首页> 外文期刊>Inorganica Chimica Acta >Theoretical studies on DNA-binding, DNA-photocleavage and spectral properties of Co(III) complexes [Co(phen)_2(L)]~(3+) (L = pip, hpip, hnaip)
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Theoretical studies on DNA-binding, DNA-photocleavage and spectral properties of Co(III) complexes [Co(phen)_2(L)]~(3+) (L = pip, hpip, hnaip)

机译:Co(III)配合物[Co(phen)_2(L)]〜(3+)(L = pip,hpip,hnaip)的DNA结合,DNA光解和光谱性质的理论研究

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Theoretical studies on the DNA-binding, DNA-photocleavage and spectral properties of Co(III) polypyridyl complexes [Co(phen)_2(L)] ~(3+) (L = pip, hpip, hnaip) have been carried out, using the density functional theory (DFT), Hartree-Fock (HF) and configuration interaction singles (CIS) methods. The optimized geometric structures of these Co(III) complexes in aqueous solution are more close to experimental data than those in vacuo at the B3LYP/LanL2DZ level. Based on the optimized geometric structures in solution, the electronic structures of these Co(III) complexes were analyzed and the trend in the DNA-binding constants (K_b) was reasonably explained. In particular, via the analysis of natural charges of the complexes in ground state and excited state, it is very interesting to find the following: under UV or visible light irradiation, the Co() polypyridyl complexes undergo an intra-molecular electron transfer from S_0 state to T_1 state, and the positive charges on the main-ligand in the T_1 state are greatly increased, so as to form a radical cation with strong oxidation ability. Meanwhile, the change in geometry of the complexes under light irradiation also helps to the radical cation easily approaching and further oxidating DNA-base-pairs. These results offer the theoretical explanation for the photo-induced oxidation-reduction mechanism which was experimentally proposed on DNA-photocleavage by Co() polypyridyl complexes. In addition, the electronic absorption spectra of these complexes were calculated and simulated in aqueous solution using the time dependent DFT (TDDFT) method, in satisfying agreement with experimental results, and the properties of experimental absorption bands have been theoretically explained in detail.
机译:对Co(III)聚吡啶基复合物[Co(phen)_2(L)]〜(3+)(L = pip,hpip,hnaip)的DNA结合,DNA光解和光谱性质进行了理论研究,使用密度泛函理论(DFT),Hartree-Fock(HF)和配置交互单打(CIS)方法。这些Co(III)配合物在水溶液中的优化几何结构比在真空中在B3LYP / LanL2DZ水平下的几何结构更接近实验数据。基于溶液中优化的几何结构,分析了这些Co(III)配合物的电子结构,并合理地解释了DNA结合常数(K_b)的趋势。特别是,通过分析基态和激发态的配合物的自然电荷,发现以下现象非常有趣:在紫外线或可见光照射下,Co()聚吡啶基配合物经历了从S_0的分子内电子转移从T1状态变为T_1状态,T_1状态的主配体上的正电荷大大增加,从而形成具有较强氧化能力的自由基阳离子。同时,光照射下配合物的几何形状变化也有助于使自由基阳离子容易接近并进一步氧化DNA碱基对。这些结果为光诱导的氧化还原机理提供了理论解释,该机理是通过Co()聚吡啶基配合物对DNA进行光解的实验性提出的。此外,在与水溶液的时间依赖性DFT(TDDFT)方法中,对这些络合物的电子吸收光谱进行了计算和模拟,与实验结果相符,并且从理论上详细解释了实验吸收带的性质。

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