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二醇裂解双加氧酶中烷基过氧和酸酐中间体的晶体结构

Crystal structures of alkylperoxo and anhydride intermediates in an intradiol ring-cleaving dioxygenase.

作者信息

Knoot Cory J, Purpero Vincent M, Lipscomb John D

机构信息

Department of Biochemistry Molecular Biology and Biophysics and Center for Metals in Biocatalysis, University of Minnesota, Minneapolis, MN 55455.

Department of Biochemistry Molecular Biology and Biophysics and Center for Metals in Biocatalysis, University of Minnesota, Minneapolis, MN 55455

出版信息

Proc Natl Acad Sci U S A. 2015 Jan 13;112(2):388-93. doi: 10.1073/pnas.1419118112. Epub 2014 Dec 29.

Abstract

Intradiol aromatic ring-cleaving dioxygenases use an active site, nonheme Fe(3+) to activate O2 and catecholic substrates for reaction. The inability of Fe(3+) to directly bind O2 presents a mechanistic conundrum. The reaction mechanism of protocatechuate 3,4-dioxygenase is investigated here using the alternative substrate 4-fluorocatechol. This substrate is found to slow the reaction at several steps throughout the mechanistic cycle, allowing the intermediates to be detected in solution studies. When the reaction was initiated in an enzyme crystal, it was found to halt at one of two intermediates depending on the pH of the surrounding solution. The X-ray crystal structure of the intermediate at pH 6.5 revealed the key alkylperoxo-Fe(3+) species, and the anhydride-Fe(3+) intermediate was found for a crystal reacted at pH 8.5. Intermediates of these types have not been structurally characterized for intradiol dioxygenases, and they validate four decades of spectroscopic, kinetic, and computational studies. In contrast to our similar in crystallo crystallographic studies of an Fe(2+)-containing extradiol dioxygenase, no evidence for a superoxo or peroxo intermediate preceding the alkylperoxo was found. This observation and the lack of spectroscopic evidence for an Fe(2+) intermediate that could bind O2 are consistent with concerted formation of the alkylperoxo followed by Criegee rearrangement to yield the anhydride and ultimately ring-opened product. Structural comparison of the alkylperoxo intermediates from the intra- and extradiol dioxygenases provides a rationale for site specificity of ring cleavage.

摘要

内二醇芳香环裂解双加氧酶利用活性位点的非血红素Fe(3+)来激活O2和邻苯二酚底物以进行反应。Fe(3+)无法直接结合O2,这带来了一个机制难题。本文使用替代底物4-氟邻苯二酚对内原儿茶酸3,4-双加氧酶的反应机制进行了研究。发现该底物在整个机制循环的几个步骤中减缓了反应,从而使得在溶液研究中能够检测到中间体。当在酶晶体中引发反应时,发现反应会根据周围溶液的pH值在两种中间体之一处停止。pH 6.5时中间体的X射线晶体结构揭示了关键的烷基过氧-Fe(3+)物种,而在pH 8.5反应的晶体中发现了酸酐-Fe(3+)中间体。这些类型的中间体尚未通过结构表征用于内二醇双加氧酶,它们验证了四十年来的光谱、动力学和计算研究。与我们对含Fe(2+)的外二醇双加氧酶进行的类似晶体学研究相比,未发现烷基过氧之前存在超氧或过氧中间体的证据。这一观察结果以及缺乏能够结合O2的Fe(2+)中间体的光谱证据,与烷基过氧的协同形成以及随后的Criegee重排以产生酸酐并最终生成开环产物一致。对内二醇和外二醇双加氧酶的烷基过氧中间体进行结构比较,为环裂解的位点特异性提供了理论依据。

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