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An approach to predict transcription factor DNA binding site specificity based upon gene and transcription factor functional categorization

机译:基于基因和转录因子功能分类的预测转录因子DNA结合位点特异性的方法

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Motivation: To understand transcription regulatory mechanisms, it is indispensable to investigate transcription factor (TF) DNA binding preferences. We noted that the generally acknowledged information of functional annotations of TFs as well as that of their target genes should provide useful hints in determining TF DNA binding preferences.Results: In this contribution, we developed an integrative method based on the Nearest Neighbor Algorithm, to predict DNA binding preferences through integrating both the functional/structural information of TFs arid the interaction between TFs and their targets. The accuracy of cross-validation tests on the dataset consisting of 3430 positive samples and 7000 negative samples reaches 87.0% for 10-fold cross-validation and 87.9% for jackknife cross-validation test, which is a much better result than that in our previous work. The prediction result indicates that the improved method we developed could be a powerful approach to infer the TF DNA preference in silico.
机译:动机:要了解转录调控机制,调查转录因子(TF)DNA结合偏好是必不可少的。我们注意到,公认的TF功能注释及其靶基因的信息应该为确定TF DNA结合偏好提供有用的提示。结果:在这项贡献中,我们开发了一种基于最近邻居算法的整合方法,以通过整合TF的功能/结构信息以及TF及其靶标之间的相互作用来预测DNA结合偏好。对包含3430个正样本和7000个负样本的数据集进行交叉验证测试的准确性,针对10倍交叉验证的准确性达到87.0%,对于折刀交叉验证测试的准确性达到87.9%,这比我们之前的结果要好得多工作。预测结果表明,我们开发的改进方法可能是推断计算机模拟TF DNA偏好的有效方法。

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