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本文引用的文献

1
Processing of X-ray diffraction data collected in oscillation mode.振荡模式下收集的X射线衍射数据的处理。
Methods Enzymol. 1997;276:307-26. doi: 10.1016/S0076-6879(97)76066-X.
2
Phaser crystallographic software.相位结晶学软件。
J Appl Crystallogr. 2007 Aug 1;40(Pt 4):658-674. doi: 10.1107/S0021889807021206. Epub 2007 Jul 13.
3
An essential role for the stalk region of CD8 beta in the coreceptor function of CD8.CD8β的柄部区域在CD8共受体功能中起重要作用。
J Immunol. 2009 Jan 1;182(1):121-9. doi: 10.4049/jimmunol.182.1.121.
4
Regulation of T cell receptor activation by dynamic membrane binding of the CD3epsilon cytoplasmic tyrosine-based motif.通过CD3ε基于细胞质酪氨酸基序的动态膜结合对T细胞受体激活的调节。
Cell. 2008 Nov 14;135(4):702-13. doi: 10.1016/j.cell.2008.09.044.
5
PDBsum new things.蛋白质数据银行总结新内容。
Nucleic Acids Res. 2009 Jan;37(Database issue):D355-9. doi: 10.1093/nar/gkn860. Epub 2008 Nov 7.
6
The T cell receptor's alpha-chain connecting peptide motif promotes close approximation of the CD8 coreceptor allowing efficient signal initiation.T细胞受体的α链连接肽基序促进CD8共受体的紧密靠近,从而实现有效的信号启动。
J Immunol. 2008 Jun 15;180(12):8211-21. doi: 10.4049/jimmunol.180.12.8211.
7
Doubting the TCR coreceptor function of CD8alphaalpha.对CD8αα的TCR共受体功能表示怀疑。
Immunity. 2008 Feb;28(2):149-59. doi: 10.1016/j.immuni.2008.01.005.
8
Kinetics of MHC-CD8 interaction at the T cell membrane.T细胞膜上MHC-CD8相互作用的动力学
J Immunol. 2007 Dec 1;179(11):7653-62. doi: 10.4049/jimmunol.179.11.7653.
9
Deletion of CD4 and CD8 coreceptors permits generation of alphabetaT cells that recognize antigens independently of the MHC.CD4和CD8共受体的缺失使得能够产生不依赖于主要组织相容性复合体(MHC)识别抗原的αβT细胞。
Immunity. 2007 Nov;27(5):735-50. doi: 10.1016/j.immuni.2007.10.007.
10
Version 1.2 of the Crystallography and NMR system.晶体学与核磁共振系统1.2版本。
Nat Protoc. 2007;2(11):2728-33. doi: 10.1038/nprot.2007.406.

CD8αβ/MHC I类相互作用的结构基础:聚焦识别将CD8β定位到T细胞近端位置。

Structural basis of the CD8 alpha beta/MHC class I interaction: focused recognition orients CD8 beta to a T cell proximal position.

作者信息

Wang Rui, Natarajan Kannan, Margulies David H

机构信息

Molecular Biology Section, Laboratory of Immunology, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, MD 20892, USA.

出版信息

J Immunol. 2009 Aug 15;183(4):2554-64. doi: 10.4049/jimmunol.0901276. Epub 2009 Jul 22.

DOI:10.4049/jimmunol.0901276
PMID:19625641
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2782705/
Abstract

In the immune system, B cells, dendritic cells, NK cells, and T lymphocytes all respond to signals received via ligand binding to receptors and coreceptors. Although the specificity of T cell recognition is determined by the interaction of T cell receptors with MHC/peptide complexes, the development of T cells in the thymus and their sensitivity to Ag are also dependent on coreceptor molecules CD8 (for MHC class I (MHCI)) and CD4 (for MHCII). The CD8alphabeta heterodimer is a potent coreceptor for T cell activation, but efforts to understand its function fully have been hampered by ignorance of the structural details of its interactions with MHCI. In this study we describe the structure of CD8alphabeta in complex with the murine MHCI molecule H-2D(d) at 2.6 A resolution. The focus of the CD8alphabeta interaction is the acidic loop (residues 222-228) of the alpha3 domain of H-2D(d). The beta subunit occupies a T cell membrane proximal position, defining the relative positions of the CD8alpha and CD8beta subunits. Unlike the CD8alphaalpha homodimer, CD8alphabeta does not contact the MHCI alpha(2)- or beta(2)-microglobulin domains. Movements of the CD8alpha CDR2 and CD8beta CDR1 and CDR2 loops as well as the flexibility of the H-2D(d) CD loop facilitate the monovalent interaction. The structure resolves inconclusive data on the topology of the CD8alphabeta/MHCI interaction, indicates that CD8beta is crucial in orienting the CD8alphabeta heterodimer, provides a framework for understanding the mechanistic role of CD8alphabeta in lymphoid cell signaling, and offers a tangible context for design of structurally altered coreceptors for tumor and viral immunotherapy.

摘要

在免疫系统中,B细胞、树突状细胞、自然杀伤细胞和T淋巴细胞都会对通过配体与受体及共受体结合而接收到的信号作出反应。尽管T细胞识别的特异性由T细胞受体与MHC/肽复合物的相互作用决定,但T细胞在胸腺中的发育及其对抗原的敏感性也依赖于共受体分子CD8(针对MHC I类(MHCI))和CD4(针对MHCII)。CD8αβ异二聚体是T细胞激活的有效共受体,但由于对其与MHCI相互作用的结构细节缺乏了解,全面理解其功能的努力受到了阻碍。在本研究中,我们描述了与小鼠MHCI分子H-2D(d)复合的CD8αβ在2.6埃分辨率下的结构。CD8αβ相互作用的重点是H-2D(d) α3结构域的酸性环(残基222 - 228)。β亚基占据靠近T细胞膜的位置,确定了CD8α和CD8β亚基的相对位置。与CD8αα同二聚体不同,CD8αβ不接触MHCI的α(2)-或β(2)-微球蛋白结构域。CD8α互补决定区2(CDR2)和CD8β互补决定区1(CDR1)及互补决定区2环的运动以及H-2D(d) CD环的灵活性促进了单价相互作用。该结构解决了关于CD8αβ/MHCI相互作用拓扑结构的不确定数据,表明CD8β在定向CD8αβ异二聚体中至关重要,为理解CD8αβ在淋巴细胞信号传导中的机制作用提供了框架,并为设计用于肿瘤和病毒免疫治疗的结构改变的共受体提供了具体背景。