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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Computational Recipe for Efficient Description of Large-Scale Conformational Changes in Biomolecular Systems
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Computational Recipe for Efficient Description of Large-Scale Conformational Changes in Biomolecular Systems

机译:有效描述生物分子系统大规模构象变化的计算配方

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摘要

Characterizing large-scale structural transitions in biomolecular systems poses major technical challenges to both experimental and computational approaches. On the computational side, efficient sampling of the configuration space along the transition pathway remains the most daunting challenge. Recognizing this issue, we introduce a knowledge-based computational approach toward describing large-scale conformational transitions using (i) nonequilibrium, driven simulations combined with work measurements and (ii) free energy calculations using empirically optimized biasing protocols. The first part is based on designing mechanistically relevant, system-specific reaction coordinates whose usefulness and applicability in inducing the transition of interest are examined using knowledge-based, qualitative assessments along with nonequilirbrium work measurements which provide an empirical framework for optimizing the biasing protocol. The second part employs the optimized biasing protocol resulting from the first part to initiate free energy calculations and characterize the transition quantitatively. Using a biasing protocol fine-tuned to a particular transition not only improves the accuracy of the resulting free energies but also speeds up the convergence. The efficiency of the sampling will be assessed by employing dimensionality reduction techniques to help detect possible flaws and provide potential improvements in the design of the biasing protocol. Structural transition of a membrane transporter will be used as an example to illustrate the workings of the proposed approach.
机译:表征生物分子系统中的大规模结构转变对实验和计算方法都提出了重大的技术挑战。在计算方面,沿过渡路径有效配置空间采样仍然是最艰巨的挑战。认识到此问题,我们引入了一种基于知识的计算方法,该方法使用(i)非平衡,驱动模拟与功测量相结合以及(ii)使用经验优化的偏置协议进行自由能计算来描述大规模构象转变。第一部分基于设计与机械相关的,系统特定的反应坐标,该坐标使用基于知识的定性评估以及非惰性工作测量来检查其在诱导感兴趣转变中的有用性和适用性,从而提供了优化偏倚方案的经验框架。第二部分采用第一部分得出的优化偏置协议来启动自由能计算并定量表征过渡。使用微调到特定跃迁的偏置协议不仅可以提高产生的自由能的准确性,而且可以加快收敛速度​​。采样效率将通过使用降维技术来帮助检测可能的缺陷并在偏置协议的设计中提供潜在的改进。将以膜转运蛋白的结构转变为例来说明所提出方法的工作原理。

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