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神秘的P450脱羧酶OleT能够进行氧反弹化学,但在进化过程中却阻碍了这一过程。

The Enigmatic P450 Decarboxylase OleT Is Capable of, but Evolved To Frustrate, Oxygen Rebound Chemistry.

作者信息

Hsieh Chun H, Huang Xiongyi, Amaya José A, Rutland Cooper D, Keys Carson L, Groves John T, Austin Rachel N, Makris Thomas M

机构信息

Department of Chemistry and Biochemistry, University of South Carolina , Columbia, South Carolina 29208, United States.

Department of Chemistry, Princeton University , Princeton, New Jersey 08544, United States.

出版信息

Biochemistry. 2017 Jul 5;56(26):3347-3357. doi: 10.1021/acs.biochem.7b00338. Epub 2017 Jun 26.

Abstract

OleT is a cytochrome P450 enzyme that catalyzes the removal of carbon dioxide from variable chain length fatty acids to form 1-alkenes. In this work, we examine the binding and metabolic profile of OleT with shorter chain length (n ≤ 12) fatty acids that can form liquid transportation fuels. Transient kinetics and product analyses confirm that OleT capably activates hydrogen peroxide with shorter substrates to form the high-valent intermediate Compound I and largely performs C-C bond scission. However, the enzyme also produces fatty alcohol side products using the high-valent iron oxo chemistry commonly associated with insertion of oxygen into hydrocarbons. When presented with a short chain fatty acid that can initiate the formation of Compound I, OleT oxidizes the diagnostic probe molecules norcarane and methylcyclopropane in a manner that is reminiscent of reactions of many CYP hydroxylases with radical clock substrates. These data are consistent with a decarboxylation mechanism in which Compound I abstracts a substrate hydrogen atom in the initial step. Positioning of the incipient substrate radical is a crucial element in controlling the efficiency of activated OH rebound.

摘要

OleT是一种细胞色素P450酶,它催化可变链长脂肪酸去除二氧化碳以形成1-烯烃。在这项工作中,我们研究了OleT与可形成液体运输燃料的较短链长(n≤12)脂肪酸的结合和代谢概况。瞬态动力学和产物分析证实,OleT能够用较短的底物激活过氧化氢以形成高价中间体化合物I,并主要进行C-C键断裂。然而,该酶还利用通常与氧插入烃类相关的高价铁氧化学产生脂肪醇副产物。当遇到可引发化合物I形成的短链脂肪酸时,OleT以类似于许多CYP羟化酶与自由基时钟底物反应的方式氧化诊断探针分子降蒈烷和甲基环丙烷。这些数据与一种脱羧机制一致,其中化合物I在第一步中夺取底物氢原子。初始底物自由基的定位是控制活化的OH回跳效率的关键因素。

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