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从力场参数化的 MD 中阐明 Cu 基 DNA 标记的取向和动力学与 EPR 距离约束和 DNA 骨架距离之间的关系。

Orientation and dynamics of Cu based DNA labels from force field parameterized MD elucidates the relationship between EPR distance constraints and DNA backbone distances.

机构信息

Department of Chemistry, University of Pittsburgh, PA 15260, USA.

出版信息

Phys Chem Chem Phys. 2020 Dec 7;22(46):26707-26719. doi: 10.1039/d0cp05016d.

Abstract

Pulsed electron paramagnetic resonance (EPR) based distance measurements using the recently developed Cu2+-DPA label present a promising strategy for measuring DNA backbone distance constraints. Herein we develop force field parameters for Cu2+-DPA in order to understand the features of this label at an atomic level. We perform molecular dynamics (MD) simulations using the force field parameters of Cu2+-DPA on four different DNA duplexes. The distance between the Cu2+ centers, extracted from the 2 μs MD trajectories, agrees well with the experimental distance for all the duplexes. Further analyses of the trajectory provide insight into the orientation of the Cu2+-DPA inside the duplex that leads to such agreement with experiments. The MD results also illustrate the ability of the Cu2+-DPA to report on the DNA backbone distance constraints. Furthermore, measurement of fluctuations of individual residues showed that the flexibility of Cu2+-DPA in a DNA depends on the position of the label in the duplex, and a 2 μs MD simulation is not sufficient to fully capture the experimental distribution in some cases. Finally, the MD trajectories were utilized to understand the key aspects of the double electron electron resonance (DEER) results. The lack of orientational selectivity effects of the Cu2+-DPA at Q-band frequency is rationalized in terms of fluctuations in the Cu2+ coordination environment and rotameric fluctuations of the label linker. Overall, a combination of EPR and MD simulations based on the Cu2+-DPA labelling strategy can contribute towards understanding changes in DNA backbone conformations during protein-DNA interactions.

摘要

基于脉冲电子顺磁共振(EPR)的 Cu2+-DPA 标签最近开发的距离测量方法为测量 DNA 骨架距离约束提供了一种很有前途的策略。在此,我们为 Cu2+-DPA 开发了力场参数,以便在原子水平上了解该标签的特征。我们使用 Cu2+-DPA 的力场参数对四个不同的 DNA 双链体进行分子动力学(MD)模拟。从 2 μs MD 轨迹中提取的 Cu2+ 中心之间的距离与所有双链体的实验距离吻合得很好。对轨迹的进一步分析提供了对 Cu2+-DPA 在双链体内部取向的深入了解,这种取向导致了与实验的一致性。MD 结果还说明了 Cu2+-DPA 报告 DNA 骨架距离约束的能力。此外,对单个残基波动的测量表明,Cu2+-DPA 在 DNA 中的灵活性取决于标签在双链体中的位置,在某些情况下,2 μs MD 模拟不足以完全捕获实验分布。最后,利用 MD 轨迹来理解双电子电子共振(DEER)结果的关键方面。Cu2+-DPA 在 Q 波段频率下缺乏各向异性效应可以用 Cu2+ 配位环境的波动和标签连接体的构象变化来解释。总之,基于 Cu2+-DPA 标记策略的 EPR 和 MD 模拟的结合可以有助于理解蛋白质-DNA 相互作用过程中 DNA 骨架构象的变化。

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