Characterization of oxidation products of TNT metabolism in aquatic phytoremediation systems of Myriophyllum aquaticum

被引:61
作者
Bhadra, R
Spanggord, RJ
Wayment, DG
Hughes, JB
Shanks, JV
机构
[1] SRI Int, Biopharmaceut Dev Div, Menlo Park, CA 94025 USA
[2] Rice Univ, George R Brown Sch Engn, Houston, TX 77251 USA
关键词
D O I
10.1021/es990436i
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
TNT transformation processes in sediment-free, "natural", aquatic phytoremediation systems of Myriophyllum aquaticum were investigated with specific interest in oxidation products. Extraction procedures combining liquid-liquid extractions and solid-phase extractions were developed for the isolation of the mostly acidic, oxidized TNT metabolites. Six compounds unique from the reduction products of TNT were isolated and characterized by UV-vis, H-1, and C-13 NMR spectroscopy, by mass spectroscopy, and by chemical synthesis where feasible. These compounds include 2-amino-4,6-dinitrobenzoic acid, 2,4-dinitro-6-hydroxy-benzyl alcohol, 2-N-acetoxyamino-4,6-dinitrobenzaldehyde, 2,4-dinitro-6-hydroxytoluene, and two binuclear metabolites unique from the customary azoxytetranitro-toluenes. The monoaryl compounds show clear evidence of oxidative transformations, methyl oxidation and/or aromatic hydroxylation. It is possible that oxidative transformation(s) preceded nitro reduction since studies on exposure of M. aquaticum to either 2-amino-4,6-dinitrotoluene or 4-amino-2,6-dinitrotoluene did not yield any of the oxidation products identified here. The accumulation of oxidation products was significant: 2-amino-4,6-dinitrobenzoic acid, 4.4%; 2,4-dinitro-6-hydroxy-benzyl alcohol, 8.1%; 2-N-acetoxyamino-4,6-dinitrobenzaldehyde, 7.8%; and, 2,4-dinitro-6-hydroxytoluene, 15.6%. The binuclear metabolites accounted for an estimated 5.6%. This study is the first direct evidence for oxidative transformations in aquatic phytoremediation systems.
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页码:3354 / 3361
页数:8
相关论文
共 26 条
[1]   Screening of aquatic and wetland plant species for phytoremediation of explosives-contaminated groundwater from the Iowa Army Ammunition Plant [J].
Best, EPH ;
Zappi, ME ;
Fredrickson, HL ;
Sprecher, SL ;
Larson, SL ;
Ochman, M .
BIOREMEDIATION OF SURFACE AND SUBSURFACE CONTAMINATION, 1997, 829 :179-194
[2]   Confirmation of conjugation processes during TNT metabolism by axenic plant roots [J].
Bhadra, R ;
Wayment, DG ;
Hughes, JB ;
Shanks, JV .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1999, 33 (03) :446-452
[3]   PEANUT UPTAKE AND METABOLISM OF [OXADIAZON-C-14 FROM SOIL [J].
BINGHAM, SW ;
SHAVER, RL ;
GUYTON, CL .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1980, 28 (04) :735-740
[4]  
COLE D, 1983, PROGR PESTICIDE BIOC, V3, P199
[5]   DETOXIFICATION AND ACTIVATION OF AGROCHEMICALS IN PLANTS [J].
COLE, DJ .
PESTICIDE SCIENCE, 1994, 42 (03) :209-222
[6]  
COLEMAN JOD, 1997, TRENDS PLANT SCI, V2, P1144
[7]   C-13 SUBSTITUENT EFFECTS IN MONOSUBSTITUTED BENZENES [J].
EWING, DF .
ORGANIC MAGNETIC RESONANCE, 1979, 12 (09) :499-524
[8]  
HATZIOS KK, 1982, METABOLISM HERBICIDE, P15
[9]  
HATZIOS KK, 1991, ENV CHEM HERBICIDES, V2, P141
[10]   Reduction of 2,4,6-trinitrotoluene by Clostridium acetobutylicum through hydroxylamino-nitrotoluene intermediates [J].
Hughes, JB ;
Wang, CY ;
Bhadra, R ;
Richardson, A ;
Bennett, GN ;
Rudolph, FB .
ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY, 1998, 17 (03) :343-348