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Using the concept of Chou's pseudo amino acid composition to predict protein subcellular localization:an approach by incorporating evolutionary information and von Neumann entropies

机译:使用周氏假氨基酸组成的概念预测蛋白质亚细胞定位:一种融合进化信息和冯·诺依曼熵的方法

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摘要

The rapidly increasing number of sequence entering into the genome databank has called for the need for developing automated methods to analyze them.Information on the subcellular localization of new found protein sequences is important for helping to reveal their functions in time and conducting the study of system biology at the cellular level.Based on the concept of Chou's pseudo-amino acid composition,a series of useful information and techniques,such as residue conservation scores,von Neumann entropies,multi-scale energy,and weighted auto-correlation function were utilized to generate the pseudo-amino acid components for representing the protein samples.Based on such an infrastructure,a hybridization predictor was developed for identifying uncharacterized proteins among the following 12 subcellular localizations:chloroplast,cytoplasm,cytoskeleton,endoplasmic reticulum,extracell,Golgi apparatus,lyso-some,mitochondria,nucleus,peroxisome,plasma membrane,and vacuole.Compared with the results reported by the previous investigators,higher success rates were obtained,suggesting that the current approach is quite promising,and may become a useful high-throughput tool in the relevant areas.
机译:进入基因组数据库的序列数量迅速增加,需要开发自动化的方法来对其进行分析。新发现的蛋白质序列在亚细胞定位中的信息对于帮助及时揭示其功能和进行系统研究非常重要。基于周氏假氨基酸组成的概念,利用一系列有用的信息和技术,例如残基保守评分,冯·诺伊曼熵,多尺度能量和加权自相关函数在这种基础上,开发了一种杂交预测子,用于鉴定以下12个亚细胞定位中未表征的蛋白:叶绿体,细胞质,骨架,内质网,细胞外,高尔基体,溶菌-一些,线粒体,细胞核,过氧化物酶体,质膜和液泡。以前的研究人员报告的结果表明,获得了较高的成功率,这表明当前的方法是很有前途的,并且可能在相关领域成为有用的高通量工具。

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