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T 细胞在“认识自我”中的精湛技艺。

T-cell virtuosity in ''knowing thyself".

机构信息

Sir William Dunn School of Pathology, University of Oxford, Oxford, United Kingdom.

出版信息

Front Immunol. 2024 Feb 13;15:1343575. doi: 10.3389/fimmu.2024.1343575. eCollection 2024.

Abstract

Major Histocompatibility Complex (MHC) I and II and the αβ T-cell antigen receptor (TCRαβ) govern fundamental traits of adaptive immunity. They form a membrane-borne ligand-receptor system weighing host proteome integrity to detect contamination by nonself proteins. MHC-I and -II exhibit the "MHC-fold", which is able to bind a large assortment of short peptides as proxies for self and nonself proteins. The ensuing varying surfaces are mandatory ligands for Ig-like TCRαβ highly mutable binding sites. Conserved molecular signatures guide TCRαβ ligand binding sites to focus on the MHC-fold (MHC-restriction) while leaving many opportunities for its most hypervariable determinants to contact the peptide. This riveting molecular strategy affords many options for binding energy compatible with specific recognition and signalling aimed to eradicated microbial pathogens and cancer cells. While the molecular foundations of αβ T-cell adaptive immunity are largely understood, uncertainty persists on how peptide-MHC binding induces the TCRαβ signals that instruct cell-fate decisions. Solving this mystery is another milestone for understanding αβ T-cells' self/nonself discrimination. Recent developments revealing the innermost links between TCRαβ structural dynamics and signalling modality should help dissipate this long-sought-after enigma.

摘要

主要组织相容性复合体 (MHC) I 和 II 以及 αβ T 细胞抗原受体 (TCRαβ) 控制着适应性免疫的基本特征。它们形成一个膜结合的配体-受体系统,权衡宿主蛋白质组的完整性,以检测非自身蛋白质的污染。MHC-I 和 -II 表现出“MHC 折叠”,能够结合大量短肽作为自身和非自身蛋白质的代表。随之而来的不同表面是 Ig 样 TCRαβ高度可变性结合位点的必需配体。保守的分子特征指导 TCRαβ 配体结合位点集中在 MHC 折叠(MHC 限制)上,同时为其最高度可变的决定因素接触肽留下许多机会。这种引人入胜的分子策略为与特定识别和信号传导兼容的结合能提供了多种选择,旨在消除微生物病原体和癌细胞。虽然 αβ T 细胞适应性免疫的分子基础在很大程度上得到了理解,但关于肽-MHC 结合如何诱导指导细胞命运决策的 TCRαβ 信号仍然存在不确定性。解决这个谜团是理解 αβ T 细胞的自我/非自我区分的又一个里程碑。最近的发展揭示了 TCRαβ 结构动力学和信号转导方式之间的最内在联系,应该有助于消除这个长期以来的谜团。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c58b/10896960/c9118afdd48b/fimmu-15-1343575-g001.jpg

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