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δ/αβ T细胞受体(TCR)在不同基因座pHLA识别背景下保守的Vδ1结合几何结构:对TCR识别HIV肽的深入了解。

Conserved Vδ1 Binding Geometry in a Setting of Locus-Disparate pHLA Recognition by δ/αβ T Cell Receptors (TCRs): Insight into Recognition of HIV Peptides by TCRs.

作者信息

Shi Yi, Kawana-Tachikawa Ai, Gao Feng, Qi Jianxun, Liu Chuansheng, Gao Jia, Cheng Hao, Ueno Takamasa, Iwamoto Aikichi, Gao George F

机构信息

CAS Key Laboratory of Pathogenic Microbiology and Immunology, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

J Virol. 2017 Aug 10;91(17). doi: 10.1128/JVI.00725-17. Print 2017 Sep 1.

Abstract

Given the limited set of T cell receptor (TCR) V genes that are used to create TCRs that are reactive to different ligands, such as major histocompatibility complex (MHC) class I, MHC class II, and MHC-like proteins (for example, MIC molecules and CD1 molecules), the Vδ1 segment can be rearranged with Dδ-Jδ-Cδ or Jα-Cα segments to form classical γδTCRs or uncommon αβTCRs using a Vδ1 segment (δ/αβTCR). Here we have determined two complex structures of the δ/αβTCRs (S19-2 and TU55) bound to different locus-disparate MHC class I molecules with HIV peptides (HLA-A2402-Nef138-10 and HLA-B3501-Pol448-9). The overall binding modes resemble those of classical αβTCRs but display a strong tilt binding geometry of the Vδ1 domain toward the HLA α1 helix, due to a conserved extensive interaction between the CDR1δ loop and the N-terminal region of the α1 helix (mainly in position 62). The aromatic amino acids of the CDR1δ loop exploit different conformations ("aromatic ladder" or "aromatic hairpin") to accommodate distinct MHC helical scaffolds. This tolerance helps to explain how a particular TCR V region can similarly dock onto multiple MHC molecules and thus may potentially explain the nature of TCR cross-reactivity. In addition, the length of the CDR3δ loop could affect the extent of tilt binding of the Vδ1 domain, and adaptively, the pairing Vβ domains adjust their mass centers to generate differential MHC contacts, hence probably ensuring TCR specificity for a certain peptide-MHC class I (pMHC-I). Our data have provided further structural insights into the TCR recognition of classical pMHC-I molecules, unifying cross-reactivity and specificity. The specificity of αβ T cell recognition is determined by the CDR loops of the αβTCR, and the general mode of binding of αβTCRs to pMHC has been established over the last decade. Due to the intrinsic genomic structure of the TCR α/δ chain locus, some Vδ segments can rearrange with the Cα segment, forming a hybrid VδCαVβCβ TCR, the δ/αβTCR. However, the basis for the molecular recognition of such TCRs of their ligands is elusive. Here an αβTCR using the Vδ1 segment, S19-2, was isolated from an HIV-infected patient in an HLA-A*24:02-restricted manner. We then solved the crystal structures of the S19-2 TCR and another δ/αβTCR, TU55, bound to their respective ligands, revealing a conserved Vδ1 binding feature. Further binding kinetics analysis revealed that the S19-2 and TU55 TCRs bind pHLA very tightly and in a long-lasting manner. Our results illustrate the mode of binding of a TCR using the Vδ1 segment to its ligand, virus-derived pHLA.

摘要

鉴于用于产生对不同配体(如主要组织相容性复合体(MHC)I类、MHC II类和MHC样蛋白(例如,MIC分子和CD1分子))具有反应性的T细胞受体(TCR)的V基因数量有限,Vδ1片段可与Dδ-Jδ-Cδ或Jα-Cα片段重排,以使用Vδ1片段形成经典的γδTCR或不常见的αβTCR(δ/αβTCR)。在此,我们确定了δ/αβTCR(S19-2和TU55)与携带HIV肽的不同位点不同的MHC I类分子(HLA-A2402-Nef138-10和HLA-B3501-Pol448-9)结合的两种复杂结构。总体结合模式类似于经典αβTCR的结合模式,但由于CDR1δ环与α1螺旋的N端区域(主要在第62位)之间存在保守的广泛相互作用,Vδ1结构域呈现出朝向HLA α1螺旋的强烈倾斜结合几何形状。CDR1δ环的芳香族氨基酸利用不同的构象(“芳香梯”或“芳香发夹”)来适应不同的MHC螺旋支架。这种耐受性有助于解释特定的TCR V区域如何能够类似地对接多个MHC分子,从而可能潜在地解释TCR交叉反应性的本质。此外,CDR3δ环的长度可能会影响Vδ1结构域的倾斜结合程度,并且适应性地,配对的Vβ结构域会调整其质心以产生不同的MHC接触,因此可能确保TCR对特定肽-MHC I类(pMHC-I)的特异性。我们的数据为TCR对经典pMHC-I分子的识别提供了进一步的结构见解,统一了交叉反应性和特异性。αβ T细胞识别的特异性由αβTCR的CDR环决定,并且在过去十年中已经确立了αβTCR与pMHC结合的一般模式。由于TCR α/δ链基因座的内在基因组结构,一些Vδ片段可与Cα片段重排,形成杂交VδCαVβCβ TCR,即δ/αβTCR。然而,此类TCR对其配体进行分子识别的基础尚不清楚。在此,以HLA-A*24:02限制的方式从一名HIV感染患者中分离出使用Vδ1片段的αβTCR,即S19-2。然后,我们解析了S19-2 TCR和另一种δ/αβTCR(TU55)与其各自配体结合的晶体结构,揭示了保守的Vδ1结合特征。进一步的结合动力学分析表明,S19-2和TU55 TCR与pHLA紧密且持久地结合。我们的结果说明了使用Vδ1片段的TCR与其配体(病毒衍生的pHLA)的结合模式。

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