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TAPBPR 伴侣下肽加载到主要组织相容性复合体 I 类分子的动力学

Dynamics of peptide loading into major histocompatibility complex class I molecules chaperoned by TAPBPR.

机构信息

Key Laboratory of Systems Biomedicine (Ministry of Education), Shanghai Center for Systems Biomedicine, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

出版信息

Phys Chem Chem Phys. 2022 May 25;24(20):12397-12409. doi: 10.1039/d2cp00423b.

Abstract

Major histocompatibility complex class I (MHC-I) molecules display antigenic peptides on the cell surface for T cell receptor scanning, thereby activating the immune response. Peptide loading into MHC-I molecules is thus a critical step during the antigen presentation process. Chaperone TAP-binding protein related (TAPBPR) plays a critical role in promoting high-affinity peptide loading into MHC-I, by discriminating against the low-affinity ones. However, the complete peptide loading dynamics into TAPBPR-bound MHC-I is still elusive. Here, we constructed kinetic network models based on hundreds of short-time MD simulations with an aggregated simulation time of ∼21.7 μs, and revealed, at atomic level, four key intermediate states of one antigenic peptide derived from melanoma-associated MART-1/Melan-A protein during its loading process into TAPBPR-bound MHC-I. We find that the TAPBPR binding at the MHC-I pocket-F can substantially reshape the distant pocket-B allosteric regulations, which in turn promotes the following peptide N-terminal loading. Intriguingly, the partially loaded peptide could profoundly weaken the TAPBPR-MHC stability, promoting the dissociation of the TAPBPR scoop-loop (SL) region from the pocket-F to a more solvent-exposed conformation. Structural inspections further indicate that the peptide loading could remotely affect the SL binding site through both allosteric perturbations and direct contacts. In addition, another structural motif of TAPBPR, the jack hairpin region, was also found to participate in mediating the peptide editing. Our study sheds light on the detailed molecular mechanisms underlying the peptide loading process into TAPBPR-bound MHC-I and pinpoints the key structural factors responsible for dictating the peptide-loading dynamics.

摘要

主要组织相容性复合体 I 类 (MHC-I) 分子在细胞表面展示抗原肽,以供 T 细胞受体扫描,从而激活免疫反应。因此,肽加载到 MHC-I 分子中是抗原呈递过程中的关键步骤。伴侣蛋白 TAP 结合蛋白相关 (TAPBPR) 通过区分低亲和力肽,在促进高亲和力肽加载到 MHC-I 中发挥关键作用。然而,完整的肽加载动力学到 TAPBPR 结合的 MHC-I 仍然难以捉摸。在这里,我们基于数百个短时间 MD 模拟构建了动力学网络模型,总模拟时间约为 21.7 μs,并在原子水平上揭示了一个源自黑色素瘤相关 MART-1/Melan-A 蛋白的抗原肽在其加载到 TAPBPR 结合的 MHC-I 过程中的四个关键中间状态。我们发现 TAPBPR 在 MHC-I 口袋-F 的结合可以极大地重塑远距离口袋-B 的变构调节,这反过来又促进了随后的肽 N 端加载。有趣的是,部分加载的肽可以显著削弱 TAPBPR-MHC 的稳定性,促进 TAPBPR 勺环 (SL) 区域从口袋-F 解离到更暴露于溶剂的构象。结构检查进一步表明,肽加载可以通过变构干扰和直接接触远程影响 SL 结合位点。此外,TAPBPR 的另一个结构基序,即发夹区,也被发现参与介导肽编辑。我们的研究揭示了肽加载到 TAPBPR 结合的 MHC-I 中的详细分子机制,并确定了决定肽加载动力学的关键结构因素。

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