Literature DB >> 24238333

Anaerobic degradation of homocyclic aromatic compounds via arylcarboxyl-coenzyme A esters: organisms, strategies and key enzymes.

Matthias Boll1, Claudia Löffler, Brandon E L Morris, Johannes W Kung.   

Abstract

Next to carbohydrates, aromatic compounds are the second most abundant class of natural organic molecules in living organic matter but also make up a significant proportion of fossil carbon sources. Only microorganisms are capable of fully mineralizing aromatic compounds. While aerobic microbes use well-studied oxygenases for the activation and cleavage of aromatic rings, anaerobic bacteria follow completely different strategies to initiate catabolism. The key enzymes related to aromatic compound degradation in anaerobic bacteria are comprised of metal- and/or flavin-containing cofactors, of which many use unprecedented radical mechanisms for C-H bond cleavage or dearomatization. Over the past decade, the increasing number of completed genomes has helped to reveal a large variety of anaerobic degradation pathways in Proteobacteria, Gram-positive microbes and in one archaeon. This review aims to update our understanding of the occurrence of aromatic degradation capabilities in anaerobic microorganisms and serves to highlight characteristic enzymatic reactions involved in (i) the anoxic oxidation of alkyl side chains attached to aromatic rings, (ii) the carboxylation of aromatic rings and (iii) the reductive dearomatization of central arylcarboxyl-coenzyme A intermediates. Depending on the redox potential of the electron acceptors used and the metabolic efficiency of the cell, different strategies may be employed for identical overall reactions.
© 2013 Society for Applied Microbiology and John Wiley & Sons Ltd.

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Year:  2013        PMID: 24238333     DOI: 10.1111/1462-2920.12328

Source DB:  PubMed          Journal:  Environ Microbiol        ISSN: 1462-2912            Impact factor:   5.491


  42 in total

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Review 5.  Anaerobic biodegradation of phenol in wastewater treatment: achievements and limits.

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7.  One-megadalton metalloenzyme complex in Geobacter metallireducens involved in benzene ring reduction beyond the biological redox window.

Authors:  Simona G Huwiler; Claudia Löffler; Sebastian E L Anselmann; Hans-Joachim Stärk; Martin von Bergen; Jennifer Flechsler; Reinhard Rachel; Matthias Boll
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9.  Benzoate metabolism intermediate benzoyl coenzyme A affects gentisate pathway regulation in Comamonas testosteroni.

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10.  Identification of the Gene Cluster for the Anaerobic Degradation of 3,5-Dihydroxybenzoate (α-Resorcylate) in Thauera aromatica Strain AR-1.

Authors:  Águeda Molina-Fuentes; Daniel Pacheco; Patricia Marín; Bodo Philipp; Bernhard Schink; Silvia Marqués
Journal:  Appl Environ Microbiol       Date:  2015-08-07       Impact factor: 4.792

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