Analysis of structure, function, and activity of a benzene-degrading microbial community

FEMS Microbiol Ecol. 2013 Jul;85(1):14-26. doi: 10.1111/1574-6941.12090. Epub 2013 Mar 11.

Abstract

We identified phylotypes performing distinct functions related to benzene degradation in complex microbial biofilms from an aerated treatment pond containing coconut textile. RNA- and protein-stable isotope probing (SIP) and compound-specific stable isotope analysis were applied to delineate bacteria and predominant pathways involved in the degradation of benzene. In laboratory microcosms, benzene was degraded at rates of ≥ 11 μM per day and per gram coconut textile under oxic conditions. Carbon isotope fractionation with isotopic enrichment factors (ε) of -0.6 to -1‰ and no significant hydrogen isotope fractionation indicated a dihydroxylation reaction for the initial ring attack. The incubation with [(13)C₆]-benzene led to (13)CO₂ formation accompanied by (13)C-labeling of RNA and proteins of the active biomass. Phylogenetic analysis of the (13)C-labeled RNA revealed that phylotypes related to Zoogloea, Ferribacterium, Aquabacterium, and Hydrogenophaga within the Betaproteobacteria predominantly assimilated carbon from benzene. Although the phylogenetic classification of identified (13)C-labeled proteins was biased by the incomplete metagenome information of public databases, it matched with RNA-SIP results at genus level. The detection of (13)C-labeled proteins related to toluene dioxygenase and catechol 2,3-dioxygenase suggests benzene degradation by a dihydroxylation pathway with subsequent meta-cleavage of formed catechol.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Archaeal Proteins / analysis
  • Archaeal Proteins / chemistry
  • Bacteria / classification
  • Bacteria / genetics
  • Bacteria / metabolism*
  • Bacterial Proteins / analysis
  • Bacterial Proteins / chemistry
  • Benzene / metabolism*
  • Biodegradation, Environmental
  • Biofilms
  • Carbon Isotopes
  • Catechol 2,3-Dioxygenase / analysis
  • Food Chain
  • Hydrogen
  • Phylogeny

Substances

  • Archaeal Proteins
  • Bacterial Proteins
  • Carbon Isotopes
  • Hydrogen
  • Catechol 2,3-Dioxygenase
  • Benzene