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Normal-Mode Analysis of the Glycine Alpha1 Receptor by Three Separate Methods

机译:甘氨酸Alpha1受体的三种模式的正态分析

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摘要

Predicting collective dynamics and structural changes in biological macromolecules is pivotal towards a better understanding of many biological processes. Limitations due to large system sizes and inaccessible timescales have prompted the development of alternative techniques for the calculation of such motions. In this work, we present the results of a normal mode analysis technique based on molecular mechanics that enables the calculation of accurate force-field based vibrations of extremely large molecules, and compare it with two elastic network approximate models. When applied to the glycine alpha1 receptor, all three normal mode analysis algorithms demonstrate an “iris-like” gating motion. Such gating motions have implications for understanding the effects of anesthetic and other ligand binding sites, and for the means of transducing agonist binding into ion channel opening. Unlike the more approximate methods, molecular mechanics based analyses can also reveal approximate vibrational frequencies. Such analyses may someday allow the use of protein dynamics elucidated via normal mode calculations as additional endpoints for future drug design.
机译:预测生物大分子的集体动力学和结构变化对于更好地理解许多生物过程至关重要。由于系统规模大和时间尺度不可访问而造成的限制促使人们开发了用于计算此类运动的替代技术。在这项工作中,我们介绍了基于分子力学的正常模式分析技术的结果,该技术能够计算基于精确力场的超大分子的振动,并将其与两个弹性网络近似模型进行比较。当应用于甘氨酸α1受体时,所有三种正常模式分析算法均显示出“虹膜样”门控运动。这样的门控运动对于理解麻醉剂和其他配体结合位点的影响,以及将激动剂结合转导到离子通道开口中的手段都具有意义。与更近似的方法不同,基于分子力学的分析还可以揭示近似的振动频率。这样的分析有一天可能允许使用通过正常模式计算阐明的蛋白质动力学作为将来药物设计的其他终点。

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