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Biodegradation of high-molecular-weight polycyclic aromatic hydrocarbons under anaerobic conditions: Overview of studies, proposed pathways and future perspectives

机译:厌氧条件下高分子量多环芳烃的生物降解:研究概述,拟议途径和未来展望

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The biodegradation of low- and high-molecular-weight polycyclic aromatic hydrocarbons (PAHs) (LWM-PAHs and HMW-PAHs, respectively) has been studied extensively under aerobic conditions. Molecular O-2 plays 2 critical roles in this biodegradation process. O-2 activates the aromatic rings through hydroxylation prior to ring opening and serves as a terminal electron acceptor (TEA). However, several microorganisms have devised ways of activating aromatic rings, leading to ring opening (and thus biodegradation) when TEAS other than O-2 are used (under anoxic conditions). These microorganisms belong to the sulfate-, nitrate-, and metal-ion-reducing bacteria and the methanogens. Although the anaerobic biodegradation of monocyclic aromatic hydrocarbons and LWM-PAH naphthalene have been studied, little information is available about the biodegradation of HMW-PAHs. This manuscript reviews studies of the anaerobic biodegradation of HMW-PAHs and identifies gaps that limit both our understanding and the efficiency of this biodegradation process. Strategies that can be employed to overcome these limitations are also discussed. (C) 2018 Elsevier Ltd. All rights reserved.
机译:低氧和高分子量多环芳烃(分别为LWM-PAHs和HMW-PAHs)的生物降解已在有氧条件下进行了广泛的研究。分子O-2在此生物降解过程中扮演2个关键角色。 O-2在开环之前通过羟基化作用激活芳环,并充当末端电子受体(TEA)。然而,当使用除O-2以外的TEAS(在缺氧条件下)时,几种微生物已设计出活化芳环的方法,从而导致开环(从而导致生物降解)。这些微生物属于减少硫酸根,硝酸根和金属离子的细菌和产甲烷菌。尽管已经研究了单环芳烃和LWM-PAH萘的厌氧生物降解,但是关于HMW-PAHs的生物降解的信息很少。该手稿回顾了HMW-PAHs厌氧生物降解的研究,并确定了限制我们理解和这种生物降解过程效率的差距。还讨论了可以用来克服这些限制的策略。 (C)2018 Elsevier Ltd.保留所有权利。

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