可通过识别表达水平发生突然转变的基因以及发生转变的时间来分析微阵列时程。该算法将每个基因的表达水平序列与在两个表达水平之间具有一个或两个过渡的时间模式进行匹配。该算法报告每个基因的匹配模式的P值,还可以计算全局错误发现率。匹配后,可以按照转换的方向和时间对基因进行分类。可以根据变化的方向和时间将基因分为几组,以进行进一步的分析,例如与基因本体注释或结合位点基序进行比较。该方法在模拟和实际时程数据上进行评估。在发芽酵母的微阵列数据上,表明以相似方式和相似时间改变的基因组具有重要且相关的基因本体论注释。

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