The Manchester Interdisciplinary Biocentre and the School of Chemical Engineering and Analytical Science, The University of Manchester, 131 Princess Street, Manchester M1 7DN, UK.
Chemistry. 2013 Mar 18;19(12):4058-68. doi: 10.1002/chem.201202811. Epub 2013 Jan 30.
Iron(IV)-oxo intermediates are involved in oxidations catalyzed by heme and nonheme iron enzymes, including the cytochromes P450. At the distal site of the heme in P450 Compound I (Fe(IV) -oxo bound to porphyrin radical), the oxo group is involved in several hydrogen-bonding interactions with the protein, but their role in catalysis is currently unknown. In this work, we investigate the effects of hydrogen bonding on the reactivity of high-valent metal-oxo moiety in a nonheme iron biomimetic model complex with trigonal bipyramidal symmetry that has three hydrogen-bond donors directed toward a metal(IV)-oxo group. We show these interactions lower the oxidative power of the oxidant in reactions with dehydroanthracene and cyclohexadiene dramatically as they decrease the strength of the OH bond (BDEOH ) in the resulting metal(III)-hydroxo complex. Furthermore, the distal hydrogen-bonding effects cause stereochemical repulsions with the approaching substrate and force a sideways attack rather than a more favorable attack from the top. The calculations, therefore, give important new insights into distal hydrogen bonding, and show that in biomimetic, and, by extension, enzymatic systems, the hydrogen bond may be important for proton-relay mechanisms involved in the formation of the metal-oxo intermediates, but the enzyme pays the price for this by reduced hydrogen atom abstraction ability of the intermediate. Indeed, in nonheme iron enzymes, where no proton relay takes place, there generally is no donating hydrogen bond to the iron(IV)-oxo moiety.
铁(IV)-氧中间体参与血红素和非血红素铁酶催化的氧化反应,包括细胞色素 P450。在 P450 复合物 I 中(与卟啉自由基结合的 Fe(IV)-氧)的血红素远端位置,氧基团与蛋白质发生几种氢键相互作用,但它们在催化中的作用目前尚不清楚。在这项工作中,我们研究了氢键对具有三角双锥对称的非血红素铁仿生模型配合物中高价金属-氧部分反应性的影响,该模型配合物具有三个氢键供体指向金属(IV)-氧基团。我们表明,这些相互作用极大地降低了氧化剂与脱氢蒽和环己二烯反应的氧化能力,因为它们降低了生成的金属(III)-羟基金属配合物中 OH 键(BDEOH)的强度。此外,远端氢键相互作用会导致与接近的底物产生立体化学排斥,并迫使侧面攻击而不是更有利的从顶部攻击。因此,这些计算为远端氢键提供了重要的新见解,并表明在仿生和扩展的酶系统中,氢键可能对涉及金属-氧中间体形成的质子传递机制很重要,但酶为此付出了代价是中间体能进行氢原子提取的能力降低。事实上,在非血红素铁酶中,不存在质子传递,因此通常没有供体氢键与铁(IV)-氧部分结合。