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Spectroscopic And Electronic Structure Studies Of Phenolaterncu(ll) Complexes: Phenolate Ring Orientation And Activationrnrelated To Cofactor Biogenesis

机译:苯丙氨酸盐(II)配合物的光谱和电子结构研究:酚盐环取向和与辅因子生物发生有关的活化。

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A combination of spectroscopies and DFT calculations have been used to define the electronic structures of two crystallographically defined Cu~(II)-phenolate complexes. These complexes differ in the orientation of the phenolate ring which results in different bonding interactions of the phenolate donor orbitals with the Cu", which are reflected in the very different spectroscopic properties of the two complexes. These differences in electronic structures lead to significant differences in DFT calculated reactivities with oxygen. These calculations suggest that oxygen activation via a Cu~I phenoxyl ligand-to-metal charge transfer complex is highly endergonic (>50 kcal/mol), hence an unlikely pathway. Rather, the two-electron oxidation of the phenolate forming a bridging Cu~(II) peroxoquinone complex is more favorable (11.3 kcal/mol). The role of the oxidized metal in mediating this two-electron oxidation of the coordinated phenolate and its relevance to the biogenesis of the covalently bound topa quinone in amine oxidase are discussed.
机译:光谱学和DFT计算的结合已被用于定义两种晶体学上定义的Cu〜(II)-酚盐配合物的电子结构。这些络合物在酚盐环的取向上不同,这导致酚盐供体轨道与Cu“的键合作用不同,这反映在两种络合物的非常不同的光谱性质中。电子结构的这些差异导致DFT计算了与氧的反应性,这些计算表明,通过Cu〜I苯氧基配体-金属电荷转移络合物进行的氧活化具有很高的负电荷(> 50 kcal / mol),因此是一条不太可能的途径。形成桥连的Cu〜(II)过氧醌络合物的酚盐更有利(11.3 kcal / mol)。氧化金属在介导配位酚盐的这种双电子氧化中的作用及其与共价结合的topa的生物发生的相关性讨论了胺氧化酶中的醌。

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