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USING SIMPLE RULES ON PRESENCE AND POSITIONING OF MOTIFS FOR PROMOTER STRUCTURE MODELING AND TISSUE-SPECIFIC EXPRESSION PREDICTION

机译:用简单的规则关于启动子结构建模和组织特异性表达预测的基序的存在和定位

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Regulation of transcription is controlled by sets of transcription factors binding specific sites in the regulatory regions of genes. It is therefore believed that regulatory regions driving similar expression profiles share some common structural features. We here introduce a computational approach for finding a small set of rules describing the presence and positioning of motifs in a set of promoter sequences. This rule set is subsequently used for finding promoters that drive similar expression profiles from a genomic set of sequences. We applied our approach on muscle-expressed genes in Caenorhabditis elegans. We obtained a high average performance, and in the best case we found that almost 50% of true positive test genes scored higher than 90% of the true negative test genes. High scoring non-training sequences were enriched for muscle-expressed genes, and predicted motifs fitting the rules showed a significant tendency to be present in experimentally verified regulatory regions. Our model is more general than existing cis-regulatory module models, as rules selected by our model contain a variety of information, including not only proximal but also distal positioning of pairs of motifs, positioning with regard to the translation start site, and simply presences of motifs. We believe our model can help to increase our understanding about transcription factor cooperation and transcription initiation.
机译:转录调节由基因的调节区域中的特异性位点的转录因子组控制。因此,据信,驾驶类似的表达型材的监管区域具有一些常见的结构特征。我们在这里介绍一种计算方法,用于查找一小组规则,描述了一组启动子序列中的图案的存在和定位。随后用于查找从基因组序列集驱动类似表达谱的启动子。我们在Caenorhabditis elegans的肌肉表达基因上应用了方法。我们获得了高平均性能,并在最佳案例中发现,近50%的真正阳性测试基因的得分高于90%的真实的消极测试基因。富含肌肉表达的基因的高分性非训练序列,并且预测的主题拟合规则显示出在实验验证的调节区中存在的显着趋势。我们的模型比现有的顺式调控模块的型号比较一般,因为我们的模型中选择规则包含的各种信息,不仅包括近端也对图案的远端定位,对于翻译起始位点的定位,并简单地派驻主题。我们相信我们的模型可以帮助增加我们对转录因子合作和转录启动的理解。

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