Largeron M, Fleury M B
Laboratoire de Chimie Analytique et Electrochimie, UMR 8638 CNRS - Université René Descartes, Faculté des Sciences Pharmaceutiques et Biologiques, 4 Avenue de l'Observatoire, 75270 Paris Cedex 06, France.
J Org Chem. 2000 Dec 29;65(26):8874-81. doi: 10.1021/jo000478l.
The reactions of a new type of quinonoid system with benzylamine have been investigated in methanol in order to mimic the reactions occurring in the course of the enzymatic oxidation of amines by quinone cofactors. Under strictly anaerobic conditions, unstable quinonoid species 1(ox)()-4(ox)() have been selectively electrogenerated using anodic-controlled potential electrolysis. Thus, we have demonstrated that 3,4-quinone 1(ox)() is incapable of deaminating benzylamine, while 3,4-iminoquinone species 3(ox)() and 4(ox)() act as efficient catalysts for the autorecycling oxidation of benzylamine: the reaction efficiency reached 64 turnovers. Additional mechanistic investigations reveal that the oxidation of benzylamine by our quinonoid model cofactors proceeds unambiguously via a transamination mechanism, as suggested for many enzymatic systems.
为了模拟醌辅因子对胺进行酶促氧化过程中发生的反应,已在甲醇中研究了一种新型醌类体系与苄胺的反应。在严格厌氧条件下,使用阳极控制电位电解法选择性地电生成了不稳定的醌类物质1(ox)() - 4(ox)()。因此,我们已证明3,4 - 醌1(ox)()不能使苄胺脱氨基,而3,4 - 亚氨基醌类物质3(ox)()和4(ox)()是苄胺自动循环氧化的有效催化剂:反应效率达到了64次周转。进一步的机理研究表明,正如许多酶促体系所表明的那样,我们的醌类模型辅因子对苄胺的氧化明确地通过转氨机制进行。