Nojiri Hideaki, Omori Toshio
Biotechnology Research Center, The University of Tokyo, 1-1-1 Yayoi, Bunkyo-ku, Tokyo 113-8657, Japan.
Biosci Biotechnol Biochem. 2002 Oct;66(10):2001-16. doi: 10.1271/bbb.66.2001.
In the last decade, extensive investigation has been done on the bacterial degradation of dioxins and its related compounds, because this class of chemicals is highly toxic and has been widely distributed in the environment. These studies have revealed the primary importance of a novel dioxygenation reaction, called angular dioxygenation, in the aerobic bacterial degradation pathway of dioxin. Accompanied by the electron transport proteins, Rieske nonheme iron oxygenase catalyzes the incorporation of oxygen atoms to the ether bond-carrying carbon (the angular position) and an adjacent carbon, resulting in the irreversible cleavage of the recalcitrant aryl ether bond. The 2,2',3-trihydroxybiphenyl or 2,2',3-trihydroxydiphenyl ether derivatives formed are degraded through meta cleavage. In addition to the degradation system of dibenzofuran and dibenzo-p-dioxin (the nonchlorinated model compounds of dioxin), those of fluorene and carbazole were shown to function in dioxin degradation. Some dioxin degradation pathways have been studied biochemically and genetically. In addition, feasibility studies have shown that some dioxin-degrading strains can function in actual dioxin-contaminated soil. These studies provide useful information for the establishment of a bioremediation method for dioxin contamination. This review summarizes recent progress on molecular and biochemical bases of the bacterial aerobic degradation of dioxin and related compounds.
在过去十年中,人们对二噁英及其相关化合物的细菌降解进行了广泛研究,因为这类化学物质毒性极高且已在环境中广泛分布。这些研究揭示了一种名为角向双加氧作用的新型双加氧反应在二噁英好氧细菌降解途径中的首要重要性。在电子传递蛋白的伴随下, Rieske非血红素铁加氧酶催化氧原子掺入携带醚键的碳(角位)和相邻的碳,导致顽固的芳基醚键不可逆断裂。形成的2,2',3-三羟基联苯或2,2',3-三羟基二苯醚衍生物通过间位裂解进行降解。除了二苯并呋喃和二苯并 - p - 二噁英(二噁英的非氯化模型化合物)的降解系统外,芴和咔唑的降解系统也被证明在二噁英降解中起作用。一些二噁英降解途径已通过生物化学和遗传学方法进行了研究。此外,可行性研究表明,一些二噁英降解菌株可在实际受二噁英污染的土壤中发挥作用。这些研究为建立二噁英污染的生物修复方法提供了有用信息。本综述总结了细菌好氧降解二噁英及相关化合物的分子和生化基础方面的最新进展。