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首页> 外文期刊>Chem-Bio Informatics Journal >An Interaction-based Approach for Affinity Prediction between Antigen Peptide and Human Leukocyte Antigen Using COMBINE Analysis
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An Interaction-based Approach for Affinity Prediction between Antigen Peptide and Human Leukocyte Antigen Using COMBINE Analysis

机译:基于相互作用的COMBINE分析法预测抗原肽和人类白细胞抗原之间的亲和力

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In peptide vaccine therapy, a peptide with high affinity for human leukocyte antigen (HLA), is important to stimulate the immune system to kill cancer cells. Several methods to predict HLA–peptide binding have been reported, but most of them rely on informatics to analyze the amino acid sequence of the peptide. Although intermolecular-interaction-based analysis is expected to improve prediction accuracy, such a method generally involves a high computational cost. Therefore, comparative binding energy (COMBINE) analysis, a 3D-quantitative structure–activity relationship method, combined with a rapidly implemented protein modeling method, was applied to solve this problem. The new method enabled quick evaluation of peptide affinity predictions with accuracy beyond a statistical method. In addition, several amino acid residues of HLA, which are known to be important for peptide binding, could be identified.
机译:在肽疫苗治疗中,对人白细胞抗原(HLA)具有高亲和力的肽对于刺激免疫系统杀死癌细胞很重要。已经报道了几种预测HLA-肽结合的方法,但是大多数方法依靠信息学来分析该肽的氨基酸序列。尽管期望基于分子间相互作用的分析可以提高预测精度,但是这种方法通常涉及较高的计算成本。因此,比较结合能(COMBINE)分析,一种3D定量的结构-活性关系方法,与快速实施的蛋白质建模方法相结合,被用来解决这个问题。这种新方法可以快速评估肽亲和力预测值,其准确性超出了统计方法。另外,可以鉴定出已知对肽结合很重要的HLA的几个氨基酸残基。

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