Flavin-dependent dehalogenases.

Q3 Biochemistry, Genetics and Molecular Biology
Enzymes Pub Date : 2020-01-01 Epub Date: 2020-08-24 DOI:10.1016/bs.enz.2020.05.010
Panu Pimviriyakul, Pimchai Chaiyen
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引用次数: 2

Abstract

Flavin-dependent dehalogenases use flavin as a cofactor to catalyze carbon-halogen (C-X) bond cleavage from halogenated compounds which are mainly distributed as persistent environmental pollutants via anthropogenic activities. The accumulation of these compounds results in adaptation of bacteria to evolve metabolic pathways to metabolize the agents for four decades. Flavin-dependent enzymes have been evolved to catalyze dehalogenation in addition to its basal function. Apart from bacterial biodegradation, flavin-dependent dehalogenases also naturally appear in cellular metabolisms of higher organisms such as in human thyroid hormone. Although the removal of halogen is required in various applications, the usage of dehalogenases remains limited. In-depth understanding of their enzymatic mechanisms is useful for development of dehalogenases applications. Three main types of flavin-dependent dehalogenases are classified based on their reaction mechanisms reported to date: (1) flavin-dependent O2-utilizing dehalogenases; (2) flavin-dependent reductive dehalogenases; and (3) non-redox flavin-dependent dehalogenases. In this chapter, the catalytic properties, substrate scope, protein structures, enzymatic mechanisms, enzyme engineering, and also development of enzymes for novel applications are discussed.

Flavin-dependent dehalogenases。
黄素依赖性脱卤酶利用黄素作为辅助因子,催化碳-卤素(C-X)键从主要作为持久性环境污染物通过人为活动分布的卤化化合物中断裂。这些化合物的积累导致细菌适应进化的代谢途径代谢剂40年。黄素依赖酶除了具有基本功能外,还具有催化脱卤的功能。除了细菌生物降解外,黄素依赖的脱卤酶也自然出现在高等生物的细胞代谢中,如人类甲状腺激素。虽然在各种应用中都需要去除卤素,但脱卤酶的使用仍然有限。深入了解它们的酶促机制有助于脱卤酶的应用开发。根据迄今为止报道的反应机制,将黄素依赖的脱卤酶主要分为三类:(1)黄素依赖的利用o2的脱卤酶;(2)黄素依赖性还原脱卤酶;(3)非氧化还原黄素依赖性脱卤酶。在这一章中,讨论了催化性质,底物范围,蛋白质结构,酶的机制,酶工程以及酶的新应用的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Enzymes
Enzymes Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
4.30
自引率
0.00%
发文量
10
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