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SORTALLER: predicting allergens using substantially optimized algorithm on allergen family featured peptides

机译:SORTALLER:使用针对过敏原家族特色肽段的实质上优化的算法预测过敏原

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摘要

SORTALLER is an online allergen classifier based on allergen family featured peptide (AFFP) dataset and normalized BLAST E-values, which establish the featured vectors for support vector machine (SVM). AFFPs are allergen-specific peptides panned from irredundant allergens and harbor perfect information with noise fragments eliminated because of their similarity to non-allergens. SORTALLER performed significantly better than other existing software and reached a perfect balance with high specificity (98.4%) and sensitivity (98.6%) for discriminating allergenic proteins from several independent datasets of protein sequences of diverse sources, also highlighting with the Matthews correlation coefficient (MCC) as high as 0.970, fast running speed and rapidly predicting a batch of amino acid sequences with a single click.
机译:SORTALLER是基于过敏原家族特征肽(AFFP)数据集和标准化BLAST E值的在线过敏原分类器,可建立支持向量机(SVM)的特征向量。 AFFP是从多余的过敏原中筛选出的过敏原特异肽,由于与非过敏原相似,因此可以消除噪音片段,从而保留了完美的信息。 SORTALLER的性能明显优于其他现有软件,并以高特异性(98.4%)和敏感性(98.6%)达到了完美的平衡,可从多种来源的蛋白质序列的多个独立数据集中区分过敏原蛋白质,并以Matthews相关系数(MCC)突出显示)高达0.970,运行速度快,只需单击一下即可快速预测一批氨基酸序列。

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