MECHANISM OF BIOACTIVATION AND COVALENT BINDING OF 2,4,6-TRINITROTOLUENE

被引:60
作者
LEUNG, KH
YAO, M
STEARNS, R
CHIU, SHL
机构
[1] Department of Drug Metabolism, Merck Research Laboratories, Rahway, NJ 07065
关键词
2,4,6-TRINITROTOLUENE; METABOLISM; COVALENT BINDING;
D O I
10.1016/0009-2797(94)03606-9
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Studies were undertaken to investigate the mechanism of bioactivation and covalent binding of TNT. Incubation of [C-14]TNT with rat liver microsomes in the presence of an NADPH generating system resulted in metabolism and covalent binding to microsomal proteins. Time-dependence studies showed that TNT was rapidly reduced to yield 4-hydroxylamino-2,6-dinitrotoluene (4HA), 4-amino-2,6-dinitrotoluene (4A) and 2-amino-4,6-dinitrotoluene (2A) as intermediates which were further metabolized to form 2,4-diamino-6-nitrotoluene (2,4DA) and 2,6-diamino-4-nitrotoluene (2,6DA). In contrast to the rapid disappearance of TNT, formation of covalent protein adducts increased with time, suggesting that the reactive intermediate was likely to be formed not directly from TNT but from proximal intermediates such as 4HA. The hypothesis that 4HA was more readily converted to the reactive intermediate than TNT was further supported by the increased levels of covalent adduct formation when [C-14]4HA was incubated directly with liver microsomes. Covalent binding of TNT and 4HA was dependent on oxygen concentration. Higher levels of covalent adducts were formed when TNT was incubated aerobically (up to 50% oxygen concentration) than under anaerobic conditions. Covalent binding of [C-14]4HA also increased with increasing oxygen concentrations. These results suggest that the reactive intermediate is likely to be an oxidized metabolite of 4HA, e.g. 4-nitroso-2,6-dinitrotoluene. Compounds containing a free sulfhydryl group (cysteine, N-acetylcysteine, GSH or 3,4-dichlorobenzenethiol) decreased the amount of covalent binding to various degrees, suggesting the involvement of the sulfhydryl group in adduct formation with TNT following bioactivation. Metabolic activation of TNT by liver microsomes required NADPH but not NADH as the cofactor. Incubation of [C-14]TNT with purified rat liver NADPH cytochrome P450 reductase under either aerobic or anaerobic conditions yielded exclusively 4HA. In contrast, 2A and 4A were formed following incubation of TNT with the reconstituted system containing cytochrome P450, NADPH cytochrome P450 reductase and dilauroyl phosphatidylcholine. These observations suggest that the initial reduction of the nitro group can be catalyzed by NADPH cytochrome P450 reductase alone but cytochrome P450 is needed in the reduction of the hydroxylamine to the amine.
引用
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页码:37 / 51
页数:15
相关论文
共 34 条
[1]  
Voegtin, Hooper, Johnson, Trinitrotoluene poisoning—Its nature, diagnosis and prevention, J. Ind. Hyg., 3, pp. 280-292, (1921)
[2]  
Snyder, von Oettingen, Clinical note suggestions and new instruments—A new test for the detection and the appraisal of exposure to trinitrotoluene, Journal of the American Medical Association, 123, pp. 202-203, (1942)
[3]  
Hathaway, Trinitrotoluene: a review of reported dose-related effects providing documentation for a workplace standard, J. Occup. Med., 19, pp. 341-345, (1977)
[4]  
Liu, Suen, Yang, He, Zheng, Zhang, Wu, Yang, Suen, Preliminary studies on the diagnosis of chronic liver damage caused by TNT, Hyg. Res., 17, pp. 7-11, (1988)
[5]  
Liu, Lu, Stearns, Chiu, In vivo covalent binding of [<sup>14</sup>C]trinitrotoluene to proteins in the rat, Chem. -Biol Interact., 82, pp. 1-19, (1992)
[6]  
Channon, Mills, Williams, The metabolism of 246-trinitrotoluene (TNT), Biochem J, 38, pp. 70-85, (1944)
[7]  
Lemberg, Callaghan, Metabolism of aromatic nitro compounds I Estimation of diazotisable amines in rat and human urine after intake of 246-trinitrotoluene, Australian Journal of Experimental Biology and Medical Science, 23, pp. 1-5, (1945)
[8]  
Lemberg, Callaghan, Metabolism of aromatic nitro compounds 2 Excretion of diazotisable amines in the urine after intake of TNT, Australian Journal of Experimental Biology and Medical Science, 23, pp. 6-12, (1945)
[9]  
Lemberg, Callaghan, Isolation of reduction products of 246-trinitrotoluene from the urine of rats and from human urine, Australian Journal of Experimental Biology and Medical Science, 23, pp. 13-20, (1945)
[10]  
Yinon, Hwang, Metabolic studies of explosives, determination of 2,4,6-trinitrotoluene and its metabolites in blood of rabbits by high performance liquid chromatography-mass spectrometry, J. Chromatogr., 375, pp. 154-158, (1986)