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A Graph Algorithm for Extracting Features from Transcription Factor Binding Sites

机译:从转录因子绑定站点提取特征的图算法

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Transcription factors play important roles in gene regulation. An accurate model that can describe the binding site of a transcription factor in the promoter region of a gene is thus the key for understanding the regulation of the gene. In this paper, we develop a new graph theoretical approach that can efficiently extract features from the binding sites of a transcription factor. These features contain the dependencies among different positions in the binding site and thus can provide a more accurate description of binding sites than models based on the conventional position specific scoring matrix (PSSM). Based on these features, statistical models can be constructed to describe the binding sites of a transcriptional factor. Our testing results showed that models constructed with our approach can find important features for binding sites and achieve significantly improved accuracy for predicting the locations of binding sites in DNA genomes.
机译:转录因子在基因调节中发挥重要作用。因此,可以描述基因启动子区域中转录因子的结合位点的准确模型是理解基因调节的关键。在本文中,我们开发了一种新的图形理论方法,可以有效地从转录因子的结合位点提取特征。这些特征包含绑定站点中不同位置之间的依赖性,因此可以提供比基于传统位置特定评分矩阵(PSSM)的模型更准确地描述绑定站点。基于这些特征,可以构建统计模型以描述转录因子的结合位点。我们的测试结果表明,通过我们的方法构建的模型可以找到结合位点的重要特征,并实现显着提高的准确性,以预测DNA基因组中的结合位点的位置。

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