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T 细胞受体结合影响肽/MHC-I 复合物的动力学。

T-Cell Receptor Binding Affects the Dynamics of the Peptide/MHC-I Complex.

机构信息

Department of Statistics, Protein Informatics Group, University of Oxford , Oxford OX1 3SY, United Kingdom.

出版信息

J Chem Inf Model. 2016 Jan 25;56(1):46-53. doi: 10.1021/acs.jcim.5b00511. Epub 2015 Dec 29.

Abstract

The recognition of peptide/MHC by T-cell receptors is one of the most important interactions in the adaptive immune system. A large number of computational studies have investigated the structural dynamics of this interaction. However, to date only limited attention has been paid to differences between the dynamics of peptide/MHC with the T-cell receptor bound and unbound. Here we present the first large-scale molecular dynamics simulation study of this type investigating HLA-B*08:01 in complex with the Epstein-Barr virus peptide FLRGRAYGL and all possible single-point mutations (n = 172). All of the simulations were performed with and without the LC 13 T-cell receptor for a simulation time of 100 ns, yielding 344 simulations and a total simulation time of 34 400 ns. Our study is 2 orders of magnitude larger than the average T-cell receptor/peptide/MHC molecular dynamics simulation study. This data set provides reliable insights into alterations of the peptide/MHC-I dynamics caused by the presence of the T-cell receptor. We found that simulations in the presence of T-cell receptors have more hydrogen bonds between the peptide and MHC, altered flexibility patterns in the MHC helices and the peptide, a lower MHC groove width range, and altered solvent-accessible surface areas. This indicates that without a T-cell receptor the MHC binding groove can open and close, while the presence of the T-cell receptor inhibits these breathing-like motions.

摘要

T 细胞受体对肽/MHC 的识别是适应性免疫系统中最重要的相互作用之一。大量的计算研究已经研究了这种相互作用的结构动力学。然而,迄今为止,仅有限关注肽/MHC 与 T 细胞受体结合和未结合时的动力学差异。在这里,我们首次进行了这种类型的大规模分子动力学模拟研究,研究了 HLA-B*08:01 与 Epstein-Barr 病毒肽 FLRGRAYGL 及其所有可能的单点突变(n = 172)的复合物。所有模拟均在有和没有 LC 13 T 细胞受体的情况下进行,模拟时间为 100ns,产生 344 次模拟,总模拟时间为 34400ns。我们的研究比平均 T 细胞受体/肽/MHC 分子动力学模拟研究大两个数量级。该数据集为研究 T 细胞受体存在时肽/MHC-I 动力学的变化提供了可靠的见解。我们发现,在存在 T 细胞受体的情况下进行的模拟中,肽和 MHC 之间的氢键更多,MHC 螺旋和肽的柔韧性模式发生改变,MHC 槽宽度范围降低,溶剂可及表面积发生改变。这表明,没有 T 细胞受体时,MHC 结合槽可以打开和关闭,而 T 细胞受体的存在抑制了这些类似呼吸的运动。

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