Anaerobic degradation of polycyclic aromatic hydrocarbons

被引:0
作者
Heker, Isabelle [1 ]
Samak, Nadia A. [1 ]
Kong, Yachao [1 ]
Meckenstock, Rainer U. [1 ]
机构
[1] Univ Duisburg Essen, Inst Environm Microbiol & Biotechnol, Fac Chem, Aquat Microbiol, Essen, Germany
关键词
PAH degradation; anaerobic degradation; polycyclic aromatic hydrocarbons; sulfate-reducing bacteria; bioremediation; environmental microbiology; BENZOYL-COA REDUCTASE; NAPHTHALENE DEGRADATION; KEY ENZYME; MICROBIAL-DEGRADATION; BENZENE DEGRADATION; REDUCING BACTERIUM; GENETIC TOXICOLOGY; PRENYLATED FLAVIN; INITIAL REACTION; COENZYME;
D O I
10.1128/aem.02268-24
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Polycyclic aromatic hydrocarbons (PAHs) are ubiquitous and toxic pollutants in the environment that are mostly introduced through anthropogenic activities. They are very stable with low bioavailability and, because aerobic degradation is mostly limited in aquifers and sediments, often persist in anoxic systems. In this review, we elucidate the recent advances in PAH degradation by anaerobic, mostly sulfate-reducing cultures. The best-studied compound is naphthalene, the smallest and simplest PAH, which often serves as a model compound for anaerobic PAH degradation. In recent years, three-ring PAHs have also shifted into focus, using phenanthrene as a representative compound. Anaerobic degradation of PAHs has to overcome several biochemical problems. First, non-substituted PAHs have to be activated by carboxylation, which is chemically challenging and proposed to involve a 1,3-cycloaddition with a UbiD-like carboxylase and a prenylated flavin cofactor. The second key reaction is to overcome the resonance energy of the ring system, which is performed by consecutive two-electron reduction steps involving novel type III aryl-CoA reductases belonging to the old-yellow enzyme family. In naphthalene degradation, a type I aryl-CoA reductase is also involved in reducing a benzene ring structure. The third key reaction is the ring cleavage, involving beta-oxidation-like reactions in cleaving ring I of naphthalene. Ring II, however, is opened by a novel lyase reaction at a tertiary, hydroxylated carbon atom. These principles are explained using examples of anaerobic naphthalene and phenanthrene degradation to give an overview of recent advances, from the initial activation of the molecules to the complete degradation to CO2.
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页数:22
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共 115 条
[41]   Nitrite-driven anaerobic methane oxidation by oxygenic bacteria [J].
Ettwig, Katharina F. ;
Butler, Margaret K. ;
Le Paslier, Denis ;
Pelletier, Eric ;
Mangenot, Sophie ;
Kuypers, Marcel M. M. ;
Schreiber, Frank ;
Dutilh, Bas E. ;
Zedelius, Johannes ;
de Beer, Dirk ;
Gloerich, Jolein ;
Wessels, Hans J. C. T. ;
van Alen, Theo ;
Luesken, Francisca ;
Wu, Ming L. ;
van de Pas-Schoonen, Katinka T. ;
den Camp, Huub J. M. Op ;
Janssen-Megens, Eva M. ;
Francoijs, Kees-Jan ;
Stunnenberg, Henk ;
Weissenbach, Jean ;
Jetten, Mike S. M. ;
Strous, Marc .
NATURE, 2010, 464 (7288) :543-+
[42]   Microbial degradation of aromatic compounds - from one strategy to four [J].
Fuchs, Georg ;
Boll, Matthias ;
Heider, Johann .
NATURE REVIEWS MICROBIOLOGY, 2011, 9 (11) :803-816
[43]  
Galushko A, 1999, ENVIRON MICROBIOL, V1, P415
[44]   Enzymes involved in phthalate degradation in sulphate-reducing bacteria [J].
Geiger, Robin Alexander ;
Junghare, Madan ;
Mergelsberg, Mario ;
Ebenau-Jehle, Christa ;
Jesenofsky, Vivien Jill ;
Jehmlich, Nico ;
von Bergen, Martin ;
Schink, Bernhard ;
Boll, Matthias .
ENVIRONMENTAL MICROBIOLOGY, 2019, 21 (10) :3601-3612
[45]   Current State of Knowledge in Microbial Degradation of Polycyclic Aromatic Hydrocarbons (PAHs): A Review [J].
Ghosal, Debajyoti ;
Ghosh, Shreya ;
Dutta, Tapan K. ;
Ahn, Youngho .
FRONTIERS IN MICROBIOLOGY, 2016, 7
[46]   Bioenergy production via microbial conversion of residual oil to natural gas [J].
Gieg, Lisa M. ;
Duncan, Kathleen E. ;
Suflita, Joseph M. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2008, 74 (10) :3022-3029
[47]   Bioavailability of naphthalene associated with natural and synthetic sorbents [J].
Guerin, WF ;
Boyd, SA .
WATER RESEARCH, 1997, 31 (06) :1504-1512
[48]   Conformational Dynamics in the Acyl-CoA Synthetases, Adenylation Domains of Non-ribosomal Peptide Synthetases, and Firefly Luciferase [J].
Gulick, Andrew M. .
ACS CHEMICAL BIOLOGY, 2009, 4 (10) :811-827
[49]   UPTAKE OF BENZOATE BY RHODOPSEUDOMONAS-PALUSTRIS GROWN ANAEROBICALLY IN LIGHT [J].
HARWOOD, CS ;
GIBSON, J .
JOURNAL OF BACTERIOLOGY, 1986, 165 (02) :504-509
[50]  
Harwood CS, 1998, FEMS MICROBIOL REV, V22, P439, DOI 10.1016/S0168-6445(98)00026-6