Determination of 2,4- and 2,6-dinitrotoluene biodegradation limits. 2011

Sungsoo Han, and Sachiyo T Mukherji, and Angela Rice, and Joseph B Hughes
Georgia Institute of Technology, School of Civil and Environmental Engineering, Atlanta, GA 30332-0355, USA.

This study was carried out to explore the lowest achievable dinitrotoluene (DNT) isomer concentrations that would support sustained growth of DNT degrading microorganisms under an aerobic condition. Studies were conducted using suspended (chemostat) and attached growth (column) systems. The biodegradation limits for 2,4-dinitrotoluene chemostat and column system were 0.054 ± 0.005 and 0.057 ± 0.008 μM, respectively, and for 2,6-dinitrotoluene, the limits for chemostat and column system were 0.039 ± 0.005 and 0.026 ± 0.013 μM, respectively. The biodegradation limits determined in this study are much lower than the regulatory requirements, inferring that bacterial ability to metabolize DNT does not preclude applications of bioremediation (including natural attenuation) for DNT contaminated media.

UI MeSH Term Description Entries
D004136 Dinitrobenzenes Benzene derivatives which are substituted with two nitro groups in the ortho, meta or para positions. Dinitrobenzene,Dinitrophenyl Compound,Dinitrophenyl Compounds,Dinitrotoluene,Dinitrotoluenes,Compound, Dinitrophenyl
D001420 Bacteria, Aerobic Bacteria which require oxygen in order to grow and survive. Aerobic Bacteria
D001673 Biodegradation, Environmental Elimination of ENVIRONMENTAL POLLUTANTS; PESTICIDES and other waste using living organisms, usually involving intervention of environmental or sanitation engineers. Bioremediation,Phytoremediation,Natural Attenuation, Pollution,Environmental Biodegradation,Pollution Natural Attenuation

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