Department of Chemistry, Indian Institute of Technology Guwahati, Guwahati, 781039, Assam, India.
The Manchester Institute of Biotechnology and School of Chemical, Engineering and Analytical Science, The University of Manchester, 131 Princess Street, Manchester, M1 7DN, UK.
Chemistry. 2019 Apr 1;25(19):5086-5098. doi: 10.1002/chem.201806430. Epub 2019 Mar 12.
Iron is an essential element in nonheme enzymes that plays a crucial role in many vital oxidative transformations and metabolic reactions in the human body. Many of those reactions are regio- and stereospecific and it is believed that the selectivity is guided by second-coordination sphere effects in the protein. Here, results are shown of a few engineered biomimetic ligand frameworks based on the N4Py (N,N-bis(2-pyridylmethyl)-N-bis(2-pyridyl)methylamine) scaffold and the second-coordination sphere effects are studied. For the first time, selective substitutions in the ligand framework have been shown to tune the catalytic properties of the iron(IV)-oxo complexes by regulating the steric and electronic factors. In particular, a better positioning of the oxidant and substrate in the rate-determining transition state lowers the reaction barriers. Therefore, an optimum balance between steric and electronic factors mediates the ideal positioning of oxidant and substrate in the rate-determining transition state that affects the reactivity of high-valent reaction intermediates.
铁是非血红素酶中的一种必需元素,在人体内许多重要的氧化转化和代谢反应中起着关键作用。许多这些反应是区域和立体特异性的,据信选择性是由蛋白质中的第二配位球效应指导的。这里展示了一些基于 N4Py(N,N-双(2-吡啶基甲基)-N-双(2-吡啶基)甲基胺)支架的工程仿生配体框架的结果,并研究了第二配位球效应。这是首次表明通过调节立体和电子因素,配体框架中的选择性取代可以调节铁(IV)-氧配合物的催化性质。特别是,氧化剂和底物在速率决定过渡态中的更好定位降低了反应势垒。因此,在介导氧化剂和底物在速率决定过渡态中的理想定位的立体和电子因素之间的最佳平衡会影响高价反应中间体的反应性。