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辅助配体对钌(II)配合物的拓扑异构酶 II 和转录抑制活性的影响。

Effect of ancillary ligands on the topoisomerases II and transcription inhibition activity of polypyridyl ruthenium(II) complexes.

机构信息

MOE Laboratory of Bioinorganic and Synthetic Chemistry, State Key Laboratory of Optoelectronic Materials and Technologies, School of Chemistry and Chemical Engineering, Sun Yat-Sen University, Guangzhou 510275, PR China.

出版信息

J Inorg Biochem. 2010 May;104(5):576-82. doi: 10.1016/j.jinorgbio.2010.01.010. Epub 2010 Feb 1.

Abstract

To explore the structure-activity relationship of polypyridyl ruthenium(II) complexes as topoisomerase II and T7 RNA polymerase inhibitors, four new complexes, Ru(4dmb)(2)(ppd) (4dmb=4,4'-dimethyl-2,2'-bipyridine, ppd=pteridino[6,7-f][1,10] phenanthroline-1,13(10H,12H)-dione), Ru(5dmb)(2)(ppd) (5dmb=5,5'-dimethyl-2,2'-bipyridine), Ru(dip)(2)(ppd) (dip=4,7-diphenyl-1,10-phenanthroline), and Ru(ip)(2)(ppd) (ip=imidazole[4,5-f][1,10]phenanthroline) have been synthesized and characterized in detail by (1)H NMR spectroscopy, mass spectrometry and elemental analysis. Their interaction with calf thymus DNA and the inhibitory activity towards topoisomerase II and T7 RNA polymerase were investigated. The results suggest that although all of these four Ru(II) complexes are potent DNA intercalators, topoisomerase II inhibitors and DNA transcription inhibitors, their DNA binding strength and inhibitory activities are quite different. The activity of ip- and dip-complexes are significantly higher than the dmb-complexes. To explain the experimental regularity and reveal the underlying quantum chemistry mechanism of the biological activity, the properties of energy levels and population of frontier molecular orbitals and excited state transitions of these complexes have been studied by density functional theory (DFT) and time-depended DFT (TDDFT) calculations. The results suggest that ancillary ligands bearing lower energy of the lowest unoccupied molecular orbitals (LUMOs), better hydrophobicity and less steric hindrance of are beneficial to the DNA intercalation and topoisomerase II and DNA transcription inhibition of their complexes.

摘要

为了探索作为拓扑异构酶 II 和 T7 RNA 聚合酶抑制剂的多吡啶钌(II)配合物的结构-活性关系,合成并详细表征了四个新的配合物:[Ru(4dmb)(2)(ppd)] 2+ (4dmb=4,4'-二甲基-2,2'-联吡啶,ppd=嘧啶并[6,7-f][1,10]菲咯啉-1,13(10H,12H)-二酮)、[Ru(5dmb)(2)(ppd)] 2+ (5dmb=5,5'-二甲基-2,2'-联吡啶)、[Ru(dip)(2)(ppd)] 2+ (dip=4,7-二苯基-1,10-菲咯啉)和[Ru(ip)(2)(ppd)] 2+ (ip=咪唑并[4,5-f][1,10]菲咯啉)。通过 1H NMR 光谱、质谱和元素分析对它们进行了详细的表征。研究了它们与小牛胸腺 DNA 的相互作用以及对拓扑异构酶 II 和 T7 RNA 聚合酶的抑制活性。结果表明,尽管这四个 Ru(II)配合物都是有效的 DNA 嵌入剂、拓扑异构酶 II 抑制剂和 DNA 转录抑制剂,但它们的 DNA 结合强度和抑制活性有很大的不同。ip-和 dip-配合物的活性明显高于 dmb-配合物。为了解释实验规律并揭示生物活性的潜在量子化学机制,通过密度泛函理论(DFT)和时间相关密度泛函理论(TDDFT)计算研究了这些配合物的能级和前沿分子轨道布居以及激发态跃迁的性质。结果表明,具有较低最低未占据分子轨道(LUMO)能量、更好的疏水性和较小空间位阻的辅助配体有利于它们的配合物的 DNA 嵌入以及拓扑异构酶 II 和 DNA 转录抑制。

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