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堆积效应对蒽醌/DNA 电荷转移电子激发态的影响。

Stacking Effects on Anthraquinone/DNA Charge-Transfer Electronically Excited States.

机构信息

Chemistry Department, Universidad Autónoma de Madrid, Calle Francisco Tomás y Valiente, 7, 28049 Madrid, Spain.

IADCHEM, Institute for Advanced Research in Chemistry, Universidad Autónoma de Madrid, Calle Francisco Tomás y Valiente, 7, 28049 Madrid, Spain.

出版信息

Molecules. 2020 Dec 15;25(24):5927. doi: 10.3390/molecules25245927.

Abstract

The design of more efficient photosensitizers is a matter of great importance in the field of cancer treatment by means of photodynamic therapy. One of the main processes involved in the activation of apoptosis in cancer cells is the oxidative stress on DNA once a photosensitizer is excited by light. As a consequence, it is very relevant to investigate in detail the binding modes of the chromophore with DNA, and the nature of the electronically excited states that participate in the induction of DNA damage, for example, charge-transfer states. In this work, we investigate the electronic structure of the anthraquinone photosensitizer intercalated into a double-stranded poly(dG-dC) decamer model of DNA. First, the different geometric configurations are analyzed by means of classical molecular dynamics simulations. Then, the excited states for the most relevant poses of anthraquinone inside the binding pocket are computed by an electrostatic-embedding quantum mechanics/molecular mechanics approach, where anthraquinone and one of the nearby guanine residues are described quantum mechanically to take into account intermolecular charge-transfer states. The excited states are characterized as monomer, exciton, excimer, and charge-transfer states based on the analysis of the transition density matrix, and each of these contributions to the total density of states and absorption spectrum is discussed in terms of the stacking interactions. These results are relevant as they represent the footing for future studies on the reactivity of anthraquinone derivatives with DNA and give insights on possible geometrical configurations that potentially favor the oxidative stress of DNA.

摘要

设计更高效的光敏剂在光动力疗法治疗癌症领域非常重要。在癌细胞凋亡的激活过程中,涉及的一个主要过程是一旦光敏剂被光激发,DNA 就会受到氧化应激。因此,详细研究发色团与 DNA 的结合模式以及参与诱导 DNA 损伤的电子激发态的性质非常重要,例如电荷转移态。在这项工作中,我们研究了嵌入 DNA 双螺旋聚(dG-dC)十聚体模型中的蒽醌类光敏剂的电子结构。首先,通过经典分子动力学模拟分析不同的几何构型。然后,通过静电嵌入量子力学/分子力学方法计算结合口袋内蒽醌最相关构象的激发态,其中蒽醌和附近的一个鸟嘌呤残基通过量子力学来描述,以考虑分子间电荷转移态。根据跃迁密度矩阵的分析,将激发态分为单体、激子、激基复合物和电荷转移态,并根据堆积相互作用讨论了这些贡献对总态密度和吸收光谱的影响。这些结果很重要,因为它们为蒽醌衍生物与 DNA 反应性的未来研究奠定了基础,并提供了可能有利于 DNA 氧化应激的潜在几何构型的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0b8/7765225/c28869796673/molecules-25-05927-g001.jpg

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