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Designing predictors of halophilic and non-halophilic proteins using support vector machines

机译:使用支持向量机设计嗜盐和非嗜盐蛋白的预测因子

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Finding the molecular features causes the halophilicity in the halostable organisms is helpful to understand the halophilic adaption. In this study, we proposed a prediction method for halophilic proteins by using a machine learning method. The stages of this study are six-fold. First, we establish a non-redundant dataset of the halophilic proteins, collected from NCBI, Uniprotkb and EMBL-EBI databases. The dataset consists of 245 positive and negative proteins with sequence identity <25%. Second, the protein sequences are represented by three types of feature vector sets which include amino acid composition, dipeptide composition, and physicochemical properties. Third, we propose three classifiers based on support vector machine (SVM) to classify the halophilic proteins and non-halophilic proteins. Fourth, the independent test accuracies of the three efficient classifiers are larger than 83%. Fifth, an inheritable biobjective combinatory genetic algorithm is utilized to select a set of 11 physicochemical properties (PCPs). Sixth, these abundant amino acids, high different dipeptides (amino acid pair) and 11 informative PCPs can support to analyze the halophilic and non-halophilic proteins.
机译:寻找分子特征会导致可卤化生物的嗜盐性,有助于理解其嗜盐适应性。在这项研究中,我们提出了一种通过使用机器学习方法预测嗜盐蛋白的方法。这项研究的阶段有六个方面。首先,我们建立了从NCBI,Uniprotkb和EMBL-EBI数据库收集的嗜盐蛋白质的非冗余数据集。数据集由245个阳性和阴性蛋白组成,其序列同一性<25%。其次,蛋白质序列由三种特征向量集表示,这些特征向量集包括氨基酸组成,二肽组成和理化特性。第三,我们提出了基于支持向量机(SVM)的三个分类器,对嗜盐蛋白和非嗜盐蛋白进行分类。第四,三个有效分类器的独立测试准确性大于83%。第五,利用可继承的双目标组合遗传算法来选择11种物理化学性质(PCP)的集合。第六,这些丰富的氨基酸,高度不同的二肽(氨基酸对)和11种信息丰富的PCP可支持分析嗜盐和非嗜盐蛋白。

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