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Classification of co-expressed genes from DNA regulatory regions

机译:来自DNA调控区的共表达基因的分类

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摘要

The analysis of non-coding DNA regulatory regions is one of the most challenging open problems in computational biology. In this paper we investigate whether we can predict functional information about genes by using information extracted from their sequences together with expression data. We formalize this problem as a classification problem, and we apply Support Vector Machines (SVMs) with non-linear kernels to predict classes of co-expressed genes obtained from clustering procedures. SVMs are trained using information about selected motifs extracted from DNA regulatory regions through combinatorial and statistical methods. In our experiments, we show that functional classes of genes can be predicted from biological sequence data in Saccharomices cerevisiae, achieving results competitive with those recently presented in the literature.
机译:非编码DNA调控区的分析是计算生物学中最具挑战性的开放性问题之一。在本文中,我们研究了是否可以通过使用从基因序列中提取的信息以及表达数据来预测基因的功能信息。我们将此问题形式化为分类问题,并应用带有非线性核的支持向量机(SVM)来预测从聚类过程中获得的共表达基因的类别。使用有关通过组合和统计方法从DNA调控区提取的选定基序的信息来训练SVM。在我们的实验中,我们表明可以根据酿酒酵母中的生物序列数据预测基因的功能类别,从而获得与文献中提出的结果相竞争的结果。

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