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A higher-order background model improves the detection of promoter regulatory elements by Gibbs sampling.

机译:高阶背景模型通过吉布斯采样改善了对启动子调控元件的检测。

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MOTIVATION: Transcriptome analysis allows detection and clustering of genes that are coexpressed under various biological circumstances. Under the assumption that coregulated genes share cis-acting regulatory elements, it is important to investigate the upstream sequences controlling the transcription of these genes. To improve the robustness of the Gibbs sampling algorithm to noisy data sets we propose an extension of this algorithm for motif finding with a higher-order background model. RESULTS: Simulated data and real biological data sets with well-described regulatory elements are used to test the influence of the different background models on the performance of the motif detection algorithm. We show that the use of a higher-order model considerably enhances the performance of our motif finding algorithm in the presence of noisy data. For Arabidopsis thaliana, a reliable background model based on a set of carefully selected intergenic sequences was constructed. AVAILABILITY: Our implementation of the Gibbs sampler called the Motif Sampler can be used through a web interface: http://www.esat.kuleuven.ac.be/~thijs/Work/MotifSampler.html. CONTACT: gert.thijs
机译:动机:转录组分析可检测和聚类在各种生物学环境下共同表达的基因。在有核心基因共享顺式作用调控元件的假设下,研究控制这些基因转录的上游序列非常重要。为了提高Gibbs采样算法对嘈杂数据集的鲁棒性,我们提出了该算法的扩展,用于使用高阶背景模型进行主题查找。结果:具有良好描述的调节元件的模拟数据和真实生物数据集用于测试不同背景模型对图案检测算法性能的影响。我们表明,在存在嘈杂数据的情况下,使用高阶模型会大大提高我们的主题查找算法的性能。对于拟南芥,构建了基于一组精心选择的基因间序列的可靠背景模型。可用性:我们可以通过以下Web界面使用称为Motif采样器的Gibbs采样器的实现:http://www.esat.kuleuven.ac.be/~thijs/Work/MotifSampler.html。联系人:gert.thijs

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