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揭示激动剂介导的大麻素受体 1(CB1)激活和磷脂介导的变构调节的机制。

Revealing the Mechanism of Agonist-Mediated Cannabinoid Receptor 1 (CB1) Activation and Phospholipid-Mediated Allosteric Modulation.

机构信息

Instituto de Salud Carlos III , Centro de Investigación Biomédica en Red de Salud Mental, CIBERSAM , 08193 Bellaterra , Spain.

出版信息

J Med Chem. 2019 Jun 13;62(11):5638-5654. doi: 10.1021/acs.jmedchem.9b00612. Epub 2019 May 29.

Abstract

Cannabinoid receptor 1 (CB1) mediates the functional responses of Δ-tetrahydrocannabinol. Although progress has been made in understanding cannabinoid binding and receptor activation, detailed knowledge of the dynamics involved in the activation mechanism of CB1 is lacking. Here, we use recently determined CB1 crystal structures to analyze its transition from inactive to active state by performing unbiased microsecond-length molecular dynamics (MD) simulations, totaling 32 μs, with and without bound potent cannabinoid agonist CP-55940. CB1 activation is characterized by an upward axial movement of transmembrane (TM) helix 3, inward movement of TM7, and outward movement of TM6. These conformational changes collectively allow G protein docking, although fully active states of the receptor occur only transiently during MD simulations. Additionally, positive allosteric modulation of CB1 by anionic phospholipids is found to increase action of the bound agonist. Specifically, this involves protein-lipid interactions at intracellular loop 3, TM6, and ionic lock residue Arg214.

摘要

大麻素受体 1(CB1)介导了Δ-四氢大麻酚的功能反应。尽管在理解大麻素结合和受体激活方面已经取得了进展,但对于 CB1 激活机制中涉及的动力学的详细知识仍然缺乏。在这里,我们使用最近确定的 CB1 晶体结构,通过进行无偏的微秒长度分子动力学(MD)模拟,分析其从不活跃状态到活跃状态的转变,模拟总时长为 32μs,同时存在和不存在结合的强效大麻素激动剂 CP-55940。CB1 的激活特征是跨膜(TM)螺旋 3 的向上轴向运动、TM7 的向内运动和 TM6 的向外运动。这些构象变化共同允许 G 蛋白对接,尽管在 MD 模拟过程中,受体的完全活跃状态仅短暂出现。此外,阴离子磷脂对 CB1 的正变构调节被发现增加了结合激动剂的作用。具体而言,这涉及细胞内环 3、TM6 和离子锁残基 Arg214 的蛋白-脂质相互作用。

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