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Statistical methods for identifying yeast cell cycle transcription factors

机译:鉴定酵母细胞周期转录因子的统计方法

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Knowing transcription factors (TFs) involved in the yeast cell cycle is helpful for understanding the regulation of yeast cell cycle genes. We therefore developed two methods for predicting (i) individual cell cycle TFs and (h) synergistic TF pairs. The essential idea is that genes regulated by a cell cycle TF should have higher (lower, if it is a repressor) expression levels than genes not regulated by it during one or more phases of the cell cycle. This idea can also be used to identify synergistic interactions of TFs. Applying our methods to chromatin immunoprecipitation data and microarray data, we predict 50 cell cycle TFs and 80 synergistic TF pairs, including most known cell cycle TFs and synergistic TF pairs. Using these and published results, we describe the behaviors of 50 known or inferred cell cycle TFs in each cell cycle phase in terms of activation/repression and potential positiveegative interactions between TFs. In addition to the cell cycle, our methods are also applicable to other functions.
机译:了解酵母细胞周期中涉及的转录因子(TFs)有助于理解酵母细胞周期基因的调控。因此,我们开发了两种预测(i)单个细胞周期TF和(h)协同TF对的方法。基本思想是,受细胞周期TF调控的基因应比在细胞周期的一个或多个阶段不受其调控的基因具有更高的表达水平(如果是阻遏物,则应较低)。这个想法也可以用于识别TF的协同相互作用。将我们的方法应用于染色质免疫沉淀数据和微阵列数据,我们预测了50个细胞周期TF和80个协同TF对,包括最知名的细胞周期TF和协同TF对。使用这些和已发表的结果,我们从激活/抑制和潜在的正/负相互作用之间描述了50个已知或推断的细胞周期TF在每个细胞周期阶段的行为。除了细胞周期外,我们的方法还适用于其他功能。

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