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An FFT-based method for modeling protein folding and binding under crowding: benchmarking on ellipsoidal and all-atom crowders

机译:基于FFT的蛋白质在拥挤情况下折叠和结合的建模方法:以椭球和全原子拥挤者为基准

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摘要

It is now well recognized that macromolecular crowding can exert significant effects on protein folding and binding stability. In order to calculate such effects in direct simulations of proteins mixed with bystander macromolecules, the latter (referred to as crowders) are usually modeled as spheres and the proteins represented at a coarse-grained level. Our recently developed postprocessing approach allows the proteins to be represented at the all-atom level but, for computational efficiency, has only been implemented for spherical crowders. Modeling crowder molecules in cellular environments and in vitro experiments as spheres may distort their effects on protein stability. Here we present a new method that is capable for treating aspherical crowders. The idea, borrowed from protein-protein docking, is to calculate the excess chemical potential of the proteins in crowded solution by fast Fourier transform (FFT). As the first application, we studied the effects of ellipsoidal crowders on the folding and binding free energies of all-atom proteins, and found, in agreement with previous direct simulations with coarse-grained protein models, that the aspherical crowders exert greater stabilization effects than spherical crowders of the same volume. Moreover, as demonstrated here, the FFT-based method has the important property that its computational cost does not increase strongly even when the level of details in representing the crowders is increased all the way to all-atom, thus significantly accelerating realistic modeling of protein folding and binding in cell-like environments.
机译:现在众所周知,大分子拥挤可以对蛋白质折叠和结合稳定性产生显着影响。为了在与旁观者大分子混合的蛋白质的直接模拟中计算此类影响,通常将旁观者大分子(称为拥挤者)建模为球形,并以粗粒度水平表示蛋白质。我们最近开发的后处理方法允许以全原子水平表示蛋白质,但是,为了提高计算效率,仅对球形拥挤物实施了这种方法。在球体环境中进行拥挤分子建模和体外实验,因为球形可能会扭曲其对蛋白质稳定性的影响。在这里,我们提出一种能够治疗非球面拥挤者的新方法。从蛋白质-蛋白质对接中借鉴的想法是通过快速傅立叶变换(FFT)计算拥挤溶液中蛋白质的过量化学势。作为第一个应用程序,我们研究了椭圆形拥挤物对所有原子蛋白质折叠和结合自由能的影响,并发现与先前使用粗粒度蛋白质模型进行的直接模拟相一致,非球形拥挤物比相同体积的球形拥挤物。此外,如此处所示,基于FFT的方法具有一个重要的特性,即即使将代表拥挤物的细节水平一直提高到全原子,其计算成本也不会大幅增加,从而大大加速了蛋白质的真实建模在细胞状环境中折叠和结合。

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  • 期刊名称 other
  • 作者

    Sanbo Qin; Huan-Xiang Zhou;

  • 作者单位
  • 年(卷),期 -1(9),10
  • 年度 -1
  • 页码 1021/ct4005195
  • 总页数 23
  • 原文格式 PDF
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