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将短程和长程荧光报告分子与模拟相结合,探索一种天然无序蛋白质的分子内动力学。

Combining short- and long-range fluorescence reporters with simulations to explore the intramolecular dynamics of an intrinsically disordered protein.

机构信息

Department of Biochemistry, University of Zurich, Winterthurerstrasse 190, 8057 Zurich, Switzerland.

出版信息

J Chem Phys. 2017 Oct 21;147(15):152708. doi: 10.1063/1.4992800.

Abstract

Intrinsically disordered proteins (IDPs) are increasingly recognized as a class of molecules that can exert essential biological functions even in the absence of a well-defined three-dimensional structure. Understanding the conformational distributions and dynamics of these highly flexible proteins is thus essential for explaining the molecular mechanisms underlying their function. Single-molecule fluorescence spectroscopy in combination with Förster resonance energy transfer (FRET) is a powerful tool for probing intramolecular distances and the rapid long-range distance dynamics in IDPs. To complement the information from FRET, we combine it with photoinduced electron transfer (PET) quenching to monitor local loop-closure kinetics at the same time and in the same molecule. Here we employed this combination to investigate the intrinsically disordered N-terminal domain of HIV-1 integrase. The results show that both long-range dynamics and loop closure kinetics on the sub-microsecond time scale can be obtained reliably from a single set of measurements by the analysis with a comprehensive model of the underlying photon statistics including both FRET and PET. A more detailed molecular interpretation of the results is enabled by direct comparison with a recent extensive atomistic molecular dynamics simulation of integrase. The simulations are in good agreement with experiment and can explain the deviation from simple models of chain dynamics by the formation of persistent local secondary structure. The results illustrate the power of a close combination of single-molecule spectroscopy and simulations for advancing our understanding of the dynamics and detailed mechanisms in unfolded and intrinsically disordered proteins.

摘要

内在无序蛋白质(IDPs)越来越被认为是一类分子,即使在没有明确的三维结构的情况下,它们也能发挥重要的生物学功能。因此,理解这些高度灵活的蛋白质的构象分布和动力学对于解释其功能的分子机制至关重要。单分子荧光光谱学与Förster 共振能量转移(FRET)相结合,是探测 IDPs 中分子内距离和快速长程距离动力学的强大工具。为了补充 FRET 的信息,我们将其与光诱导电子转移(PET)猝灭结合使用,同时在同一个分子中监测局部环闭动力学。在这里,我们将这种组合用于研究 HIV-1 整合酶的固有无序 N 端结构域。结果表明,通过对包括 FRET 和 PET 在内的光子统计综合模型的分析,可以从单个测量中可靠地获得亚微秒时间尺度上的长程动力学和环闭动力学。通过与最近广泛的整合酶原子分子动力学模拟的直接比较,可以对结果进行更详细的分子解释。模拟与实验结果吻合良好,可以通过形成持久的局部二级结构来解释与链动力学简单模型的偏差。这些结果说明了单分子光谱学和模拟紧密结合在推进对未折叠和固有无序蛋白质的动力学和详细机制的理解方面的强大功能。

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