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肌红蛋白氰化物(MbCN)中的能量学与动力学:基于分子动力学模拟的氰根离子(CN⁻)振动弛豫

Energetics and dynamics in MbCN: CN--vibrational relaxation from molecular dynamics simulations.

作者信息

Danielsson Jonas, Meuwly Markus

机构信息

Department of Chemistry, University of Basel, Klingelbergstrasse 80, 4056 Basel, Switzerland.

出版信息

J Phys Chem B. 2007 Jan 11;111(1):218-26. doi: 10.1021/jp0662698.

Abstract

The dynamics of the cyanide anion bound to sperm-whale myoglobin is investigated using atomistic simulations. With density-functional theory, a 2D potential energy surface for the cyanide-heme complex is calculated. Two deep minima with a stabilization energy of approximately 50 kcal/mol corresponding to two different binding orientations (Fe-CN and Fe-NC) of the ligand are found. The Fe-CN conformation is favored over Fe-NC by several kcal/mol. Mixed quantum mechanics/molecular mechanics calculations show that the binding orientation affects the bond strength of the ligand, with a significantly different bond length and a 25 cm-1 shift in the fundamental CN-frequency. For the molecular dynamics (MD) simulations, a 3-center fluctuating charge model for the Fe-CN unit is developed that captures polarization and ligand-metal charge transfer. Stability arguments based on the energetics around the active site and the CN- frequency shifts suggest that the Fe-CN conformation with epsilon-protonation of His epsilon 64 are most likely, which is in agreement with experiment. Both equilibrium and nonequilibrium MD simulations are carried out to investigate the relaxation time scale and possible relaxation pathways in bound MbCN. The nonequilibrium MD simulations with a vibrationally excited ligand reveal that vibrational relaxation takes place on a time scale of hundreds of picoseconds within the active site. This finding supports the hypothesis that the experimentally observed relaxation rate (3.6 ps) reflects the repopulation of the electronic ground state.

摘要

利用原子模拟研究了与抹香鲸肌红蛋白结合的氰根阴离子的动力学。采用密度泛函理论计算了氰化物 - 血红素复合物的二维势能面。发现了两个深度极小值,其稳定能约为50千卡/摩尔,对应于配体的两种不同结合取向(Fe - CN和Fe - NC)。Fe - CN构象比Fe - NC构象更受青睐,能量差为几千卡/摩尔。混合量子力学/分子力学计算表明,结合取向会影响配体的键强度,键长有显著差异,并且在基本CN频率上有25厘米-1的位移。对于分子动力学(MD)模拟,开发了一种用于Fe - CN单元的三中心波动电荷模型,该模型能够捕捉极化和配体 - 金属电荷转移。基于活性位点周围能量学和CN - 频率位移的稳定性论据表明,His ε 64的ε - 质子化的Fe - CN构象最有可能,这与实验结果一致。进行了平衡和非平衡MD模拟,以研究结合的MbCN中的弛豫时间尺度和可能的弛豫途径。对具有振动激发配体的非平衡MD模拟表明,振动弛豫在活性位点内数百皮秒的时间尺度上发生。这一发现支持了实验观察到的弛豫速率(3.6皮秒)反映电子基态再填充的假设。

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