首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Coordination modes of bridge carboxylates in dinuclear manganese compounds determine their catalase-like activities
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Coordination modes of bridge carboxylates in dinuclear manganese compounds determine their catalase-like activities

机译:双核锰化合物中桥羧酸盐的配位方式决定其过氧化氢酶样活性

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摘要

To explore the role of bridge carboxylate coordination modes on the catalase-like activities of dinuclear manganese compounds, [Mn-2(II)(bpmapa)(2)(H2O)(2)](ClO4)(2) (1), [Mn-2(II)(pbpmapa)(2)(H2O)(2)](ClO4)(2) (2), and [Mn-2(II)(bpmaa)(2)(H2O)(3)](ClO4)(2) (3) (bpmapa = [bis(2-pyridylmethyl)amino]propionic acid, pbpmapa = alpha-phenyl-beta-[bis(2-pyridylmethyl)amino]propionic acid, and bpmaa = [bis(2-pyridylmethyl)amino]aceticacid), in which Mn-II-Mn-II centers have a similar coordination sphere but different carboxylate-Mn bridging modes have been synthesized and structurally characterized by single X-ray diffraction, UV-visible, IR, and EPR spectroscopies, and their catalase-like activities were investigated. Studies of their catalytic activities and the influence of the nitrogenous bases on their catalytic activities indicated that the carboxylate-Mn coordination mode was crucial in H2O2 deprotonation, and eventually in H2O2 disproportionation. Compound 1 with a bidentate carboxylate bridge showed higher catalase-like activity than 2 and 3, in which the carboxylate groups have a monodentate bridging mode. The deprotonation ability of the carboxylate anion was determined by the O-C-O angle and the distance between the weakly bound oxygen of the bridging carboxylate to the manganese ion. The smaller the angle, and the shorter the distance, the stronger the basicity that the carboxylate anion exhibits. The bidentate mu-1,1 bridging coordination mode functionally mimicked the glutamate residues at the manganese catalase active site. Our results suggested that increasing the basicity of the bridging carboxylate ligand of the catalase model compounds will increase their deprotonation ability and lead to more active catalase mimics.
机译:要探讨桥羧酸盐配位模式对双核锰化合物过氧化氢酶样活性的作用,[Mn-2(II)(bpmapa)(2)(H2O)(2)](ClO4)(2)(1), [Mn-2(II)(pbpmapa)(2)(H2O)(2)](ClO4)(2)(2)和[Mn-2(II)(bpmaa)(2)(H2O)(3) ](ClO4)(2)(3)(bpmapa = [双(2-吡啶基甲基)氨基]丙酸,bppmapa =α-苯基-β-[双(2-吡啶基甲基)氨基]丙酸和bpmaa = [bis (2-吡啶基甲基)氨基]乙酸),其中Mn-II-Mn-II中心具有相似的配位球,但合成了不同的羧酸盐-Mn桥联模式,并通过单X射线衍射,紫外可见,IR对其结构进行了表征,EPR光谱及其过氧化氢酶样活性进行了研究。对它们的催化活性以及含氮碱对其催化活性的影响的研究表明,羧酸盐-锰配位模式对于H2O2的去质子化,以及最终在H2O2的歧化中至关重要。具有二齿羧酸盐桥的化合物1显示出比2和3更高的过氧化氢酶样活性,其中羧酸盐基团具有单齿桥接模式。羧酸根阴离子的去质子能力由O-C-O角和桥连羧酸根的弱结合氧与锰离子之间的距离决定。角度越小,距离越短,羧酸根阴离子表现出的碱性越强。双齿mu-1,1桥联配位模式在功能上模仿了锰过氧化氢酶活性位点的谷氨酸残基。我们的结果表明,增加过氧化氢酶模型化合物桥接羧酸盐配体的碱性会增加其去质子能力,并导致更活跃的过氧化氢酶模拟物。

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