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Chasing the Full Free Energy Landscape of Neuroreceptor/Ligand Unbinding by Metadynamics Simulations

机译:通过Metadynamics模拟追逐神经感受器/配体的全部自由能景观

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Predicting the complete free energy landscape associated with protein-ligand unbinding may greatly help designing drugs with highly optimized pharmacokinetics. Here we investigate the unbinding of the iperoxo agonist to its target human neuroreceptor M-2, embedded in a neuronal membrane. By feeding out-of-equilibrium molecular simulations data in a classification analysis, we identify the few essential reaction coordinates of the process. The full landscape is then reconstructed using an exact enhanced sampling method, well-tempered metadynamics in its funnel variant. The calculations reproduce well the measured affinity, provide a rationale for mutagenesis data, and show that the ligand can escape via two different routes. The allosteric modulator LY2119620 turns out to hamper both escapes routes, thus slowing down the unbinding process, as experimentally observed. This computationally affordable protocol is totally general, and it can be easily applied to determine the full free energy landscape of membrane receptors/drug interactions.
机译:预测与蛋白质配体无界相关的完全自由能景观可能极大地帮助设计具有高度优化的药代动力学的药物。在这里,我们研究了嵌入在神经元膜中的靶名人神经感受器M-2的靶向人类神经感受器M-2的解除。通过在分类分析中喂养均衡的分子模拟数据,我们确定该过程的几个基本反应坐标。然后使用精确的增强的采样方法重建全景观,在其漏斗变体中升高的元动力学。计算再现测量的亲和力,提供诱变数据的理由,并表明配体可以通过两个不同的路线逃逸。颠覆调制器Ly2119620结果将妨碍两个逃生路线,从而减慢了解除矛盾的过程,如实验所观察到的。这种计算实惠的协议是完全一般的,可以很容易地应用于确定膜受体/药物相互作用的全自由能景观。

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