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

机译:质子和α-粒子照射下DNA中的电子励磁动力学

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摘要

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 a-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 alpha-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 a-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/gamma-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.
机译:当物质暴露于包含高能量离子的离子照射时,产生电子激发。这些电子停止激励是对能量质子和颗粒的离子束诱导的DNA损伤,其中化学和物理学是蓬勃发展的辐射癌疗法的核心。通过模拟DNA的非扰动电子响应照射质子和α-粒子,我们的第一原理动态模拟使我们能够测试常用的线性响应理论描述的有效性,并且它们还揭示了普通动态的前所未有的细节电子兴奋。在这项工作中,我们讨论了通过比较电子停止功率的第一原理来讨论线性响应理论有效的程度,从离子到电子激发的能量传递速率。模拟表明,由质子和α颗粒照射引起的电子激发导致DNA的电离,导致孔产生。通过在DNA中的能量和空间细节方面研究激发的孔,我们的作品揭示了与更常用的电离照射源如X /γ射线光子的DNA的激发行为差异显着差异。此外,我们发现激发孔的产生与照射离子速度的函数不直接相关,与辐射肿瘤学的化学和物理中通常假设的常规假设相反。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2019年第13期|5241-5251|共11页
  • 作者

    Yost Dillon C.; Kanai Yosuke;

  • 作者单位

    Univ North Carolina Chapel Hill Dept Chem Chapel Hill NC 27599 USA;

    Univ North Carolina Chapel Hill Dept Chem Chapel Hill NC 27599 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:16:35

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