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Human-Readable Rule Generator for Integrating Amino Acid Sequence Information and Stability of Mutant Proteins

机译:人类可读的规则生成器,用于整合氨基酸序列信息和突变蛋白的稳定性

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Most of the bioinformatics tools developed for predicting mutant protein stability appear as a black box and the relationship between amino acid sequence/structure and stability is hidden to the users. We have addressed this problem and developed a human-readable rule generator for integrating the knowledge of amino acid sequence and experimental stability change upon single mutation. Using information about the original residue, substituted residue, and three neighboring residues, classification rules have been generated to discriminate the stabilizing and destabilizing mutants and explore the basis for experimental data. These rules are human readable, and hence, the method enhances the synergy between expert knowledge and computational system. Furthermore, the performance of the rules has been assessed on a nonredundant data set of 1,859 mutants and we obtained an accuracy of 80 percent using cross validation. The results showed that the method could be effectively used as a tool for both knowledge discovery and predicting mutant protein stability. We have developed a Web for classification rule generator and it is freely available at http://bioinformatics.myweb.hinet.net/irobot.htm.
机译:为预测突变蛋白的稳定性而开发的大多数生物信息学工具都显示为黑匣子,氨基酸序列/结构与稳定性之间的关系对用户而言是隐藏的。我们已经解决了这个问题,并开发了一种人类可读的规则生成器,用于整合氨基酸序列的知识和单个突变后实验稳定性的变化。利用有关原始残基,取代残基和三个相邻残基的信息,已生成分类规则,以区分稳定化和去稳定化的突变体,并探索实验数据的基础。这些规则是人类可读的,因此,该方法增强了专家知识和计算系统之间的协同作用。此外,已经在1859个突变体的非冗余数据集上评估了规则的性能,使用交叉验证我们获得了80%的准确性。结果表明该方法可以有效地用作知识发现和预测突变蛋白稳定性的工具。我们已经开发了一个用于分类规则生成器的Web,可以从http://bioinformatics.myweb.hinet.net/irobot.htm免费获得。

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