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质子和α粒子辐照下 DNA 的电子激发动力学。

Electronic Excitation Dynamics in DNA under Proton and α-Particle Irradiation.

机构信息

Department of Chemistry , The University of North Carolina at Chapel Hill , Chapel Hill , North Carolina 27599 , United States.

出版信息

J Am Chem Soc. 2019 Apr 3;141(13):5241-5251. doi: 10.1021/jacs.8b12148. Epub 2019 Mar 25.

DOI:10.1021/jacs.8b12148
PMID:30864797
Abstract

Electronic excitations are produced when matter is exposed to ion irradiation comprising highly energetic ions. These electronic stopping excitations are responsible for ion beam-induced DNA damage by energetic protons and α-particles, the chemistry and physics of which are central to burgeoning radiation cancer therapies. By simulating the non-perturbative electronic response of DNA to irradiating protons and α-particles, our first-principles dynamics simulations enable us to test the validity of the commonly used linear response theory description, and they also reveal unprecedented details of the quantum dynamics of electronic excitations. In this work, we discuss the extent to which the linear response theory is valid by comparing to the first-principles determination of electronic stopping power, the energy-transfer rate from ions to electronic excitation. The simulations show that electronic excitations induced by proton and α-particle irradiation cause ionization of DNA, resulting in the generation of holes. By studying the excited hole generation in terms of both the energetic and spatial details in DNA, our work reveals remarkable differences with the excitation behavior of DNA under more commonly used ionizing irradiation sources such as X/γ-ray photons. Furthermore, we find that the generation of excited holes does not directly correlate with the energy-transfer rate as a function of the irradiating ion velocity, in contrast to what is often assumed in the chemistry and physics of radiation oncology.

摘要

当物质暴露于包含高能量离子的离子辐射中时,会产生电子激发。这些电子停止激发是高能质子和α粒子引起的离子束诱导 DNA 损伤的原因,其化学和物理性质是新兴的辐射癌症治疗的核心。通过模拟 DNA 对辐照质子和α粒子的非微扰电子响应,我们的第一性原理动力学模拟使我们能够测试常用线性响应理论描述的有效性,并且还揭示了电子激发量子动力学的前所未有的细节。在这项工作中,我们通过将电子阻止本领的第一性原理确定值与离子到电子激发的能量转移率进行比较,来讨论线性响应理论的有效性程度。模拟表明,质子和α粒子辐照引起的电子激发会导致 DNA 电离,从而产生空穴。通过研究 DNA 中能量和空间细节方面的激发空穴生成,我们的工作揭示了与 X/γ 射线光子等更常用的致电离辐照源下的 DNA 激发行为的显著差异。此外,我们发现激发空穴的产生与作为辐照离子速度函数的能量转移率没有直接关联,这与辐射肿瘤学中的化学和物理通常假设的情况相反。

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