Effects of trace element concentration on enzyme controlled stable isotope fractionation during aerobic biodegradation of toluene

Environ Sci Technol. 2006 Dec 15;40(24):7675-81. doi: 10.1021/es061363n.

Abstract

The effects of iron concentration on carbon and hydrogen isotopic fractionation during aerobic biodegradation of toluene by Pseudomonas putida mt-2 were investigated using a low iron medium and two different high iron media. Mean carbon enrichment factors (epsilonc) determined using a Rayleigh isotopic model were smaller in culture grown under high iron conditions (epsilonc = -1.7+/-0.1%) compared to low iron conditions (epsilonc = -2.5+/-0.3%). Mean hydrogen enrichment factors (epsilonH) were also significantly smaller for culture grown under high iron conditions (epsilonH = -77 +/-4%) versus low iron conditions (EpsilonH = -159+/-11%). A mechanistic model for enzyme kinetics was used to relate differences in the magnitude of isotopic fractionation for low iron versus high iron cultures to the efficiency of the enzymatic transformation. The increase of carbon and hydrogen enrichment factors at low iron concentrations suggests a slower enzyme-catalyzed substrate conversion step (k2) relative to the enzyme-substrate binding step (k-l) at low iron concentration. While the observed differences were subtle and, hence, do not significantly impact the ability to use stable isotope analysis in the field, these results demonstrated that resolvable differences in carbon and hydrogen isotopic fractionation were related to low and high iron conditions. This novel result highlights the need to further investigate the effects of other trace elements known to be key components of biodegradative enzymes.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Aerobiosis*
  • Enzymes / metabolism*
  • Isotopes
  • Kinetics
  • Pseudomonas putida / enzymology
  • Pseudomonas putida / metabolism*
  • Toluene / metabolism*
  • Trace Elements / analysis*

Substances

  • Enzymes
  • Isotopes
  • Trace Elements
  • Toluene