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新型环裂解双加氧酶启动了苯氧苯甲酸鞘氨醇单胞菌SC_3中对二苯醚的降解。

Degradation of Diphenyl Ether in Sphingobium phenoxybenzoativorans SC_3 Is Initiated by a Novel Ring Cleavage Dioxygenase.

作者信息

Cai Shu, Chen Li-Wei, Ai Yu-Chun, Qiu Ji-Guo, Wang Cheng-Hong, Shi Chao, He Jian, Cai Tian-Ming

机构信息

Key Laboratory of Agricultural Environmental Microbiology, Ministry of Agriculture, College of Life Sciences, Nanjing Agricultural University, Nanjing, Jiangsu, China.

The Institute of Agricultural Resources and Environment, Jiangsu Academy of Agricultural Sciences, Nanjing, Jiangsu, China.

出版信息

Appl Environ Microbiol. 2017 May 1;83(10). doi: 10.1128/AEM.00104-17. Print 2017 May 15.

Abstract

SC_3 degrades and utilizes diphenyl ether (DE) or 2-carboxy-DE as its sole carbon and energy source. In this study, we report the degradation of DE and 2-carboxy-DE initiated by a novel ring cleavage angular dioxygenase (diphenyl ether dioxygenase [Dpe]) in the strain. Dpe functions at the angular carbon and its adjacent carbon (C-1a, C-2) of a benzene ring in DE (or the 2-carboxybenzene ring in 2-carboxy-DE) and cleaves the C-1a-C-2 bond (decarboxylation occurs simultaneously for 2-carboxy-DE), yielding 2,4-hexadienal phenyl ester, which is subsequently hydrolyzed to muconic acid semialdehyde and phenol. Dpe is a type IV Rieske non-heme iron oxygenase (RHO) and consists of three components: a hetero-oligomer oxygenase, a [2Fe-2S]-type ferredoxin, and a glutathione reductase (GR)-type reductase. Genetic analyses revealed that plays an essential role in the degradation and utilization of DE and 2-carboxy-DE in SC_3. Enzymatic study showed that transformation of 1 molecule of DE needs two molecules of oxygen and two molecules of NADH, supporting the assumption that the cleavage of DE catalyzed by Dpe is a continuous two-step dioxygenation process: DE is dioxygenated at C-1a and C-2 to form a hemiacetal-like intermediate, which is further deoxygenated, resulting in the cleavage of the C-1a-C-2 bond to form one molecule of 2,4-hexadienal phenyl ester and two molecules of HO. This study extends our knowledge of the mode and mechanism of ring cleavage of aromatic compounds. Benzene ring cleavage, catalyzed by dioxygenase, is the key and speed-limiting step in the aerobic degradation of aromatic compounds. As previously reported, in the ring cleavage of DEs, the benzene ring needs to be first dihydroxylated at a lateral position and subsequently dehydrogenated and opened through extradiol cleavage. This process requires three enzymes (two dioxygenases and one dehydrogenase). In this study, we identified a novel angular dioxygenase (Dpe) in SC_3. Under Dpe-mediated catalysis, the benzene ring of DE is dioxygenated at the angular position (C-1a, C-2), resulting in the cleavage of the C-1a-C-2 bond to generate a novel product, 2,4-hexadienal phenyl ester. This process needs only one angular dioxygenase, Dpe. Thus, the ring cleavage catalyzed by Dpe represents a novel mechanism of benzene ring cleavage.

摘要

SC_3 能降解并利用二苯醚(DE)或 2-羧基二苯醚作为其唯一的碳源和能源。在本研究中,我们报道了该菌株中一种新型的环裂解角双加氧酶(二苯醚双加氧酶 [Dpe])引发的 DE 和 2-羧基二苯醚的降解过程。Dpe 作用于 DE 中苯环的角位碳及其相邻碳(C-1a、C-2)(或 2-羧基二苯醚中的 2-羧基苯环),并裂解 C-1a-C-2 键(2-羧基二苯醚同时发生脱羧反应),生成 2,4-己二烯醛苯基酯,随后该酯水解为粘康酸半醛和苯酚。Dpe 是一种 IV 型 Rieske 非血红素铁氧合酶(RHO),由三个组分组成:一种异源寡聚体氧合酶、一种 [2Fe-2S] 型铁氧还蛋白和一种谷胱甘肽还原酶(GR)型还原酶。遗传分析表明, 在 SC_3 中对 DE 和 2-羧基二苯醚的降解和利用起着至关重要的作用。酶学研究表明,1 分子 DE 的转化需要 2 分子氧气和 2 分子 NADH,这支持了 Dpe 催化的 DE 裂解是一个连续的两步双加氧过程的假设:DE 在 C-1a 和 C-2 处进行双加氧形成类似半缩醛的中间体,该中间体进一步脱氧,导致 C-1a-C-2 键裂解,形成 1 分子 2,4-己二烯醛苯基酯和 2 分子 HO。本研究扩展了我们对芳香族化合物环裂解模式和机制的认识。由双加氧酶催化的苯环裂解是芳香族化合物好氧降解的关键和限速步骤。如先前报道,在二苯醚的环裂解中,苯环需要首先在侧位进行二羟基化,随后通过间位裂解脱氢并开环。这个过程需要三种酶(两种双加氧酶和一种脱氢酶)。在本研究中,我们在 SC_3 中鉴定出一种新型的角双加氧酶(Dpe)。在 Dpe 介导的催化作用下,DE 的苯环在角位(C-1a、C-2)进行双加氧,导致 C-1a-C-2 键裂解,生成一种新型产物 2,4-己二烯醛苯基酯。这个过程仅需要一种角双加氧酶 Dpe。因此,Dpe 催化的环裂解代表了一种新型的苯环裂解机制。

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