首页> 外文期刊>Journal of the American Chemical Society >What factors influence the ratio of C-H hydroxylation versus C=C epoxidation by a nonheme cytochrome P450 biomimetic?
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What factors influence the ratio of C-H hydroxylation versus C=C epoxidation by a nonheme cytochrome P450 biomimetic?

机译:哪些因素会影响非血红素细胞色素P450仿生物的C-H羟基化与C = C环氧化的比率?

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Density functional calculations on a nonheme biomimetic (Fe=O(TMCS)(+)) have been performed and its catalytic properties versus propene investigated. Our studies show that this catalyst is able to chemoselectively hydroxylate C-H bonds even in the presence of C=C double bonds. This phenomenon has been analyzed and found to occur due to Pauli repusions between protons on the TMCS ligand with protons attached to the approaching substrate. The geometries of the rate determining transition states indicate that the steric hindrance is larger in the epoxidation transition states than in the hydroxylation ones with much shorter distances; hence the hydroxylation pathway is favored over the epoxidation. Although, the reactant experiences close lying triplet and quintet spin states, the dominant reaction mechanism takes place on the quintet spin state surface; i.e., Fe=O(TMCS)(+) reacts via single-state reactivity. Our calculations show that this spin state selectivity is the result of geometric orientation of the transition state structures, whereby the triplet ones are destabilized by electrostatic repulsions between the substrate and the ligand while the quintet spin transition states are aligned along the ideal axis. The reactivity patterns and geometries are compared with oxoiron species of dioxygenase and monoxygenase enzymes. Thus, Fe=O(TMCS)(+) shows some similarities with P450 enzyme reactivity: it chemoselectively hydroxylates CsH bonds even in the presence of a C=C double bond and therefore is an acceptable P450 biomimetic. However, the absolute barriers of substrate oxidation by Fe=O(TMCS)(+) are higher than the ones obtained with heme enzymes, but the chemoselectivity is lesser affected by external perturbations such as hydrogen bonding of a methanol molecule toward the thiolate sulfur or a dielectric constant. This is the first oxoiron complex whereby we calculated a chemoselective hydroxylation over epoxidation in the gas phase.
机译:进行了非血红素仿生剂(Fe = O(TMCS)(+))的密度泛函计算,并研究了其对丙烯的催化性能。我们的研究表明,即使在存在C = C双键的情况下,该催化剂也能够对C-H键进行化学选择性羟基化。已经对该现象进行了分析并发现是由于TMCS配体上质子附着在临近的底物上的质子之间的Pauli排斥而发生的。决定速率的过渡态的几何形状表明,环氧化过渡态的空间位阻比距离短得多的羟基化过渡位的空间位阻大。因此,羟基化途径比环氧化更有利。尽管反应物经历了紧密的三重态和五重态自旋态,但主要的反应机理还是发生在五重态自旋态表面上。即,Fe = O(TMCS)(+)通过单态反应性进行反应。我们的计算表明,这种自旋态选择性是过渡态结构的几何取向的结果,其中三重态由于在底物和配体之间的静电排斥而不稳定,而五重态自旋转变态沿理想轴排列。将反应模式和几何形状与双加氧酶和单加氧酶的氧化铁种类进行比较。因此,Fe = O(TMCS)(+)与P450酶反应性相似:即使在存在C = C双键的情况下,其化学选择性羟基化CsH键,因此是可接受的P450仿生剂。但是,Fe = O(TMCS)(+)导致的底物氧化的绝对势垒高于血红素酶,但化学选择性受外部扰动(例如甲醇分子对硫醇盐硫的氢键或介电常数。这是第一个羰基铁络合物,据此我们计算出气相中环氧化反应的化学选择性羟基化程度。

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