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Protection by organic ions against DNA damage induced by low energy electrons

机译:有机离子对低能电子引起的DNA损伤的保护

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摘要

It is well known that electrons below 15 eV induce strand breaks in DNA essentially via the formation of transient anions which decay by dissociative electron attachment (DEA) or into dissociative electronics states. The present article reports the results of a study on the influence of organic ions on this mechanism. tris and EDTA are incorporated at various concentrations within DNA films of different thicknesses. The amino group of tris molecules and the carboxylic acid function of ethylenediamine tetra-acetic acid (EDTA) molecules together can be taken as simple model for the amino acids components of proteins, such as histones, which are intimately associated with the DNA of eukaryotic cells. The yield of single strand breaks induced by 10 eV electrons is found to decrease dramatically as a function of the number of organic ionsucleotide. As few as 2 organic ionsucleotide are sufficient to decrease the yield of single strand breaks by 70%. This effect is partly explained by an increase in multiple inelastic electrons scattering with film thickness but changes in the resonance parameters can also contribute to DNA protection. This can occur if the electron captures cross section and the lifetime of the transient anions (i.e., core-excited resonances) formed at 10 eV are reduced by the presence of organic ions within the grooves of DNA. Moreover, it is proposed that the tris molecules may participate in the repair of DNA anions [such as G(-H)]induced by DEA on DNA bases.
机译:众所周知,低于15 eV的电子主要通过形成瞬态阴离子诱导DNA中的链断裂,该瞬态阴离子会因解离电子附着(DEA)衰减或进入解离电子态。本文报告了有关有机离子对该机制的影响的研究结果。 tris和EDTA以各种浓度掺入不同厚度的DNA膜中。 tris分子的氨基和乙二胺四乙酸(EDTA)分子的羧酸功能一起可以作为蛋白质(例如组蛋白)的氨基酸成分的简单模型,这些蛋白质与真核细胞的DNA密切相关。发现由10 eV电子诱导的单链断裂的产率随着有机离子/核苷酸数目的变化而显着降低。少至2个有机离子/核苷酸足以使单链断裂的产率降低70%。这种作用的部分解释是,随着薄膜厚度的增加,多个非弹性电子的散射增加了,但是共振参数的变化也可以促进DNA保护。如果电子捕获了横截面,并且由于DNA凹槽内存在有机离子而降低了在10 eV处形成的瞬态阴离子(即,核激发的共振)的寿命,则会发生这种情况。此外,有人提出tris分子可能参与DEA在DNA碱基上诱导的DNA阴离子的修复[例如G(-H)-]。

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