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Modulating the cobalt redox potential through imidazole hydrogen bonding interactions in a supramolecular biomimetic protein-cofactor model

机译:在超分子仿生蛋白质-辅因子模型中通过咪唑氢键相互作用调节钴的氧化还原电位

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摘要

A realistic model for the active site of histidine-on cobalamin@protein complexes is reported and studied under homogeneous and immobilized conditions. Analysis of lower ligand modulation and its influence on the properties of the biomimetic compound are presented. The cofactor attachment by a protein's histidine residue was imitated by covalently linking an artificial imidazole-containing linker to cobyric acid. The resulting intramolecular coordination complex is an excellent structural model of its natural archetype, according to 2D 1H-NMR studies and molecular modeling. The effect of deprotonation of the axially coordinating imidazole ligand – as proposed for natural cofactor complexes – tunes significantly the position of the cathodic peak (ΔV = –203 mV) and stabilizes thereby the CoIII form. Partial deprotonation of the imidazole moiety through hydrogen bonding interactions was then achieved by immobilizing the biomimetic model on hydrophobic C18 silica, which yielded an unprecedented insight on how this class of Cbl-dependent proteins may fine-tune their properties in biological systems.
机译:组氨酸在钴胺素@蛋白复合物上的活性位点的现实模型已报道并在均相和固定化条件下进行了研究。提出了较低配体调制的分析及其对仿生化合物性能的影响。通过将含人工咪唑的接头与辅酸共价连接,可以模拟蛋白质的组氨酸残基对辅因子的附着。根据二维 1 H-NMR研究和分子建模,所得的分子内配位复合物是其天然原型的优良结构模型。轴向配位的咪唑配体的去质子化作用-如天然辅因子复合物所建议-显着调节阴极峰的位置(ΔV= –203 mV)并由此稳定Co III 形式。然后通过将仿生模型固定在疏水性C18二氧化硅上,通过氢键相互作用实现了咪唑部分的部分去质子化,这对此类Cbl依赖性蛋白如何在生物系统中调节其特性产生了空前的见解。

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