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Atomistic Simulation Combined with Analytic Theory To Study the Response of the P-Selectin/PSGL-1 Complex to an External Force

机译:原子模拟与解析理论相结合研究P-选择素/ PSGL-1复合物对外力的响应

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Steered molecular dynamics simulations are combined with analytic theory in order to gain insights into the properties of the P-selectin/PSGL-1 catch-slip bond at the atomistic level of detail.The simulations allow us to monitor the conformational changes in the P-selectin/PSGL-1 complex in response to an external force,while the theory provides a unified framework bridging the simulation data with experiment over 9 orders of magnitude.The theory predicts that the probability of bond dissociation by the catch mechanism is extremely low in the simulations;however,a few or even a single trajectory can be sufficient for characterization of the slip mechanism.Theoretical analysis of the simulation data shows that the bond responds to the force in a highly nonlinear way,with the bond stiffness changing considerably as a function of the force ramp rate.The Langevin description of the simulation provides spring constants of the proteins and the binding interaction and gives the friction coefficient associated with the receptor-ligand motion in water.The estimated relaxation time shows that the simple probabilistic description is accurate for the experimental regime and remains approximately valid for the high ramp rates used in simulations.The simulations establish that bond deformation occurs primarily within the P-selectin receptor region.The two interaction sites within the binding pocket dissociate sequentially,raising the possibility of observing these independent rupture events in experiment.The stronger interaction that determines the overall properties of the bond dissociates first,indicating that the experimental data indeed capture the main rupture event and not the secondary weaker site rupture.The main rupture event involves the interaction between the calcium ion of the receptor and the ligand residue FUC-623.It is followed by new interactions,supporting the sliding-rebinding behavior observed in the earlier simulation [Lou,J.;Zhu,C.Biophys.J.2007,92,1471-1485].The weaker binding site shows fewer interaction features,suggesting that the sliding-rebinding behavior may be determined by the unique properties of the calcium site.The agreement between simulation and experiment provided by the two-pathway and deformation models,each containing only four parameters,indicates that the essential physics of the catch-slip bond should be relatively simple and robust over a wide range of pulling regimes.
机译:操纵分子动力学模拟与分析理论相结合,以深入了解P-selectin / PSGL-1捕获-滑键在原子层次上的性质,该模拟使我们能够监控P-选择素/ PSGL-1捕获键的结构。 selectin / PSGL-1复合物响应外力,而该理论提供了一个将模拟数据与9个数量级以上的实验桥接的统一框架。该理论预测,捕获机制中键解离的可能性极低。模拟;但是,仅几个或什至一个轨迹就足以表征滑移机制。对模拟数据的理论分析表明,粘结以高度非线性的方式响应力,粘结刚度随函数的变化很大仿真中的Langevin描述提供了蛋白质的弹簧常数和结合相互作用,并给出了摩擦系数估计的弛豫时间表明,简单的概率描述对于实验条件是准确的,并且对于模拟中使用的高斜率仍然有效,模拟表明,键变形主要发生在水中。 P-selectin受体区域。结合口袋中的两个相互作用位点依次解离,从而增加了观察实验中这些独立断裂事件的可能性。更强的相互作用决定了键的整体性质,首先解离了该位,表明实验数据确实被捕获主要破裂事件而不是继发性较弱的部位破裂。主要破裂事件涉及受体的钙离子与配体残基FUC-623之间的相互作用,随后发生新的相互作用,从而支持了在细胞中观察到的滑动重新结合行为。早期模拟[Lou,J.; Zhu,C.Biophys.J.2007,92,1471-1485 ]。较弱的结合位点显示较少的相互作用特征,这表明滑动-再结合行为可能由钙位点的独特性质决定。模拟和实验之间的一致性由两种途径和变形模型提供,每个模型仅包含四个参数表明,在广泛的牵引方式下,滑移键的基本物理特性应相对简单且坚固。

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