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首页> 外文期刊>Journal of Bioinformatics and Sequence Analysis >Prediction of MHC Class II binderson-binders using negative selection algorithm in vaccine designing
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Prediction of MHC Class II binderson-binders using negative selection algorithm in vaccine designing

机译:在疫苗设计中使用负选择算法预测II类MHC结合剂/非结合剂

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摘要

The identification of major histocompatibility complex (MHC) class-II restricted peptides is an important goal in human immunological research leading to peptide based vaccine designing. These MHC class II peptides are predominantly recognized by CD4+ T-helper cells, which when turned on, have profound immune regulatory effects. Thus, prediction of such MHC class-II binding peptide is very helpful towards epitope based vaccine designing.?HLA-DR proteins were found to be associated with autoimmune diseases e.g. HLA-DRB1*0401 with rheumatoid arthritis. It is important for the treatment of autoimmune diseases to determine, which peptides bind to MHC class II molecules. The experimental methods for identification of these peptides are both time consuming and cost intensive. Therefore, computational methods have been found helpful in classifying these peptides as binders or non-binders. We have applied negative selection algorithm, an artificial immune system approach to predict MHC class-II binders and non-binders. For the evaluation of the NSA algorithm, five fold cross validation has been used and six MHC class-II alleles have been taken. The average area under ROC curve for HLA-DRB1*0301, DRB1*0401, DRB1*0701, DRB1*1101, DRB1*1501, DRB1*1301 have been found to be 0.75, 0.77, 0.71, 0.72, 0.69, and 0.84, respectively indicating good predictive performance for the small training set.
机译:鉴定主要组织相容性复合体(MHC)II类限制性肽是人类免疫学研究的重要目标,从而导致了基于肽的疫苗设计。这些II类MHC肽主要被CD4 + T辅助细胞识别,这些CD-T细胞在开启时具有深远的免疫调节作用。因此,预测这种MHC II类结合肽对基于表位的疫苗设计非常有帮助。发现ΔHLA-DR蛋白与自身免疫性疾病例如肝炎相关。 HLA-DRB1 * 0401类风湿关节炎。对于自身免疫性疾病的治疗而言,重要的是确定哪些肽与MHC II类分子结合。鉴定这些肽的实验方法既费时又费钱。因此,发现计算方法有助于将这些肽分类为结合剂或非结合剂。我们已经应用了阴性选择算法,这是一种人工免疫系统方法来预测II类MHC结合物和非结合物。为了评估NSA算法,已使用五次交叉验证,并已获取了六个MHC II类等位基因。发现HLA-DRB1 * 0301,DRB1 * 0401,DRB1 * 0701,DRB1 * 1101,DRB1 * 1501,DRB1 * 1301在ROC曲线下的平均面积分别为0.75、0.77、0.71、0.72、0.69和0.84,分别表示小训练集的良好预测性能。

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