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Intrinsic Dynamics of Restriction Endonuclease EcoO109I Studied by Molecular Dynamics Simulations and X-Ray Scattering Data Analysis

机译:限制性内切酶EcoO109I的内在动力学通过分子动力学模拟和X射线散射数据分析研究

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摘要

EcoO109I is a type II restriction endonuclease that functions as a dimer in solution. Upon DNA binding to the enzyme, the two subunits rotate counterclockwise relative to each other, as the two catalytic domains undergo structural changes to capture the cognate DNA. Using a 150-ns molecular dynamics simulation, we investigated the intrinsic dynamics of the DNA-free enzyme in solution to elucidate the relationship between enzyme dynamics and structural changes. The simulation revealed that the enzyme is considerably flexible, and thus exhibits large fluctuations in the radius of gyration. The small-angle x-ray scattering profile calculated from the simulation, including scattering from explicit hydration water, was in agreement with the experimentally observed profile. Principal component analysis revealed that the major dynamics were represented by the open-close and counterclockwise motions: the former is required for the enzyme to access DNA, whereas the latter corresponds to structural changes upon DNA binding. Furthermore, the intrinsic dynamics in the catalytic domains were consistent with motions capturing the cognate DNA. These results indicate that the structure of EcoO109I is intrinsically flexible in the direction of its functional movement, to facilitate effective structural changes for sequence-specific DNA recognition and processing.
机译:EcoO109I是II型限制性核酸内切酶,在溶液中起二聚体的作用。 DNA与酶结合后,两个亚基相对于彼此逆时针旋转,因为两个催化域发生结构变化以捕获关联的DNA。使用150 ns的分子动力学模拟,我们研究了溶液中无DNA酶的固有动力学,以阐明酶动力学与结构变化之间的关系。模拟显示该酶具有相当大的柔韧性,因此在回转半径上表现出较大的波动。通过模拟计算得出的小角度X射线散射轮廓(包括来自显着水合水的散射)与实验观察到的轮廓一致。主成分分析表明,主要动力学表现为开闭和逆时针运动:前者是酶访问DNA所必需的,而后者对应于DNA结合后的结构变化。此外,催化域中的内在动力学与捕获同源DNA的运动是一致的。这些结果表明,EcoO109I的结构在其功能运动的方向上具有内在的灵活性,以促进有效的结构变化,以进行序列特异性DNA识别和加工。

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