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钌芳烃配合物与DNA结合的见解:氢键和π堆积的作用

Insights into DNA binding of ruthenium arene complexes: role of hydrogen bonding and pi stacking.

作者信息

Gkionis Konstantinos, Platts James A, Hill J Grant

机构信息

School of Chemistry, Cardiff University, Park Place, Cardiff, U.K.

出版信息

Inorg Chem. 2008 May 5;47(9):3893-902. doi: 10.1021/ic702459h. Epub 2008 Apr 8.

Abstract

Density functional theory (DFT) methods are used to investigate the binding of ruthenium arene complexes, proposed as promising anticancer drugs, to isolated nucleobases. This shows a clear preference for binding at guanine over any other base and an approximately 100 kJ mol (-1) difference in binding between guanine and adenine in the gas phase, while binding to cytosine and inosine are intermediate in energy between these extremes. Solvation reduces binding energies and the discrimination between bases but maintains the overall pattern of binding. DFT and ab initio data on arene-base interactions in the absence of ruthenium show that stacking and hydrogen-bonding interactions play a significant role but cannot account for all of the energy difference between bases observed. Atoms-in-molecules analysis allows further decomposition of binding energies into contributions from covalent-binding, hydrogen-bonding, and pi-stacking interactions. Larger arenes undergo stabilizing stacking interactions, whereas N-H...X hydrogen bonding is independent of arene. Pairing of guanine to cytosine is affected by ruthenium complexation, with individual hydrogen-bonding energies being altered but the overall pairing energy remaining almost constant.

摘要

密度泛函理论(DFT)方法被用于研究钌芳烃配合物(被认为是有前景的抗癌药物)与分离出的核碱基之间的结合。这表明在气相中,该配合物对鸟嘌呤的结合明显优于其他任何碱基,并且鸟嘌呤和腺嘌呤之间的结合能相差约100 kJ·mol⁻¹,而与胞嘧啶和次黄嘌呤的结合能处于这两个极端值之间。溶剂化降低了结合能以及碱基之间的区分度,但保持了整体的结合模式。在没有钌的情况下,关于芳烃 - 碱基相互作用的DFT和从头算数据表明,堆积和氢键相互作用起着重要作用,但无法解释观察到的碱基之间所有的能量差异。分子中的原子分析允许将结合能进一步分解为共价结合、氢键和π堆积相互作用的贡献。较大的芳烃会发生稳定的堆积相互作用,而N - H...X氢键与芳烃无关。鸟嘌呤与胞嘧啶的配对受钌络合影响,单个氢键能发生改变,但整体配对能几乎保持不变。

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