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Module networks: identifying regulatory modules and their condition-specific regulators from gene expression data

机译:模块网络:从基因表达数据中识别调节模块及其条件特异性调节剂

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Much of a cell's activity is organized as a network of interacting modules: sets of genes coregulated to respond to different conditions. We present a probabilistic method for identifying regulatory modules from gene expression data. Our procedure identifies modules of coregulated genes, their regulators and the conditions under which regulation occurs, generating testable hypotheses in the form regulator X regulates module Y under conditions W'. We applied the method to a Saccharomyces cerevisiae expression data set, showing its ability to identify functionally coherent modules and their correct regulators. We present microarray experiments supporting three novel predictions, suggesting regulatory roles for previously uncharacterized proteins. [References: 46]
机译:细胞的大部分活动被组织为相互作用模块的网络:成组的基因集合以响应不同的条件。我们提出了一种从基因表达数据中识别调控模块的概率方法。我们的程序确定了调控基因的模块,它们的调节子以及发生调节的条件,从而在条件W'下以调节子X调节模块Y的形式生成了可检验的假设。我们将该方法应用于酿酒酵母表达数据集,显示了其识别功能上一致的模块及其正确调控因子的能力。我们目前的微阵列实验支持三个新颖的预测,建议以前未表征的蛋白质的调控作用。 [参考:46]

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