Multiscale QM/MM Molecular Dynamics Study on the First Steps of Guanine Damage by Free Hydroxyl Radicals in Solution

被引:52
作者
Abolfath, Ramin M. [1 ,2 ]
Biswas, P. K. [3 ,4 ]
Rajnarayanam, R. [5 ]
Brabec, Thomas [2 ]
Kodym, Reinhard [6 ]
Papiez, Lech [7 ]
机构
[1] Univ Texas Dallas, Sch Nat Sci & Math, Richardson, TX 75080 USA
[2] Univ Ottawa, Dept Phys, Ottawa, ON K1N 6N5, Canada
[3] Tougaloo Coll, Dept Phys, Tougaloo, MS 39174 USA
[4] NHLBI, Lab Computat Biol, NIH, Rockville, MD 20894 USA
[5] SUNY Buffalo, Dept Pharmacol, Buffalo, NY 14260 USA
[6] Univ Texas SW Med Ctr Dallas, Dept Radiat Oncol, Dallas, TX 75390 USA
[7] Indiana Univ, Cyclotron Facil, Bloomington, IN 47408 USA
基金
美国国家科学基金会;
关键词
NUCLEOTIDE EXCISION-REPAIR; MONTE-CARLO-SIMULATION; DNA-DAMAGE; FORCE-FIELD; BASE; SITES;
D O I
10.1021/jp300258n
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070305 [高分子化学与物理];
摘要
Understanding the damage of DNA bases from hydrogen abstraction by free OH radicals is of particular importance to understanding the indirect effect of ionizing radiation. Previous studies address the problem with truncated DNA bases as ab initio :,quantum simulations required to study Such electronic-spin-dependent processes are computationally expensive. Here, for the first time, we employ a multiscale and hybrid quantum mechanical-molecular mechanical simulation to study the interaction of OH radicals with a guanine-deoxyribose-phosphate DNA molecular unit in the presence of water, where all of the water molecules and the deoxyribose-phosphate fragment are treated with the simplistic classical molecular mechanical scheme. Our result illustrates that the presence of water strongly alters the hydrogen-abstraction reaction as the hydrogen bonding of OH radicals with water restricts the relative orientation of the OH radicals with respect to the DNA base (here, guanine). This results in an angular anisotropy in the chemical pathway and a lower efficiency in the hydrogen-abstraction mechanisms than previously anticipated for identical systems in vacuum. The method can easily be extended to single- and double-stranded DNA without any appreciable computational cost as these molecular units can be treated in the classical subsystem, as has been demonstrated here.
引用
收藏
页码:3940 / 3945
页数:6
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