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Genome-wide discovery of transcriptional modules from DNA sequence and gene expression

机译:来自DNA序列和基因表达的基因组对转录模块的发现

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In this paper, we describe an approach for understanding transcriptional regulation from both gene expression and promoter sequence data. We aim to identify transcriptional modules--sets of genes that are co-regulated in a set of experiments, througha common motif profile. Using the EM algorithm, our approach refines both the module assignment and the motif profile so as to best explain the expression data as a function of transcriptional motifs. It also dynamically adds and deletes motifs, as required to provide a genome-wide explanation of the expression data. We evaluate the method on two Saccharomyces cerevisiae gene expression data sets, showing that our approach is better than a standard one at recovering known motifs and at generating biologically coherent modules. We also combine our results with binding localization data to obtain regulatory relationships with known transcription factors, and show that many of the inferred relationships have support in the literature.
机译:在本文中,我们描述了一种了解基因表达和启动子序列数据的转录调节方法。我们的目标是识别转录模块 - 通过A共同实验中的共同调节的基因组,通过A共同的主题概况。使用EM算法,我们的方法改进了模块分配和图案配置文件,以便最好地将表达数据作为转录图案的函数解释。它还根据需要动态添加和删除图案,以提供对表达数据的基因组解释。我们评估了两种酿酒酵母酿酒酵母基因表达数据集的方法,表明我们的方法优于恢复已知基序和在生物相干模块时更好地优于标准的方法。我们还将我们的结果与绑定本地化数据结合起来,以获得具有已知转录因子的监管关系,并表明许多推断的关系在文献中有支持。

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