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转译 HLA-DQ2.3(DQA1*03:01/DQB1*02:01)蛋白分子的结构与功能研究。

Structural and functional studies of trans-encoded HLA-DQ2.3 (DQA1*03:01/DQB1*02:01) protein molecule.

机构信息

Centre for Immune Regulation and Department of Immunology, University of Oslo and Oslo University Hospital, Rikshospitalet, 0027 Oslo, Norway.

出版信息

J Biol Chem. 2012 Apr 20;287(17):13611-9. doi: 10.1074/jbc.M111.320374. Epub 2012 Feb 23.

Abstract

MHC class II molecules are composed of one α-chain and one β-chain whose membrane distal interface forms the peptide binding groove. Most of the existing knowledge on MHC class II molecules comes from the cis-encoded variants where the α- and β-chain are encoded on the same chromosome. However, trans-encoded class II MHC molecules, where the α- and β-chain are encoded on opposite chromosomes, can also be expressed. We have studied the trans-encoded class II HLA molecule DQ2.3 (DQA103:01/DQB102:01) that has received particular attention as it may explain the increased risk of certain individuals to type 1 diabetes. We report the x-ray crystal structure of this HLA molecule complexed with a gluten epitope at 3.05 Å resolution. The gluten epitope, which is the only known HLA-DQ2.3-restricted epitope, is preferentially recognized in the context of the DQ2.3 molecule by T-cell clones of a DQ8/DQ2.5 heterozygous celiac disease patient. This preferential recognition can be explained by improved HLA binding as the epitope combines the peptide-binding motif of DQ2.5 (negative charge at P4) and DQ8 (negative charge at P1). The analysis of the structure of DQ2.3 together with all other available DQ crystal structures and sequences led us to categorize DQA1 and DQB1 genes into two groups where any α-chain and β-chain belonging to the same group are expected to form a stable heterodimer.

摘要

MHC II 类分子由一条α链和一条β链组成,其膜远端界面形成肽结合槽。目前关于 MHC II 类分子的大部分知识来自顺式编码变异体,其中α链和β链编码在同一染色体上。然而,也可以表达反式编码的 II 类 MHC 分子,其中α链和β链编码在相反的染色体上。我们研究了反式编码的 II 类 HLA 分子 DQ2.3(DQA103:01/DQB102:01),它被认为可能解释了某些个体患 1 型糖尿病的风险增加。我们报告了该 HLA 分子与一个谷蛋白表位复合物的 X 射线晶体结构,分辨率为 3.05 Å。该谷蛋白表位是唯一已知的 HLA-DQ2.3 限制性表位,优先在一位患有乳糜泻的 DQ8/DQ2.5 杂合子的 T 细胞克隆中被 DQ2.3 分子识别。这种优先识别可以通过改善 HLA 结合来解释,因为该表位结合了 DQ2.5(P4 带负电荷)和 DQ8(P1 带负电荷)的肽结合基序。对 DQ2.3 结构的分析以及所有其他可用的 DQ 晶体结构和序列使我们将 DQA1 和 DQB1 基因分为两组,任何属于同一组的α链和β链都有望形成稳定的异二聚体。

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