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PREDICTION OF TRANSCRIPTION FACTOR BINDING SITES USING GENETICAL GENOMICS METHODS

机译:遗传基因组学方法预测转录因子结合位点

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In this paper, we wanted to test whether it is possible to use genetical genomics information such as expression quantitative trait loci (eQTL) mapping results as input to a transcription factor binding site (TFBS) prediction algorithm. Furthermore, this new approach was compared to the more traditional cluster based TFBS prediction. The results of eQTL mapping are used as input to one of the top ranking TFBS prediction algorithms. Genes with observed expression profiles showing the same eQTL region are collected into eQTL groups. The promoter sequences of all the genes within the same eQTL group are used as input in the transcription factor binding site search. This approach is tested with a real data set of a recombinant inbred line population of Arabidopsis thaliana. The predicted motifs are compared to results obtained from the conventional approach of first clustering the gene expression values and then using the promoter sequences of the genes within the same cluster as input for the transcription factor binding site prediction. Our eQTL based approach produced different motifs compared to the cluster based method. Furthermore the score of the eQTL based motifs was higher than the score of the cluster based motifs. In a comparison to already predicted motifs from the AtcisDB database, the eQTL based and the cluster based method produced about the same number of hits with binding sites from AtcisDB. In conclusion, the results of this study clearly demonstrate the usefulness of eQTL to predict transcription factor binding sites.
机译:在本文中,我们想测试是否可以使用遗传基因组信息,例如表达定量性状基因座(eQTL)定位结果作为转录因子结合位点(TFBS)预测算法的输入。此外,将此新方法与更传统的基于集群的TFBS预测进行了比较。 eQTL映射的结果用作顶级TFBS预测算法之一的输入。将具有观察到的表达谱显示相同eQTL区域的基因收集到eQTL组中。同一eQTL组中所有基因的启动子序列均用作转录因子结合位点搜索的输入。用拟南芥的重组近交系种群的真实​​数据集测试了该方法。将预测的基序与从常规方法中获得的结果进行比较,该方法首先对基因表达值进行聚类,然后使用同一聚类中的基因启动子序列作为转录因子结合位点预测的输入。与基于聚类的方法相比,基于eQTL的方法产生了不同的图案。此外,基于eQTL的主题的得分高于基于簇的主题的得分。与来自AtcisDB数据库的已经预测的基序进行比较,基于eQTL和基于聚类的方法产生的命中数与AtcisDB的结合位点大致相同。总之,这项研究的结果清楚地证明了eQTL可以预测转录因子结合位点。

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