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Bioengineering of Cytochrome P450 OleTJE: How Does Substrate Positioning Affect the Product Distributions?

机译:细胞色素的生物工程P450 OLETJE:基材定位如何影响产品分布?

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摘要

The cytochromes P450 are versatile enzymes found in all forms of life. Most P450s use dioxygen on a heme center to activate substrates, but one class of P450s utilizes hydrogen peroxide instead. Within the class of P450 peroxygenases, the P450 OleTJE isozyme binds fatty acid substrates and converts them into a range of products through the α-hydroxylation, β-hydroxylation and decarboxylation of the substrate. The latter produces hydrocarbon products and hence can be used as biofuels. The origin of these product distributions is unclear, and, as such, we decided to investigate substrate positioning in the active site and find out what the effect is on the chemoselectivity of the reaction. In this work we present a detailed computational study on the wild-type and engineered structures of P450 OleTJE using a combination of density functional theory and quantum mechanics/molecular mechanics methods. We initially explore the wild-type structure with a variety of methods and models and show that various substrate activation transition states are close in energy and hence small perturbations as through the protein may affect product distributions. We then engineered the protein by generating an in silico model of the double mutant Asn242Arg/Arg245Asn that moves the position of an active site Arg residue in the substrate-binding pocket that is known to form a salt-bridge with the substrate. The substrate activation by the iron(IV)-oxo heme cation radical species (Compound I) was again studied using quantum mechanics/molecular mechanics (QM/MM) methods. Dramatic differences in reactivity patterns, barrier heights and structure are seen, which shows the importance of correct substrate positioning in the protein and the effect of the second-coordination sphere on the selectivity and activity of enzymes.
机译:细胞色素p450是各种类型的植物中发现的多功能酶。大多数P450s在血红素中心上使用Dioxygen来激活基材,但一类P450S使用过氧化氢。在P450过氧基酶的类别中,P450 oletje同工酶结合脂肪酸基材并通过α-羟基化,β-羟基化和基材的脱羧,将它们转化为一系列产物。后者产生烃产品,因此可以用作生物燃料。这些产品分布的起源尚不清楚,因此,我们决定研究活性位点中的基材定位,并找出效果对反应的化学选择性的影响。在这项工作中,我们使用密度泛函理论和量子力学/分子力学方法的组合,对P450 OLETJE的野生型和工程结构进行了详细的计算研究。我们最初探讨了各种方法和模型的野生型结构,并表明各种衬底激活转变状态靠近能量,因此通过蛋白质的小扰动可能影响产品分布。然后,我们通过在双突变体ASN2422ARG / ARG245AS的硅模型中产生蛋白质来设计蛋白质,其在底物结合口袋中移动活性位点Arg残留物的位置,该袋已知用基板形成盐桥。使用量子力学/分子机械(QM / mm)方法再次研究铁(IV) - 氧肟血阳离子(化合物I)的底物活化。可以看出反应性模式,阻挡高度和结构的剧烈差异,这表明了蛋白质中正确的基材定位的重要性以及第二协调球体对酶的选择性和活性的影响。

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