Hardy Florence J, Quesne Matthew G, Gérard Emilie F, Zhao Jingming, Ortmayer Mary, Taylor Christopher J, Ali Hafiz S, Slater Jeffrey W, Levy Colin W, Heyes Derren J, Bollinger J Martin, de Visser Sam P, Green Anthony P
Department of Chemistry & Manchester Institute of Biotechnology, The University of Manchester, 131 Princess Street, Manchester M1 7DN, U.K.
Research Complex at Harwell, Rutherford Appleton Laboratory, Harwell Oxford, Didcot, Oxon OX11 0FA, U.K.
ACS Catal. 2024 Jul 20;14(15):11584-11590. doi: 10.1021/acscatal.4c02365. eCollection 2024 Aug 2.
The ability to introduce noncanonical amino acids as axial ligands in heme enzymes has provided a powerful experimental tool for studying the structure and reactivity of their Fe=O ("ferryl") intermediates. Here, we show that a similar approach can be used to perturb the conserved Fe coordination environment of 2-oxoglutarate (2OG) dependent oxygenases, a versatile class of enzymes that employ highly-reactive ferryl intermediates to mediate challenging C-H functionalizations. Replacement of one of the cis-disposed histidine ligands in the oxygenase VioC with a less electron donating -methyl-histidine (MeHis) preserves both catalytic function and reaction selectivity. Significantly, the key ferryl intermediate responsible for C-H activation can be accumulated in both the wildtype and the modified protein. In contrast to heme enzymes, where metal-oxo reactivity is extremely sensitive to the nature of the proximal ligand, the rates of C-H activation and the observed large kinetic isotope effects are only minimally affected by axial ligand replacement in VioC. This study showcases a powerful tool for modulating the coordination sphere of nonheme iron enzymes that will enhance our understanding of the factors governing their divergent activities.
在血红素酶中引入非天然氨基酸作为轴向配体的能力,为研究其Fe=O(“高铁”)中间体的结构和反应活性提供了一个强大的实验工具。在此,我们表明,类似的方法可用于扰动2-氧代戊二酸(2OG)依赖性加氧酶中保守的铁配位环境,这是一类多功能酶,利用高活性的高铁中间体介导具有挑战性的C-H官能化反应。用供电子能力较弱的β-甲基组氨酸(MeHis)取代加氧酶VioC中顺式排列的组氨酸配体之一,既能保留催化功能,又能保持反应选择性。值得注意的是,负责C-H活化的关键高铁中间体在野生型和修饰蛋白中均可积累。与血红素酶不同,在血红素酶中金属-氧反应性对近端配体的性质极为敏感,而在VioC中,C-H活化速率和观察到的大动力学同位素效应仅受到轴向配体取代的极小影响。这项研究展示了一种调节非血红素铁酶配位球的强大工具,这将增进我们对控制其不同活性的因素的理解。