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PredSL: A Tool for the N-terminal Sequence-based Prediction of Protein Subcellular Localization

机译:PredSL:蛋白质亚细胞定位的基于N端序列的预测的工具

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The ability to predict the subcellular localization of a protein from its sequence is of great importance, as it provides information about the protein's function.We present a computational tool, PredSL, which utilizes neural networks, Markov chains, profile hidden Markov models, and scoring matrices for the prediction of the subcellular localization of proteins in eukaryotic cells from the N-terminal amino acid sequence. It aims to classify proteins into five groups: chloroplast,thylakoid, mitochondrion, secretory pathway, and "other". When tested in a fivefold cross-validation procedure, PredSL demonstrates 86.7% and 87.1% overall accuracy for the plant and non-plant datasets, respectively. Compared with TargetP, which is the most widely used method to date, and LumenP, the results of PredSL are comparable in most cases. When tested on the experimentally verified proteins of the Saccharomyces cerevisiae genome, PredSL performs comparably if not better than any available algorithm for the same task. Furthermore, PredSL is the only method capable for the prediction of these subcellular localizations that is available as a stand-alone application through the URL:http://bioinformatics.biol.uoa.gr/PredSL/.
机译:从蛋白质的序列预测蛋白质的亚细胞定位的能力非常重要,因为它提供了有关蛋白质功能的信息。我们提供了一种计算工具PredSL,该工具利用了神经网络,马尔可夫链,轮廓隐式马尔可夫模型和评分用于从N端氨基酸序列预测真核细胞中蛋白质亚细胞定位的矩阵。它旨在将蛋白质分为五类:叶绿体,类囊体,线粒体,分泌途径和“其他”。在五重交叉验证程序中进行测试时,PredSL分别显示出植物数据集和非植物数据集的整体准确度分别为86.7%和87.1%。与迄今为止最广泛使用的方法TargetP和LumenP相比,PredSL的结果在大多数情况下是可比的。当对啤酒酵母基因组的经实验验证的蛋白质进行测试时,PredSL的性能与同一项任务相比,甚至不比任何可用算法好。此外,PredSL是唯一能够预测这些亚细胞定位的方法,可以通过URL:http://bioinformatics.biol.uoa.gr/P​​redSL/作为独立应用程序使用。

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