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DYNAMICAL SPATIAL WARPING: A NOVEL METHOD FOR. THE CONFORMATIONAL SAMPLING OF BIOPHYSICAL STRUCTURE

机译:动态空间包装:一种新颖的方法。生物物理结构的构象抽样

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The difficulties encountered in sampling of systems with rough energy landscapes using present methodology significantly limit the impact of simulation on molecular biology, in par_ticular protein folding and design. Here, we present a major methodological development based on a promising new technique, the reference potential spatial warping algorithm (REPSWA) [Z. Zhu et al., Phys. Rev. Lett., 88 (2002), pp. 100201-100204], and present applications to several realistic systems. REPSWA works by introducing a variable transformation in the classical partition function that reduces the volume of phase space associated with a priori known barrier regions while increas_ing that associated with attractive basins. In this way, the partition function is preserved so that enhanced sampling is achieved without the need for reweighting phase-space averages. Here, a new class of transformations, designed to overcome the barriers induced by intermolecularonbonded interactions. whose locations are not known a priori, is introduced. The new transformations are designed to work in synergy with transformations originally introduced for overcoming intramolec_ular barriers. The new transformation adapts to the fluctuating local environment and is able to handle barriers that arise "on the fly." Thus, the new method is referred to as dynamic contact REPSWA (DC-REPSWA). In addition, combining hybrid Monte Carlo (HMC) with DC-REPSWA allows more aggressive sampling to take place. The combined DC-REPSWA-HMC method and its variants are shown to substantially enhance conformational sampling in long molecular chains com_posed of interacting single beads and beads with branches. The latter topologies characterize the united residue and united side chain representation of protein structures.
机译:使用当前方法对具有粗糙能量景观的系统进行采样时遇到的困难极大地限制了模拟在分子蛋白质折叠和设计中对分子生物学的影响。在这里,我们提出了基于有前途的新技术的主要方法学发展,即参考电位空间扭曲算法(REPSWA)[Z。朱等人,物理学。 Rev. Lett。,88(2002),pp。100201-100204],并且提出了对几种现实系统的应用。 REPSWA通过在经典分区函数中引入变量变换来工作,该变量变换减少了与先验已知势垒区域相关的相空间的体积,同时增加了与引人入胜的盆地相关的相空间。这样,保留了分区功能,从而无需重新加权相空间平均值即可实现增强的采样。在这里,一类新的转换旨在克服分子间/非键合相互作用引起的障碍。介绍了其先验位置未知的位置。新的转化旨在与最初为克服分子内屏障而引入的转化协同工作。新的转型适应了不断变化的当地环境,并且能够应对“动态”出现的障碍。因此,新方法称为动态接触REPSWA(DC-REPSWA)。此外,将混合蒙特卡罗(HMC)与DC-REPSWA结合使用,可以进行更具侵略性的采样。结合的DC-REPSWA-HMC方法及其变体显示出可大大增强长链中的构象采样,该长链由相互作用的单个珠子和带有分支的珠子组成。后者的拓扑结构表征蛋白质结构的统一残基和统一侧链表示。

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