首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >On how the binding cavity of AsqJ dioxygenase controls the desaturation reaction regioselectivity: a QM/MM study
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On how the binding cavity of AsqJ dioxygenase controls the desaturation reaction regioselectivity: a QM/MM study

机译:关于Asqj DiOxygenase的结合腔如何控制去饱和反应区域选择性:QM / MM研究

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摘要

The Fe(II)/2-oxoglutarate-dependent dioxygenase AsqJ from Aspergillus nidulans catalyses two pivotal steps in the synthesis of quinolone antibiotic 4'-methoxyviridicatin, i.e., desaturation and epoxidation of a benzodiazepinedione. The previous experimental results signal that, during the desaturation reaction, hydrogen atom transfer (HAT) from the benzylic carbon atom (C10) is a more likely step to initiate the reaction than the alternative HAT from the ring moiety (C3 atom). To unravel the origins of this regioselectivity and to explain why the observed reaction is desaturation and not the "default" hydroxylation, we performed a QM/MM study on the reaction catalysed by AsqJ. Herein, we report results that complement the experimental findings and suggest that HAT at the C10 position is the preferred reaction due to favourable interactions between the substrate and the binding cavity that compensate for the relatively high intrinsic barrier associated with the process. For the resultant radical intermediate, the desaturation/hydroxylation selectivity is governed by electronic properties of the reactants, i.e., the energy gap between the orbital that hosts the unpaired electron and the sigma orbital for the C-H bond as well as the gap between the orbitals mixing in transition state structures for each elementary step.
机译:来自Aspergillus Nidulans的Fe(II)/ 2-氧杂机依赖性二恶英酶Asqj在喹啉抗生素4'-甲氧基viridicatin的合成中催化两种枢转步骤,即苯并二嗪二酮的去饱和和环氧化。以前的实验结果信号,在去饱和反应期间,来自苄基碳原子(C10)的氢原子转移(帽子)是引发反应而不是来自环部分(C3原子)的替代帽的反应更可能的步骤。为了解开这种区域选择性的起源,并解释为什么观察到的反应是不饱和而不是“默认”羟基化,我们对ASQJ催化的反应进行了QM / mm的研究。在此,我们报告了补充实验结果并表明C10位置的帽子的帽子是由于基材和结合腔之间的良好相互作用,这补偿了与该方法相关的相对高的内在屏障之间的良好相互作用。对于所得基团中间体,去饱和/羟基化选择性受反应物的电子性质来控制,即轨道之间的轨道之间的能隙,其托管未配对的电子和Sigma轨道对于CH键以及轨道混合之间的间隙在每个基本步骤的过渡状态结构中。

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