School of Chemistry and Chemical Engineering, Building Materials Research Academy, Yancheng Institute of Technology, Jianjun East Rd. 211, Yancheng 224051, PR China.
School of Chemistry and Chemical Engineering, Central South University, Changsha 410000, PR China.
J Inorg Biochem. 2019 Mar;192:126-139. doi: 10.1016/j.jinorgbio.2018.12.014. Epub 2018 Dec 30.
Two phenol-based "end-off" biscompartmental heptadentate ligands were designed by introduction of substituents with different electronic and steric properties to the chelating arms, i.e. 2,6-bis{[(2-pyridylmethyl)(2-hydroxyethyl)amino]methyl}-4-methylphenol (L) and 2,6-bis{[(2-aminoethyl)(2-hydroxyethyl)amino]methyl}-4-methylphenol (L). The dinuclear copper(II) complexes (1 and 2) of the ligands were synthesized and evaluated as potential nuclease models. The basicity behavior and coordination property of each ligand towards Cu(II) ion in aqueous solution were investigated by pH potentiometric titrations accompanied by ESI-MS and spectrometry. Both ligands show a strong tendency to chelate Cu(II) generating dinuclear copper(II) complexes in Cu(II)/L molar ratio of 2:1 in the pH range of 3-11, and when pH is 7.40 the cationic OH-bridged dicopper(II) complexes were determined to be the dominant species. Studies on the interactions of 1 and 2 with Calf Thymus DNA relevant to DNA binding exhibit a pronounced impact of the substituents tethered on the chelating arms of the ligands. Assessment by agarose gelelectrophoresis of the plasmid pBR322 DNA cleavage activity in the presence of Vc under aerobic conditions evidence significant cleavage efficiency of the two complexes, displaying a reactivity order of 1 < 2. The mechanistic studies suggest that the cleavage implements via an oxidative pathway, where hydroxyl radical and hydrogen peroxide are responsible for the cleavage reactions. For 2, additional singlet oxygen seems to be involved in the cleavage. The differences between the two complexes in DNA binding and cleavage were discussed in relation to the electronic and steric properties of the substituents on the chelating arms imposed by each phenoxido ligand.
两种基于酚的“端接”双分隔七齿合配体通过在螯合臂上引入具有不同电子和空间性质的取代基来设计,即 2,6-双{[(2-吡啶基甲基)(2-羟乙基)氨基]甲基}-4-甲基苯酚(L)和 2,6-双{[(2-氨基乙基)(2-羟乙基)氨基]甲基}-4-甲基苯酚(L)。配体的双核铜(II)配合物(1 和 2)被合成并评估为潜在的核酸酶模型。通过 pH 电位滴定,结合 ESI-MS 和光谱法研究了每个配体在水溶液中对 Cu(II)离子的碱性行为和配位性质。在 pH 3-11 范围内,当 pH 为 7.40 时,两种配体均强烈倾向于螯合 Cu(II),生成 Cu(II)/L 摩尔比为 2:1 的双核铜(II)配合物,确定阳离子 OH 桥联双核铜(II)配合物为主要物种。研究了 1 和 2 与小牛胸腺 DNA 的相互作用,与 DNA 结合有关,显示出连接在配体螯合臂上的取代基对配体的显著影响。在有氧条件下,在 Vc 存在下,用琼脂糖凝胶电泳评估质粒 pBR322 DNA 断裂活性的结果表明,两种配合物具有显著的断裂效率,反应活性顺序为 1<2。机制研究表明,断裂通过氧化途径进行,其中羟基自由基和过氧化氢负责断裂反应。对于 2,另外的单线态氧似乎也参与了断裂。讨论了两个配合物在 DNA 结合和断裂方面的差异,这与每个酚氧配体的螯合臂上取代基的电子和空间性质有关。