Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, United States.
Department of Pharmaceutical Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania 15206, United States.
J Phys Chem B. 2020 Apr 9;124(14):2788-2797. doi: 10.1021/acs.jpcb.0c00739. Epub 2020 Mar 26.
Electron paramagnetic resonance (EPR) in combination with the recently developed double-histidine (dHis)-based Cu spin labeling has provided valuable insights into protein structure and conformational dynamics. To relate sparse distance constraints measured by EPR to protein fluctuations in solution, modeling techniques are needed. In this work, we have developed force field parameters for Cu-nitrilotriacetic and Cu-iminodiacetic acid spin labels. We employed molecular dynamics (MD) simulations to capture the atomic-level details of dHis-labeled protein fluctuations. The interspin distances extracted from 200 ns MD trajectories show good agreement with the experimental results. The MD simulations also illustrate the dramatic rigidity of the Cu labels compared to the standard nitroxide spin label. Further, the relative orientations between spin-labeled sites were measured to provide insight into the use of double electron-electron resonance (DEER) methods for such labels. The relative mean angles, as well as the standard deviations of the relative angles, agree well in general with the spectral simulations published previously. The fluctuations of relative orientations help rationalize why orientation selectivity effects are minimal at X-band frequencies, but observable at the Q-band for such labels. In summary, the results show that by combining the experimental results with MD simulations precise information about protein conformations as well as flexibility can be obtained.
电子顺磁共振(EPR)与最近开发的基于双组氨酸(dHis)的 Cu 自旋标记相结合,为蛋白质结构和构象动力学提供了有价值的见解。为了将通过 EPR 测量的稀疏距离约束与溶液中的蛋白质波动相关联,需要建模技术。在这项工作中,我们为 Cu-三乙酸和 Cu-亚氨二乙酸自旋标记开发了力场参数。我们采用分子动力学(MD)模拟来捕获 dHis 标记的蛋白质波动的原子级细节。从 200ns MD 轨迹中提取的自旋间距离与实验结果吻合良好。MD 模拟还说明了 Cu 标记与标准氮氧自由基自旋标记相比的剧烈刚性。此外,还测量了自旋标记位点之间的相对取向,以深入了解双电子电子共振(DEER)方法对这些标记的应用。相对平均角度以及相对角度的标准偏差通常与先前发表的光谱模拟吻合良好。相对取向的波动有助于解释为什么在 X 波段频率下取向选择性效应最小,但对于此类标记在 Q 波段是可观察到的。总之,结果表明,通过将实验结果与 MD 模拟相结合,可以获得有关蛋白质构象和柔韧性的精确信息。