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Towards Universal Structure-Based Prediction of Class II MHC Epitopes for Diverse Allotypes

机译:迈向基于II类MHC表位的通用结构基于多种异型的预测。

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摘要

The binding of peptide fragments of antigens to class II MHC proteins is a crucial step in initiating a helper T cell immune response. The discovery of these peptide epitopes is important for understanding the normal immune response and its misregulation in autoimmunity and allergies and also for vaccine design. In spite of their biomedical importance, the high diversity of class II MHC proteins combined with the large number of possible peptide sequences make comprehensive experimental determination of epitopes for all MHC allotypes infeasible. Computational methods can address this need by predicting epitopes for a particular MHC allotype. We present a structure-based method for predicting class II epitopes that combines molecular mechanics docking of a fully flexible peptide into the MHC binding cleft followed by binding affinity prediction using a machine learning classifier trained on interaction energy components calculated from the docking solution. Although the primary advantage of structure-based prediction methods over the commonly employed sequence-based methods is their applicability to essentially any MHC allotype, this has not yet been convincingly demonstrated. In order to test the transferability of the prediction method to different MHC proteins, we trained the scoring method on binding data for DRB1*0101 and used it to make predictions for multiple MHC allotypes with distinct peptide binding specificities including representatives from the other human class II MHC loci, HLA-DP and HLA-DQ, as well as for two murine allotypes. The results showed that the prediction method was able to achieve significant discrimination between epitope and non-epitope peptides for all MHC allotypes examined, based on AUC values in the range 0.632–0.821. We also discuss how accounting for peptide binding in multiple registers to class II MHC largely explains the systematically worse performance of prediction methods for class II MHC compared with those for class I MHC based on quantitative prediction performance estimates for peptide binding to class II MHC in a fixed register.
机译:抗原的肽片段与II类MHC蛋白的结合是启动辅助T细胞免疫应答的关键步骤。这些肽表位的发现对于理解正常的免疫反应及其在自身免疫和变态反应中的失调以及疫苗设计非常重要。尽管具有生物医学重要性,但II类MHC蛋白的高度多样性与大量可能的肽序列相结合,使得无法对所有MHC同种异型的表位进行全面的实验测定。计算方法可以通过预测特定MHC同种异型的表位来满足这一需求。我们提出了一种用于预测II类表位的基于结构的方法,该方法结合了分子力学将完全柔性的肽对接到MHC结合裂隙中,然后使用对接溶液计算出的相互作用能分量进行训练的机器学习分类器进行结合亲和力预测。尽管与通常采用的基于序列的方法相比,基于结构的预测方法的主要优点是它们基本上适用于任何MHC同种异型,但尚未令人信服地证明这一点。为了测试预测方法对不同MHC蛋白的可转移性,我们训练了关于DRB1 * 0101结合数据的评分方法,并使用它来预测具有不同肽结合特异性的多种MHC同种异型,包括来自其他II类人类的代表MHC基因座,HLA-DP和HLA-DQ以及两种鼠类同种异型。结果表明,基于0.632–0.821的AUC值,该预测方法能够对所有MHC同种异型的抗原决定簇和非表位肽进行显着区分。我们还讨论了如何基于对肽结合II类MHC的定量预测性能估计,对多个寄存器中结合II类MHC的肽结合的会计解释在很大程度上解释了与II类MHC相比,II类MHC预测方法在系统上较差的表现。固定寄存器。

著录项

  • 期刊名称 PLoS Clinical Trials
  • 作者

    Andrew J. Bordner;

  • 作者单位
  • 年(卷),期 2010(5),12
  • 年度 2010
  • 页码 e14383
  • 总页数 12
  • 原文格式 PDF
  • 正文语种
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