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质子辐照下拉伸对聚(dG)-聚(dC)DNA中非绝热电子动力学行为的影响。

Stretching effects on non-adiabatic electron dynamic behavior in poly(dG)-poly(dC) DNA upon the proton irradiation.

作者信息

Hu Zhihua, Deng Zun-Yi, Feng Hong-Jian

机构信息

School of Physics, Northwest University, Xi'an 710127, People's Republic of China.

出版信息

J Phys Condens Matter. 2023 Apr 20;35(28). doi: 10.1088/1361-648X/accbfa.

Abstract

The electronic excitations caused by DNA when exposed to ion radiation is essential to DNA damage. In this paper, we investigated the energy deposition and electron excitation process of DNA with reasonable stretching range upon proton irradiation based on time-dependent density functional theory. Stretching changes the strength of hydrogen bonding between the DNA base pairs, which in turn affects the Coulomb interaction between the projectile and DNA. As a semi-flexible molecule, the way of energy deposition is weakly sensitive to the stretching rate of DNA. However, the increase of stretching rate causes the increase of charge density along the trajectory channel, sequentially resulting in an increase in proton resistance along the intruding channel. The Mulliken charge analysis indicates that the guanine base and guanine ribose are ionized, meanwhile the cytosine base and cytosine ribose are reduced at all stretching rates. In a few femtoseconds, there exists an electron flow passing through the guanine ribose, guanine, cytosine base and the cytosine ribose in turn. This electron flow increases electron transfer and DNA ionization, promoting the side chain damage of the DNA upon ion irradiation. Our results provide a theoretical insight for deciphering the physical mechanism of the early stage of the irradiation process, and are also of great significance for the study of particle beam cancer therapy in different biological tissues.

摘要

DNA在受到离子辐射时产生的电子激发对于DNA损伤至关重要。在本文中,我们基于含时密度泛函理论,研究了质子辐照下具有合理拉伸范围的DNA的能量沉积和电子激发过程。拉伸会改变DNA碱基对之间氢键的强度,进而影响入射粒子与DNA之间的库仑相互作用。作为一种半柔性分子,能量沉积方式对DNA的拉伸速率敏感度较低。然而,拉伸速率的增加会导致沿轨迹通道的电荷密度增加,进而导致沿侵入通道的质子抗性增加。Mulliken电荷分析表明,在所有拉伸速率下,鸟嘌呤碱基和鸟嘌呤核糖都会被电离,同时胞嘧啶碱基和胞嘧啶核糖会被还原。在几飞秒内,存在一股电子流依次穿过鸟嘌呤核糖、鸟嘌呤、胞嘧啶碱基和胞嘧啶核糖。这种电子流增加了电子转移和DNA电离,促进了离子辐照时DNA的侧链损伤。我们的结果为解读辐照过程早期的物理机制提供了理论见解,对于不同生物组织中的粒子束癌症治疗研究也具有重要意义。

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