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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Theoretical study of excess electron attachment dynamics to the guanine-cytosine base pair: Electronic structure calculations and ring-polymer molecular dynamics simulations
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Theoretical study of excess electron attachment dynamics to the guanine-cytosine base pair: Electronic structure calculations and ring-polymer molecular dynamics simulations

机译:鸟嘌呤-胞嘧啶碱基对过量电子附着动力学的理论研究:电子结构计算和环状聚合物分子动力学模拟

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Electron attachment dynamics to the guanine (G)-cytosine (C) base pair has been studied from a theoretical viewpoint. The BH&HLYP-level calculations show that the dipole-bound planar (G-C)- base pair anion can convert into the nonplanar valence-bound anion with a relatively small barrier. This nonplanar valence-bound anion can further convert into a more stable form via proton-transfer through the N-H···N hydrogen-bond from the guanine to cytosine moiety. This excess electron induced proton-transfer process has been studied using quantized ring-polymer molecular dynamics simulations (RPMD) on an interpolated potential energy surface developed on the basis of the B3LYP-level calculations. We compare the RPMD results to the results of classical MD simulations and found that proton-transfer more effectively occurs in quantum RPMD simulations. Both vibrational quantization and corner-cutting mechanism are playing important roles in this proton-transfer process. We have also analyzed the correlation between the proton-transfer motion and other vibrational motions including ring-ring deformation motions using the reactive RPMD trajectories.
机译:从理论的角度研究了电子对鸟嘌呤(G)-胞嘧啶(C)碱基的附着动力学。 BH&HLYP级计算表明,偶极结合的平面(G-C)碱对阴离子可以转换为具有相对较小势垒的非平面价结合的阴离子。这种非平面价键结合的阴离子可以通过从鸟嘌呤到胞嘧啶部分的N-H···N氢键质子转移进一步转化为更稳定的形式。已经在基于B3LYP能级计算得出的内插势能表面上使用定量环聚合物分子动力学模拟(RPMD)研究了这种过量的电子诱导质子转移过程。我们将RPMD结果与经典MD模拟结果进行了比较,发现质子转移在量子RPMD模拟中更有效地发生。振动量化和切角机制在该质子转移过程中都起着重要作用。我们还使用反应性RPMD轨迹分析了质子传递运动与其他振动运动之间的相关性,其中包括环环变形运动。

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