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最小构象可塑性使 TCR 能够与不同 MHC II 异二聚体发生交叉反应。

Minimal conformational plasticity enables TCR cross-reactivity to different MHC class II heterodimers.

机构信息

Institute of Infection and Immunity, Cardiff University School of Medicine, Cardiff, United Kingdom.

出版信息

Sci Rep. 2012;2:629. doi: 10.1038/srep00629. Epub 2012 Sep 4.

Abstract

Successful immunity requires that a limited pool of αβ T-cell receptors (TCRs) provide cover for a vast number of potential foreign peptide antigens presented by 'self' major histocompatibility complex (pMHC) molecules. Structures of unligated and ligated MHC class-I-restricted TCRs with different ligands, supplemented with biophysical analyses, have revealed a number of important mechanisms that govern TCR mediated antigen recognition. HA1.7 TCR binding to the influenza hemagglutinin antigen (HA(306-318)) presented by HLA-DR1 or HLA-DR4 represents an ideal system for interrogating pMHC-II antigen recognition. Accordingly, we solved the structure of the unligated HA1.7 TCR and compared it to both complex structures. Despite a relatively rigid binding mode, HA1.7 T-cells could tolerate mutations in key contact residues within the peptide epitope. Thermodynamic analysis revealed that limited plasticity and extreme favorable entropy underpinned the ability of the HA1.7 T-cell clone to cross-react with HA(306-318) presented by multiple MHC-II alleles.

摘要

成功的免疫需要有限数量的 αβ T 细胞受体 (TCR) 为大量潜在的外来肽抗原提供“自身”主要组织相容性复合体 (pMHC) 分子的覆盖。未连接和连接的 MHC 类 I 限制 TCR 与不同配体的结构,辅以生物物理分析,揭示了许多控制 TCR 介导的抗原识别的重要机制。HA1.7 TCR 与流感血凝素抗原 (HA(306-318)) 的结合由 HLA-DR1 或 HLA-DR4 呈递,代表了一个理想的系统,可以检测 pMHC-II 抗原识别。因此,我们解决了未连接的 HA1.7 TCR 的结构,并将其与两个复合物结构进行了比较。尽管结合模式相对刚性,但 HA1.7 T 细胞可以容忍肽表位中关键接触残基的突变。热力学分析表明,有限的可塑性和极端有利的熵为 HA1.7 T 细胞克隆与多种 MHC-II 等位基因呈递的 HA(306-318) 交叉反应的能力提供了支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7bfc/3432979/dcf85563b043/srep00629-f1.jpg

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