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辣根过氧化物酶催化氧化卤代苯酚的单电子转移研究揭示了一种涉及两个连续单电子步骤的机制:朝着功能性卤代酚生物修复催化剂迈进。

Single turnover studies of oxidative halophenol dehalogenation by horseradish peroxidase reveal a mechanism involving two consecutive one electron steps: toward a functional halophenol bioremediation catalyst.

机构信息

Department of Chemistry and Biochemistry, University of South Carolina, Columbia, SC 29073, USA.

出版信息

J Inorg Biochem. 2012 Dec;117:316-21. doi: 10.1016/j.jinorgbio.2012.09.017. Epub 2012 Sep 25.

DOI:10.1016/j.jinorgbio.2012.09.017
PMID:23102773
Abstract

Horseradish peroxidase (HRP) catalyzes the oxidative para-dechlorination of the environmental pollutant/carcinogen 2,4,6-trichlorophenol (2,4,6-TCP). A possible mechanism for this reaction is a direct oxygen atom transfer from HRP compound I (HRP I) to trichlorophenol to generate 2,6-dichloro 1,4-benzoquinone, a two-electron transfer process. An alternative mechanism involves two consecutive one-electron transfer steps in which HRP I is reduced to compound II (HRP II) and then to the ferric enzyme as first proposed by Wiese et al. [F.W. Wiese, H.C. Chang, R.V. Lloyd, J.P. Freeman, V.M. Samokyszyn, Arch. Environ. Contam. Toxicol. 34 (1998) 217-222]. To probe the mechanism of oxidative halophenol dehalogenation, the reactions between 2,4,6-TCP and HRP compounds I or II have been investigated under single turnover conditions (i.e., without excess H(2)O(2)) using rapid scan stopped-flow spectroscopy. Addition of 2,4,6-TCP to HRP I leads rapidly to HRP II and then more slowly to the ferric resting state, consistent with a mechanism involving two consecutive one-electron oxidations of the substrate via a phenoxy radical intermediate. HRP II can also directly dechlorinate 2,4,6-TCP as judged by rapid scan stopped-flow and mass spectrometry. This observation is particularly significant since HRP II can only carry out one-electron oxidations. A more detailed understanding of the mechanism of oxidative halophenol dehalogenation will facilitate the use of HRP as a halophenol bioremediation catalyst.

摘要

辣根过氧化物酶(HRP)催化环境污染物/致癌物 2,4,6-三氯苯酚(2,4,6-TCP)的氧化对位脱氯。该反应的一种可能机制是 HRP 化合物 I(HRP I)直接将氧原子转移到三氯苯酚上,生成 2,6-二氯 1,4-苯醌,这是一个两电子转移过程。另一种机制涉及两个连续的单电子转移步骤,其中 HRP I 首先被还原为化合物 II(HRP II),然后再被还原为铁酶,这是 Wiese 等人首次提出的。[F.W. Wiese、H.C. Chang、R.V. Lloyd、J.P. Freeman、V.M. Samokyszyn,《环境污染物与毒性杂志》34(1998 年)217-222]。为了探究氧化卤代酚脱卤化反应的机制,在单转换条件(即没有过量 H(2)O(2))下,使用快速扫描停流光谱法研究了 2,4,6-TCP 与 HRP 化合物 I 或 II 之间的反应。向 HRP I 中加入 2,4,6-TCP 会迅速导致 HRP II,然后缓慢导致铁酶的静止状态,这与一种机制一致,该机制涉及通过酚氧基自由基中间体连续进行两次单电子氧化底物。HRP II 也可以直接脱氯 2,4,6-TCP,这可以通过快速扫描停流和质谱法判断。这一观察结果特别重要,因为 HRP II 只能进行单电子氧化。更详细地了解氧化卤代酚脱卤化反应的机制将有助于 HRP 作为卤代酚生物修复催化剂的使用。

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