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土壤真菌频繁青霉Bi 7/2对卤代酚的非特异性降解

Unspecific degradation of halogenated phenols by the soil fungus Penicillium frequentans Bi 7/2.

作者信息

Hofrichter M, Bublitz F, Fritsche W

机构信息

Friedrich-Schiller-Universität Jena, Institut für Mikrobiologie, Germany.

出版信息

J Basic Microbiol. 1994;34(3):163-72. doi: 10.1002/jobm.3620340306.

Abstract

Resting phenol-grown mycelia of the fungus Penicillium frequentans strain Bi 7/2 were shown to be capable of metabolizing various monohalogenated phenols as well as 3,4-dichlorophenol. 2,4.dichlorophenol could be metabolized in the presence of phenol as cosubstrate. In the first degradation step the halogenated phenols were oxidized to the corresponding halocatechols. Halocatechols substituted in para-position (4-halocatechols) were further degraded under formation of 4-carboxymethylenbut-2-en-4-olide. A partial dehalogenation took place splitting the ring system. 3-Halocatechols were cleaved to 2-halomuconic acids as dead end metabolites without a dehalogenation step. Dichlorophenols were only transformed to the corresponding catechols. In addition 3,5-dichloro-catechol was O-methylated to give two isomers of dichloroguiacol. The halogenated catechols with the exception of 4-fluorocatechol partly polymerized oxidatively in the culture fluid to form insoluble dark-brown products. The degradation of halophenols are due to the action of unspecific intracellular enzymes responsible for phenol catabolism (phenol hydroxylase, catechol-1,2-dioxygenase, muconate cycloisomerase I).

摘要

研究表明,频繁青霉菌株Bi 7/2的静止期苯酚培养菌丝体能够代谢各种单卤代酚以及3,4 - 二氯苯酚。在苯酚作为共底物存在的情况下,2,4 - 二氯苯酚能够被代谢。在第一步降解中,卤代酚被氧化为相应的卤代儿茶酚。对位取代的卤代儿茶酚(4 - 卤代儿茶酚)在形成4 - 羧甲基 - 2 - 烯 - 4 - 内酯的过程中进一步降解。发生了部分脱卤反应,导致环系断裂。3 - 卤代儿茶酚被裂解为2 - 卤代粘康酸,作为无脱卤步骤的终产物。二氯苯酚仅转化为相应的儿茶酚。此外,3,5 - 二氯儿茶酚发生O - 甲基化反应,生成二氯愈创木酚的两种异构体。除4 - 氟儿茶酚外,卤代儿茶酚在培养液中部分发生氧化聚合,形成不溶性深棕色产物。卤代酚的降解是由于负责苯酚分解代谢的非特异性细胞内酶(苯酚羟化酶、儿茶酚 - 1,2 - 双加氧酶、粘康酸环异构酶I)的作用。

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