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理论动力学同位素效应在建立有机污染物精确生物降解机制中的作用。

Theoretical Kinetic Isotope Effects in Establishing the Precise Biodegradation Mechanisms of Organic Pollutants.

机构信息

School of Environment Science and Spatial Informatics, China University of Mining and Technology, Daxue Road 1, Xuzhou 221116, China.

College of Environmental and Resource Sciences, Zhejiang University, Yuhangtang Road 866, Hangzhou 310058, China.

出版信息

Environ Sci Technol. 2023 Mar 28;57(12):4915-4929. doi: 10.1021/acs.est.2c04755. Epub 2023 Mar 16.

Abstract

Compound-specific isotope analysis (CSIA) for natural isotope ratios has been recognized as a promising tool to elucidate biodegradation pathways of organic pollutants by microbial enzymes by relating reported kinetic isotope effects (KIEs) to apparent KIEs (AKIEs) derived from bulk isotope fractionations (ε). However, for many environmental reactions, neither are the reference KIE ranges sufficiently narrow nor are the mechanisms elucidated to the point that rate-determining steps have been identified unequivocally. In this work, besides providing reference KIEs and rationalizing AKIEs, good relationships have been explained by DFT computations for diverse biodegradation pathways with known enzymatic models between the theoretical isotope fractionations (ε) from intrinsic KIEs on the rate-determining steps and the observed ε. (1) To confirm the mechanistic details of previously reported pathway-dependent CSIA, it includes isotope changes in MTBE biodegradation between hydroxylation by CYP450 and S2 reaction by cobalamin-dependent methyltransferase, the regioselectivity of toluene biodegradation by CYP450, and the rate-determining step in toluene biodegradation by benzylsuccinate synthase. (2) To yield new fundamental insights into some unclear biodegradation pathways, it consists of the oxidative function of toluene dioxygenase in biodegradation of TCE, the epoxidation mode in biodegradation of TCE by toluene 4-monooxygenase, and the weighted average mechanism in biodegradation of DCE by CYP450.

摘要

通过将报道的动力学同位素效应(KIE)与源自整体同位素分馏(ε)的表观 KIE(AKIE)相关联,化合物特异性同位素分析(CSIA)已被认为是阐明微生物酶对有机污染物生物降解途径的一种很有前途的工具。然而,对于许多环境反应,参考 KIE 范围既不够窄,也没有阐明机制,以至于无法明确确定速率决定步骤。在这项工作中,除了提供参考 KIE 并合理化 AKIE 之外,还通过 DFT 计算对具有已知酶模型的各种生物降解途径进行了很好的解释,这些途径之间的理论同位素分馏(ε)与固有 KIE 上的速率决定步骤和观察到的ε之间存在内在 KIE。(1)为了确认先前报道的路径依赖性 CSIA 的机制细节,它包括 MTBE 生物降解中环羟化作用由 CYP450 和钴胺素依赖性甲基转移酶的 S2 反应之间的同位素变化,CYP450 对甲苯生物降解的区域选择性以及苯丁基琥珀酸合酶中甲苯生物降解的速率决定步骤。(2)为了深入了解一些不清楚的生物降解途径,它包括 TCE 生物降解中甲苯双加氧酶的氧化功能,甲苯 4-单加氧酶生物降解中 TCE 的环氧化模式以及 CYP450 生物降解中 DCE 的加权平均机制。

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