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首页> 外文期刊>Journal of Inorganic Biochemistry: An Interdisciplinary Journal >Tuning the geometry and biomimetic catalytic activity of manganese(III)-tetrabromocatecholate based robust platforms by introducing substitution at pyridine
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Tuning the geometry and biomimetic catalytic activity of manganese(III)-tetrabromocatecholate based robust platforms by introducing substitution at pyridine

机译:通过在吡啶处引入取代来调节锰(III)-四溴邻苯二酚锰盐稳健平台的几何形状和仿生催化活性

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摘要

The present report describes synthesis, characterization, crystal structures and catecholase activity of a series of five new manganese(III) complexes (1-5) derived from redox-noninnocent tetrabromocatecholate ligand in combination with different substituted pyridines. X-ray crystallography reveals that the geometry of manganese(III) centers in 1 and 2 is square pyramidal and they are pseudo-dimeric in the solid state resulting from the weak bonding of manganese(III) with a catecholate oxygen atom from the adjacent manganese(III) unit together with other weak interactions like hydrogen bonding and pi center dot center dot center dot pi stacking interactions. On the other hand, complexes 3-5 are discrete octahedral structures. All the complexes exhibit strong catecholase activity and their diverse catalytic activity can nicely be explained by the nature of substitution at pyridine ring - better electron donor inhibits the reduction of the metal center thereby lowering catecholase activity and vice versa (1 and 2 vs. 3-5). Besides the donor property of ancillary ligands, the structural distortion has also significant role in the biomimetic catalytic activity (1 vs. 2). (C) 2016 Elsevier Inc. All rights reserved.
机译:本报告介绍了氧化还原-非无毒四溴邻苯二酚配体与不同取代的吡啶结合得到的一系列五个新的锰(III)配合物(1-5)的合成,表征,晶体结构和儿茶酚酶活性。 X射线晶体学分析显示,锰(III)在1和2中心的几何形状为方形金字塔形,并且在固态时为伪二聚体,这是由于锰(III)与邻位锰的邻苯二酚氧原子之间的弱键合所致(III)单元与其他弱相互作用如氢键和pi中心点pi中心点pi堆叠相互作用。另一方面,复合物3-5是离散的八面体结构。所有的配合物都具有很强的儿茶酚酶活性,其良好的催化活性可以很好地解释为吡啶环上的取代性质-更好的电子给体抑制金属中心的还原,从而降低儿茶酚酶活性,反之亦然(1和2与3- 5)。除了辅助配体的供体性质外,结构变形在仿生催化活性中也具有重要作用(1对2)。 (C)2016 Elsevier Inc.保留所有权利。

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