Suppr超能文献

鞘氨醇单胞菌属菌株UG30对2,4-二硝基苯酚及选定的硝基芳香族化合物的降解作用

Degradation of 2,4-dinitrophenol and selected nitroaromatic compounds by Sphingomonas sp. UG30.

作者信息

Zablotowicz R M, Leung K T, Alber T, Cassidy M B, Trevors J T, Lee H, Veldhuis L, Hall J C

机构信息

United States Department of Agriculture-Agricultural Research Service, Stoneville, MS 38776, USA.

出版信息

Can J Microbiol. 1999 Oct;45(10):840-8.

Abstract

Sphingomonas strain UG30 mineralizes both p-nitrophenol (PNP) and pentachlorophenol (PCP). Our current studies showed that UG30 oxidatively metabolized certain other p-substituted nitrophenols, i.e., p-nitrocatechol, 2,4-dinitrophenol (2,4-DNP), and 4,6-dinitrocresol with liberation of nitrite. 2,6-DNP, o- or m-nitrophenol, picric acid, or the herbicide dinoseb were not metabolized. Studies using 14C-labelled 2,4-DNP indicated that in glucose-glutamate broth cultures of UG30, greater than 90% of 103 microM 2,4-DNP was transformed to other compounds, while 8-19% of the 2,4-DNP was mineralized within 5 days. A significant portion (20-50%) of the 2,4-DNP was metabolized to highly polar metabolite(s) with one major unidentified metabolite accumulating from 5 to 25% of the initial radioactivity. The amounts of 2,4-DNP mineralized and converted to polar metabolites was affected by glutamate concentration in the medium. Nitrophenolic compounds metabolized by UG30 were also suitable substrates for the UG30 PCP-4-monooxygenase (pcpB gene expressed in Escherichia coli) which is likely central to degradation of these compounds. The wide substrate range of UG30 could render this strain useful in bioremediation of some chemically contaminated soils.

摘要

鞘氨醇单胞菌属菌株UG30能使对硝基苯酚(PNP)和五氯苯酚(PCP)矿化。我们目前的研究表明,UG30能氧化代谢某些其他对取代硝基苯酚,即对硝基邻苯二酚、2,4-二硝基苯酚(2,4-DNP)和4,6-二硝基甲酚,并释放出亚硝酸盐。2,6-DNP、邻或间硝基苯酚、苦味酸或除草剂地乐酚未被代谢。使用14C标记的2,4-DNP的研究表明,在UG30的葡萄糖-谷氨酸肉汤培养物中,大于90%的103微摩尔2,4-DNP被转化为其他化合物,而8-19%的2,4-DNP在5天内被矿化。2,4-DNP的很大一部分(20-50%)被代谢为高极性代谢物,其中一种主要的未鉴定代谢物积累量占初始放射性的5-25%。2,4-DNP矿化和转化为极性代谢物的量受培养基中谷氨酸浓度的影响。UG30代谢的硝基酚类化合物也是UG30五氯苯酚-4-单加氧酶(在大肠杆菌中表达的pcpB基因)的合适底物,该酶可能是这些化合物降解的核心。UG30广泛的底物范围可能使该菌株在生物修复一些化学污染土壤方面有用。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验