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生物修复与苯并(a)芘的微生物代谢。

Bioremediation and microbial metabolism of benzo(a)pyrene.

机构信息

Molecular and Environmental Toxicology Center, University of Wisconsin-Madison, Madison, WI, 53706, USA.

Department of Bacteriology, The University of Wisconsin-Madison, Madison, WI, 53706, USA.

出版信息

Mol Microbiol. 2018 Aug;109(4):433-444. doi: 10.1111/mmi.14062. Epub 2018 Aug 3.

Abstract

The growing release of organic contaminants into the environment due to industrial processes has inevitably increased the incidence of their exposure to humans which often results in negative health effects. Microorganisms are also increasingly exposed to the pollutants, yet their diverse metabolic capabilities enable them to survive toxic exposure making these degradation mechanisms important to understand. Fungi are the most abundant microorganisms in the environment, yet less has been studied to understand their ability to degrade contaminants than in bacteria. This includes specific enzyme production and the genetic regulation which guides metabolic networks. This review intends to compare what is known about bacterial and fungal degradation of toxic compounds using benzo(a)pyrene as a relevant example. Most research is done in the context of using fungi for bioremediation, however, we intend to also point out how fungal metabolism may impact human health in other ways including through their participation in microbial communities in the human gut and skin and through inhalation of fungal spores.

摘要

由于工业过程,越来越多的有机污染物释放到环境中,这不可避免地增加了它们暴露于人类的几率,而这往往会导致负面的健康影响。微生物也越来越多地暴露于污染物中,但它们多样的代谢能力使它们能够在有毒暴露下存活,因此这些降解机制对于我们的理解很重要。真菌是环境中最丰富的微生物,但与细菌相比,人们对其降解污染物的能力的研究还较少。本综述旨在比较细菌和真菌对有毒化合物的降解作用,以苯并(a)芘为例。大多数研究都是在利用真菌进行生物修复的背景下进行的,但我们还打算指出,真菌的新陈代谢可能会以其他方式影响人类健康,包括通过它们在人类肠道和皮肤中的微生物群落中的参与,以及通过吸入真菌孢子。

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