Literature DB >> 27392087

An unusual strategy for the anoxic biodegradation of phthalate.

Christa Ebenau-Jehle1, Mario Mergelsberg1, Stefanie Fischer1, Thomas Brüls2,3, Nico Jehmlich4, Martin von Bergen4, Matthias Boll1.   

Abstract

In the past two decades, the study of oxygen-independent degradation of widely abundant aromatic compounds in anaerobic bacteria has revealed numerous unprecedented enzymatic principles. Surprisingly, the organisms, metabolites and enzymes involved in the degradation of o-phthalate (1,2-dicarboxybenzene), mainly derived from phthalate esters that are annually produced at the million ton scale, are sparsely known. Here, we demonstrate a previously unknown capacity of complete phthalate degradation in established aromatic compound-degrading, denitrifying model organisms of the genera Thauera, Azoarcus and 'Aromatoleum'. Differential proteome analyses revealed phthalate-induced gene clusters involved in uptake and conversion of phthalate to the central intermediate benzoyl-CoA. Enzyme assays provided in vitro evidence for the formation of phthaloyl-CoA by a succinyl-CoA- and phthalate-specific CoA transferase, which is essential for the subsequent oxygen-sensitive decarboxylation to benzoyl-CoA. The extreme instability of the phthaloyl-CoA intermediate requires highly balanced CoA transferase and decarboxylase activities to avoid its cellular accumulation. Phylogenetic analysis revealed phthaloyl-CoA decarboxylase as a novel member of the UbiD-like, (de)carboxylase enzyme family. Homologs of the encoding gene form a phylogenetic cluster and are found in soil, freshwater and marine bacteria; an ongoing global distribution of a possibly only recently evolved degradation pathway is suggested.

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Year:  2016        PMID: 27392087      PMCID: PMC5315483          DOI: 10.1038/ismej.2016.91

Source DB:  PubMed          Journal:  ISME J        ISSN: 1751-7362            Impact factor:   10.302


  46 in total

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Journal:  Microbiol Mol Biol Rev       Date:  2009-03       Impact factor: 11.056

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Review 4.  Chemical behavior of phthalates under abiotic conditions in landfills.

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5.  Dimethylphthalate hydrolysis by specific microbial esterase.

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Journal:  Mutat Res       Date:  2012-04-03       Impact factor: 2.433

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2.  An Aerobic Hybrid Phthalate Degradation Pathway via Phthaloyl-Coenzyme A in Denitrifying Bacteria.

Authors:  Christa Ebenau-Jehle; Christina I S L Soon; Jonathan Fuchs; Robin Geiger; Matthias Boll
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5.  Degradation of dibutyl phthalate by Paenarthrobacter sp. Shss isolated from Saravan landfill, Hyrcanian Forests, Iran.

Authors:  S Shariati; C Ebenau-Jehle; A A Pourbabaee; H A Alikhani; M Rodriguez-Franco; M Agne; M Jacoby; R Geiger; F Shariati; M Boll
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6.  Isophthalate:coenzyme A ligase initiates anaerobic degradation of xenobiotic isophthalate.

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Journal:  ISME J       Date:  2019-01-15       Impact factor: 10.302

8.  A benzene-degrading nitrate-reducing microbial consortium displays aerobic and anaerobic benzene degradation pathways.

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9.  Chemical Profiling Provides Insights into the Metabolic Machinery of Hydrocarbon-Degrading Deep-Sea Microbes.

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  9 in total

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