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An efficient strategy to estimate thermodynamics and kinetics of Gprotein-coupled receptor activation using metadynamics and maximum caliber

机译:估算G热力学和动力学的有效策略利用动力学和最大口径的蛋白质偶联受体激活

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摘要

Computational strategies aimed at unveiling the thermodynamic and kinetic properties of G Protein-Coupled Receptor (GPCR) activation require extensive molecular dynamics simulations of the receptor embedded in an explicit lipid-water environment. A possible method for efficiently sampling the conformational space of such a complex system is metadynamics (MetaD) with path collective variables (CVs). Here, we applied well-tempered MetaD with path CVs to one of the few GPCRs for which both inactive and fully active experimental structures are available, the μ-opioid receptor (MOR), and assessed the ability of this enhanced sampling method to estimate the thermodynamic properties of receptor activation in line with those obtained by more computationally expensive adaptive sampling protocols. While n-body information theory analysis of these simulations confirmed that MetaD can efficiently characterize ligand-induced allosteric communication across the receptor, standard MetaD cannot be used directly to derive kinetic rates because transitions are accelerated by a bias potential. Applying the principle of Maximum Caliber (MaxCal) to the free-energy landscape of morphine-bound MOR reconstructed from MetaD, we obtained Markov state models that yield kinetic rates of MOR activation in agreement with those obtained by adaptive sampling. Taken together, these results suggest that the MetaD-MaxCal combination creates an efficient strategy for estimating thethermodynamic and kinetic properties of GPCR activation at an affordable computationalcost.
机译:旨在揭示G蛋白偶联受体(GPCR)激活的热力学和动力学特性的计算策略,需要对嵌入明确的脂质-水环境中的受体进行广泛的分子动力学模拟。有效采样这种复杂系统的构象空间的一种可能方法是具有路径集合变量(CV)的元动力学(MetaD)。在这里,我们将具有路径CV的脾气暴躁的MetaD应用于无活性和完全活性实验结构均可用的少数GPCR之一(μ阿片受体(MOR)),并评估了这种增强的采样方法评估血吸虫病的能力。受体激活的热力学特性与通过更昂贵的计算自适应采样协议获得的特性一致。尽管这些模拟的n体信息理论分析证实MetaD可以有效表征配体诱导的跨受体的变构通讯,但标准MetaD不能直接用于推导动力学速率,因为过渡会被偏电势加速。将最大口径(MaxCal)原理应用到从MetaD重建的吗啡结合的MOR的自由能态图上,我们获得了马尔可夫状态模型,该模型产生的MOR活化动力学速率与通过自适应采样获得的动力学速率一致。综上,这些结果表明,MetaD-MaxCal组合创建了一种有效的策略来估算GPCR激活的热力学和动力学性质,价格合理成本。

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