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Identification of Bacteriophage Virion Proteins Using Multinomial Naïve Bayes with g-Gap Feature Tree

机译:使用具有g-Gap特征树的多项朴素贝叶斯鉴定噬菌体病毒颗粒蛋白

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摘要

Bacteriophages, which are tremendously important to the ecology and evolution of bacteria, play a key role in the development of genetic engineering. Bacteriophage virion proteins are essential materials of the infectious viral particles and in charge of several of biological functions. The correct identification of bacteriophage virion proteins is of great importance for understanding both life at the molecular level and genetic evolution. However, few computational methods are available for identifying bacteriophage virion proteins. In this paper, we proposed a new method to predict bacteriophage virion proteins using a Multinomial Naïve Bayes classification model based on discrete feature generated from the g-gap feature tree. The accuracy of the proposed model reaches 98.37% with MCC of 96.27% in 10-fold cross-validation. This result suggests that the proposed method can be a useful approach in identifying bacteriophage virion proteins from sequence information. For the convenience of experimental scientists, a web server (PhagePred) that implements the proposed predictor is available, which can be freely accessed on the Internet.
机译:噬菌体对细菌的生态和进化极为重要,在基因工程的发展中起着关键作用。噬菌体病毒体蛋白是感染性病毒颗粒的必需物质,并负责多种生物学功能。正确鉴定噬菌体病毒粒子蛋白对于理解分子水平的生命和遗传进化都至关重要。但是,很少有计算方法可用于鉴定噬菌体病毒粒子蛋白。在本文中,我们提出了一种基于g-gap特征树生成的离散特征的,基于多项朴素贝叶斯分类模型的噬菌体病毒粒子蛋白预测新方法。在10倍交叉验证中,提出的模型的准确性达到98.37%,MCC为96.27%。该结果表明,所提出的方法可以是从序列信息中鉴定噬菌体病毒粒子蛋白的有用方法。为了方便实验科学家,可以使用实现建议的预测变量的Web服务器(PhagePred),该服务器可以在Internet上免费访问。

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