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Nanodosimetry of Auger electrons: A case study from the decay of 125I and 0–18-eV electron stopping cross sections of cytosine

机译:俄歇电子Nanodosimetry:从125I和0-18-eV的电子停止胞嘧啶的横截面的衰变为例

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摘要

Radiopharmaceuticals emitting Auger electrons are often injected into patients undergoing cancer treatment with targeted radionuclide therapy (TRT). In this type of radiotherapy, the radiation source is radial and most of the emitted primary particles are low-energy electrons (LEEs) having kinetic energies distributed mostly from zero to a few hundred electron volts with very short ranges in biological media. These LEEs generate a high density of energy deposits and clustered damage, thus offering a relative biological effectiveness comparable to that of alpha particles. In this paper, we present a simple model and corresponding measurements to assess the energy deposited near the site of the radiopharmaceuticals in TRT. As an example, a calculation is performed for the decay of a single 125I radionuclide surrounded by a 1-nm-radius spherical shell of cytosine molecules using the energy spectrum of LEEs emitted by 125I along with their stopping cross sections between 0 and 18 eV. The dose absorbed by the cytosine shell, which occupies a volume of 4 nm3, is extremely high. It amounts to 79 kGy per decay of which 3%, 39%, and 58% is attributed to vibrational excitations, electronic excitations, and ionization processes, respectively.
机译:发射俄歇电子的放射性药物通常被注射到接受靶向放射性核素治疗(TRT)的癌症治疗患者中。在这种类型的放射疗法中,辐射源是放射状的,并且大部分发射的初级粒子是低能电子(LEE),其在生物介质中的动能分布范围从零到几百个电子伏特,而电子能量非常短。这些LEE产生高密度的能量沉积和聚集破坏,因此提供了与α颗粒相当的相对生物学有效性。在本文中,我们提出了一个简单的模型和相应的测量方法,以评估TRT中放射性药物部位附近沉积的能量。例如,使用 125 <发射的LEEs的能谱,对被胞嘧啶分子的1-nm半径球形壳包围的单个 125 I放射性核素的衰减进行计算。 / sup> I及其在0到18 eV之间的终止截面。胞嘧啶壳吸收的剂量非常高,占4 nm 3 。它的每次衰减量为79 kGy,其中3%,39%和58%分别归因于振动激发,电子激发和电离过程。

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  • 期刊名称 other
  • 作者

    M. Michaud; M. Bazin; L. Sanche;

  • 作者单位
  • 年(卷),期 -1(87),-1
  • 年度 -1
  • 页码 0327011–0327014
  • 总页数 11
  • 原文格式 PDF
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