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In silico prediction of promoter sequences of Bacillus species

机译:芽孢杆菌种启动子序列的计算机模拟

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The understanding of the gene regulation process, even with the advances of the in vitro and in silico techniques, has been one of the main challenges for the molecular biologists. In this context, an important regulatory mechanisms are the promoters regions, which promote the initialization of the gene expression process. In this paper, we present an empirical comparison of machine learning techniques such as Naive Bayes Classifier, Decision Trees, Support Vector Machines and Neural Networks to the task of promoter prediction. In order to do so, we first build a hybrid dataset of promoter and non-promoter sequences for six different species of Bacillus: subtilis, liqueniformis, cereus, megaterium, thurigiensis, and firmus.
机译:甚至随着体外和计算机技术的发展,对基因调控过程的理解一直是分子生物学家面临的主要挑战之一。在这种情况下,重要的调控机制是启动子区域,其促进基因表达过程的初始化。在本文中,我们对机器学习技术(如朴素贝叶斯分类器,决策树,支持向量机和神经网络)与启动子预测任务进行了实证比较。为了做到这一点,我们首先为六个不同种类的芽孢杆菌建立了启动子和非启动子序列的混合数据集:枯草芽孢杆菌,蜡状杆菌,蜡状芽孢杆菌,巨大芽孢杆菌,thurigiensis和firmus。

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