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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Ligand binding inside the cavities of lacunar and saddle-shaped cyclidene complexes: Molecular mechanics and molecular dynamics studies
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Ligand binding inside the cavities of lacunar and saddle-shaped cyclidene complexes: Molecular mechanics and molecular dynamics studies

机译:腔隙和鞍形Cyclidene配合物腔内的配体结合:分子力学和分子动力学研究

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Cobalt(II) complexes with tetradentate macrocyclic cyclidene ligands are known to coordinate one additional axial base molecule, leaving the sixth vacant coordination site at the metal ion available for small ligand (e.g., O-2) binding. Molecular mechanics and molecular dynamics simulations provide a microscopic view of 1-methylimidazole (MeIm) binding within the cavities of several lacunar (bridged) and saddle-shaped (unbridged) cyclidenes and uncover the roles of the bridges and the walls of the clefts in steric protection of the cobalt(TI) coordination site. Short bridges (C3 and C6) prevent inside-the-cavity MeIm binding because of severe Ligand distortions leading to high-energy penalties (58 and 25 kcal/mol, respectively), while long bridges (C8 and C12) flip away from the MeIm binding site, allowing for penalty-free MeIm inclusion. In the unbridged saddle-shaped complex: there is no energy difference between inside- and outside-the-cavity MeIm binding. The preferential existence of the coordinatively unsaturated, five-coordinate species Co(unbrCyc)(MeIm)(2+) should therefore be explained by electronic, rather than steric, factors. Molecular dynamics and free energy simulations reveal the presence of a weak (ca. 4 kcal/mol in the gas phase and ca. 2 kcal/mol in methanol solution) noncovalent MeIm binding site at the entrance of the cleft of cobalt(II) unbridged cyclidene, at a distance of about 4 A from the metal ion. The macrocycle geometry remains undistorted at such large Co-N(MeIm) separations, while the cavity opens up by 0.9 Angstrom upon covalent MeIm binding (Co-N(MeIm) distance of 2 Angstrom). An increase in macrocycle strain energy upon MeIm inclusion is compensated by favorable nonbonded interactions between the incoming base and the walls of the unbridged cyclidene. [References: 75]
机译:已知具有四齿大环亚环基配体的钴(II)配合物可配位一个另外的轴向基础分子,在金属离子上留下第六个空位配位位点可用于小的配体(例如O-2)结合。分子力学和分子动力学模拟提供了1-甲基咪唑(MeIm)在多个腔隙(桥)和马鞍形(未桥)Cyclidenes的腔内结合的微观视图,并揭示了空间中桥和裂隙壁的作用保护钴(TI)配合位点。短桥(C3和C6)可防止腔内MeIm结合,因为严重的配体变形会导致高能罚分(分别为58和25 kcal / mol),而长桥(C8和C12)则从MeIm上移开结合位点,允许无惩罚的MeIm包含。在未桥接的鞍形复合物中:腔内和分子外MeIm结合之间没有能量差异。因此,应通过电子而非空间因素来解释配位不饱和的五坐标物种Co(unbrCyc)(MeIm)(2+)的优先存在。分子动力学和自由能模拟显示在未桥接的钴(II)裂隙的入口处存在弱的(非共价的MeIm)结合位点(气相中约4 kcal / mol,在甲醇溶液中约2 kcal / mol)与金属离子的距离约为4A。在如此大的Co-N(MeIm)间距下,大环的几何形状保持不变,而当共价MeIm结合(Co-N(MeIm)距离为2埃)时,腔体打开0.9埃。包含MeIm时,大环应变能的增加被传入的碱基与未桥环的亚环己基的壁之间有利的非键相互作用所补偿。 [参考:75]

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