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大麻素受体1活性和非活性状态下构象动力学的差异行为

Differential Behavior of Conformational Dynamics in Active and Inactive States of Cannabinoid Receptor 1.

作者信息

Isu Ugochi H, Polasa Adithya, Moradi Mahmoud

出版信息

bioRxiv. 2024 Apr 30:2024.04.17.589939. doi: 10.1101/2024.04.17.589939.

DOI:10.1101/2024.04.17.589939
PMID:38659869
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11042334/
Abstract

The cannabinoid receptor CB1 is a G protein-coupled receptor that regulates critical physiological processes including pain, appetite, and cognition. Understanding the conformational dynamics of CB1 associated with transitions between inactive and active signaling states is imperative for developing targeted modulators. Using microsecond-level all-atom molecular dynamics simulations, we identified marked differences in the conformational ensembles of inactive and active CB1 states in apo conditions. The inactive state exhibited substantially increased structural heterogeneity and plasticity compared to the more rigidified active state in the absence of stabilizing ligands. Transmembrane helices TM3 and TM7 were identified as distinguishing factors modulating the state-dependent dynamics. TM7 displayed amplified fluctuations selectively in the inactive state simulations attributed to disruption of conserved electrostatic contacts anchoring it to surrounding helices in the active state. Additionally, we identified significant reorganization of key salt bridge and hydrogen bond networks known to control CB1 activation between states. For instance, a conserved D213-Y224 hydrogen bond and D184-K192 salt bridge interactions showed marked rearrangements between the states. Collectively, these findings reveal the specialized role of TM7 in directing state-dependent CB1 dynamics through electrostatic switch mechanisms. By elucidating the intrinsic enhanced flexibility of inactive CB1, this study provides valuable insights into the conformational landscape enabling functional transitions. Our perspective advances understanding of CB1 activation mechanisms and offers opportunities for structure-based drug discovery targeting the state-specific conformational dynamics of this receptor.

摘要

大麻素受体CB1是一种G蛋白偶联受体,可调节包括疼痛、食欲和认知在内的关键生理过程。了解与非活性和活性信号状态之间转变相关的CB1构象动力学对于开发靶向调节剂至关重要。使用微秒级全原子分子动力学模拟,我们在无配体条件下确定了非活性和活性CB1状态的构象集合存在显著差异。与在没有稳定配体时更僵化的活性状态相比,非活性状态表现出显著增加的结构异质性和可塑性。跨膜螺旋TM3和TM7被确定为调节状态依赖性动力学的区分因素。在非活性状态模拟中,TM7表现出选择性放大的波动,这归因于保守静电接触的破坏,而在活性状态下这些接触将其锚定在周围的螺旋上。此外,我们确定了已知控制CB1状态间激活的关键盐桥和氢键网络的显著重组。例如,保守的D213-Y224氢键和D184-K192盐桥相互作用在不同状态之间表现出明显的重排。总的来说,这些发现揭示了TM7通过静电开关机制在指导状态依赖性CB1动力学方面的特殊作用。通过阐明非活性CB1固有的增强灵活性,本研究为实现功能转变的构象格局提供了有价值的见解。我们的观点推进了对CB1激活机制的理解,并为针对该受体状态特异性构象动力学的基于结构的药物发现提供了机会。

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