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本文引用的文献

1
Involvement of mixed function oxidase systems in polychlorinated biphenyl metabolism by plant cells.植物细胞中环氯联苯代谢中混合功能氧化酶系统的作用。
Plant Cell Rep. 1992 Mar;11(2):97-100. doi: 10.1007/BF00235262.
2
Metabolism of Dibenzofuran by Pseudomonas sp. Strain HH69 and the Mixed Culture HH27.假单胞菌 HH69 菌株和混合培养 HH27 对二苯并呋喃的代谢。
Appl Environ Microbiol. 1990 Apr;56(4):1148-56. doi: 10.1128/aem.56.4.1148-1156.1990.
3
Rapid method for detection and quantitation of hydroxylated aromatic intermediates produced by microorganisms.快速检测和定量微生物产生的羟基芳香族中间产物的方法。
Appl Environ Microbiol. 1983 Mar;45(3):1144-7. doi: 10.1128/aem.45.3.1144-1147.1983.
4
Molecular bases of aerobic bacterial degradation of dioxins: involvement of angular dioxygenation.二噁英好氧细菌降解的分子基础:角环双加氧作用的参与
Biosci Biotechnol Biochem. 2002 Oct;66(10):2001-16. doi: 10.1271/bbb.66.2001.
5
Family shuffling of a targeted bphA region to engineer biphenyl dioxygenase.对靶向bphA区域进行家族改组以改造联苯双加氧酶。
J Bacteriol. 2002 Jul;184(14):3794-800. doi: 10.1128/JB.184.14.3794-3800.2002.
6
Alteration of regiospecificity in biphenyl dioxygenase by active-site engineering.通过活性位点工程改变联苯双加氧酶的区域特异性。
J Bacteriol. 2002 Jul;184(13):3682-8. doi: 10.1128/JB.184.13.3682-3688.2002.
7
A versatile high throughput screen for dioxygenase activity using solid-phase digital imaging.
J Biomol Screen. 2001 Aug;6(4):219-23. doi: 10.1177/108705710100600403.
8
Dehalogenation, denitration, dehydroxylation, and angular attack on substituted biphenyls and related compounds by a biphenyl dioxygenase.联苯双加氧酶对取代联苯及相关化合物的脱卤、脱硝、脱羟基作用和角向进攻。
J Bacteriol. 2001 Jun;183(12):3548-55. doi: 10.1128/JB.183.12.3548-3555.2001.
9
Emergence of multifunctional oxygenase activities by random priming recombination.
J Biol Chem. 2001 Jun 22;276(25):22500-6. doi: 10.1074/jbc.M101323200. Epub 2001 Apr 18.
10
Peroxidative degradation of selected PCB: a mechanistic study.选定多氯联苯的过氧化降解:一项机理研究。
Chemosphere. 2000 Dec;41(12):1827-34. doi: 10.1016/s0045-6535(00)00132-6.

睾丸酮丛毛单胞菌B-356的联苯分解代谢途径对2,2'-和3,3'-二羟基联苯的代谢作用

Metabolism of 2,2'- and 3,3'-dihydroxybiphenyl by the biphenyl catabolic pathway of Comamonas testosteroni B-356.

作者信息

Sondossi M, Barriault D, Sylvestre M

机构信息

Department of Microbiology, Weber State University, Ogden, Utah 84408, USA.

出版信息

Appl Environ Microbiol. 2004 Jan;70(1):174-81. doi: 10.1128/AEM.70.1.174-181.2004.

DOI:10.1128/AEM.70.1.174-181.2004
PMID:14711640
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC321272/
Abstract

The purpose of this investigation was to examine the capacity of the biphenyl catabolic enzymes of Comamonas testosteroni B-356 to metabolize dihydroxybiphenyls symmetrically substituted on both rings. Data show that 3,3'-dihydroxybiphenyl is by far the preferred substrate for strain B-356. However, the dihydrodiol metabolite is very unstable and readily tautomerizes to a dead-end metabolite or is dehydroxylated by elimination of water. The tautomerization route is the most prominent. Thus, a very small fraction of the substrate is converted to other hydroxylated and acidic metabolites. Although 2,2'-dihydroxybiphenyl is a poor substrate for strain B-356 biphenyl dioxygenase, metabolites were produced by the biphenyl catabolic enzymes, leading to production of 2-hydroxybenzoic acid. Data show that the major route of metabolism involves, as a first step, a direct dehydroxylation of one of the ortho-substituted carbons to yield 2,3,2'-trihydroxybiphenyl. However, other metabolites resulting from hydroxylation of carbons 5 and 6 of 2,2'-dihydroxybiphenyl were also produced, leading to dead-end metabolites.

摘要

本研究的目的是检测睾丸酮丛毛单胞菌B-356的联苯分解代谢酶代谢在两个环上均对称取代的二羟基联苯的能力。数据表明,3,3'-二羟基联苯是菌株B-356目前最优先利用的底物。然而,二氢二醇代谢物非常不稳定,很容易互变异构为一种终产物代谢物,或通过脱水而脱羟基。互变异构途径最为显著。因此,只有极少量的底物被转化为其他羟基化和酸性代谢物。虽然2,2'-二羟基联苯是菌株B-356联苯双加氧酶的劣质底物,但联苯分解代谢酶仍产生了代谢物,从而生成了2-羟基苯甲酸。数据表明,主要的代谢途径首先是邻位取代的一个碳原子直接脱羟基,生成2,3,2'-三羟基联苯。然而,2,2'-二羟基联苯的碳5和碳6羟基化产生的其他代谢物也会生成,从而产生终产物代谢物。