2,4,6-Trinitrotoluene Reduction by an Fe-Only Hydrogenase in Clostridium acetobutylicum

Author:

Watrous Mary M.1,Clark Sandra2,Kutty Razia2,Huang Shouqin2,Rudolph Frederick B.2,Hughes Joseph B.1,Bennett George N.2

Affiliation:

1. Civil and Environmental Engineering

2. Department of Biochemistry and Cell Biology and the Institute of Biosciences and Bioengineering, Rice University, Houston, Texas 77005-1892

Abstract

ABSTRACT The role of hydrogenase on the reduction of 2,4,6-trinitrotoluene (TNT) in Clostridium acetobutylicum was evaluated. An Fe-only hydrogenase was isolated and identified by using TNT reduction activity as the selection basis. The formation of hydroxylamino intermediates by the purified enzyme corresponded to expected products for this reaction, and saturation kinetics were determined with a K m of 152 μM. Comparisons between the wild type and a mutant strain lacking the region encoding an alternative Fe-Ni hydrogenase determined that Fe-Ni hydrogenase activity did not significantly contribute to TNT reduction. Hydrogenase expression levels were altered in various strains, allowing study of the role of the enzyme in TNT reduction rates. The level of hydrogenase activity in a cell system correlated ( R 2 = 0.89) with the organism's ability to reduce TNT. A strain that overexpressed the hydrogenase activity resulted in maintained TNT reduction during late growth phases, which it is not typically observed in wild type strains. Strains exhibiting underexpression of hydrogenase produced slower TNT rates of reduction correlating with the determined level of expression. The isolated Fe-only hydrogenase is the primary catalyst for reducing TNT nitro substituents to the corresponding hydroxylamines in C. acetobutylicum in whole-cell systems. A mechanism for the reaction is proposed. Due to the prevalence of hydrogenase in soil microbes, this research may enhance the understanding of nitroaromatic compound transformation by common microbial communities.

Publisher

American Society for Microbiology

Subject

Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology

Reference41 articles.

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3. Ahmad F. and J. Hughes. 2000. Anaerobic transformation of TNT by Clostridium p. 185-212. In J. C. H. Spain and H.-J. Knackmuss (ed.) Biodegradation of nitroaromatic compounds and explosives. Lewis Publishers Boca Raton Fla.

4. Bruns-Nagel, D., S. Scheffer, B. Casper, H. Garn, O. Drzyzga, E. Von Low, and D. Gemsa. 1999. Effect of 2,4,6-trinitrotoluene and its metabolites on human monocytes. Environ. Sci. Technol.33:2566-2570.

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