Literature DB >> 9010585

The role of CYP2E1 and 2B1 in metabolic activation of benzene derivatives.

I Gut1, V Nedelcheva, P Soucek, P Stopka, P Vodicka, H V Gelboin, M Ingelman-Sundberg.   

Abstract

CYP2B1 and 2E1 oxidized toluene, aniline and monochlorobenzene (MCB) to water-soluble metabolites and to products covalently binding to microsomal proteins from male Wistar rats at high efficiency. Oxidation of benzene to covalently binding metabolites was catalysed by CYP2B1 and 2E1 more effectively than the formation of water-soluble metabolites, especially at low benzene levels. Thus, the formation of covalently binding products was inversely related but formation of soluble metabolites was proportional to benzene concentration. 1,4-Benzoquinone was responsible for the majority of covalent binding to microsomal proteins, being suppressed by ascorbate; 1,4-semiquinone was not important, since alpha-tocopherol did not inhibit the covalent binding and ESR showed its rapid decay, if NADPH was available. Specific antibodies and inhibitors confirmed the role of CYP2B1 and 2E1 induction. Covalent binding of benzene to DNA was largely due to benzene oxide; approximately 50% was due to N-7 guanine adduct. CYP2E1 oxidizing benzene via phenol to 1,4-hydroquinone appeared to mediate its further oxidation to 1,4-benzoquinone, which also occurred spontaneously, but was reversed in a reducing environment of microsomes with NADPH. Production of OH radicals in microsomes with NADPH was greatly stimulated by HQ and less by BQ, especially in CYP2E1 induced microsomes, although the quinones themselves failed to produce OH radicals. The quinones could act by simulation of the CYP futile cycle. Therefore, CYP2B1 and 2E1 in rats appeared essential for metabolic activation of benzene derivatives to potentially genotoxic products; BQ dominated the covalent binding of benzene to proteins, whereas DNA adducts were largely due to benzene oxide.

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Year:  1996        PMID: 9010585     DOI: 10.1007/s002040050357

Source DB:  PubMed          Journal:  Arch Toxicol        ISSN: 0340-5761            Impact factor:   5.153


  6 in total

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Authors:  Liping Chen; Ping Guo; Haiyan Zhang; Wenxue Li; Chen Gao; Zhenlie Huang; Junling Fan; Yuling Zhang; Xue Li; Xiaoling Liu; Fangping Wang; Shan Wang; Qingye Li; Zhini He; Huiyao Li; Shen Chen; Xiaonen Wu; Lizhu Ye; Qiong Li; Huanwen Tang; Qing Wang; Guanghui Dong; Yongmei Xiao; Wen Chen; Daochuan Li
Journal:  J Biol Chem       Date:  2018-12-19       Impact factor: 5.157

2.  Benzene Exposure Induces Insulin Resistance in Mice.

Authors:  Wesley T Abplanalp; Nalinie S Wickramasinghe; Srinivas D Sithu; Daniel J Conklin; Zhengzhi Xie; Aruni Bhatnagar; Sanjay Srivastava; Timothy E O'Toole
Journal:  Toxicol Sci       Date:  2019-02-01       Impact factor: 4.849

3.  A mechanistic modeling framework for predicting metabolic interactions in complex mixtures.

Authors:  Shu Cheng; Frederic Y Bois
Journal:  Environ Health Perspect       Date:  2011-08-11       Impact factor: 9.031

4.  Time Dependent Gene Expression Changes in the Liver of Mice Treated with Benzene.

Authors:  Han-Jin Park; Jung Hwa Oh; Seokjoo Yoon; S V S Rana
Journal:  Biomark Insights       Date:  2008-03-28

5.  Mechanisms of benzene-induced hematotoxicity and leukemogenicity: cDNA microarray analyses using mouse bone marrow tissue.

Authors:  Byung-Il Yoon; Guang-Xun Li; Kunio Kitada; Yasushi Kawasaki; Katsuhide Igarashi; Yukio Kodama; Tomoaki Inoue; Kazuko Kobayashi; Jun Kanno; Dae-Yong Kim; Tohru Inoue; Yoko Hirabayashi
Journal:  Environ Health Perspect       Date:  2003-08       Impact factor: 9.031

6.  Comparison of the oxidation of carcinogenic aristolochic acid I and II by microsomal cytochromes P450 in vitro: experimental and theoretical approaches.

Authors:  Václav Martínek; František Bárta; Petr Hodek; Eva Frei; Heinz H Schmeiser; Volker M Arlt; Marie Stiborová
Journal:  Monatsh Chem       Date:  2017-07-26       Impact factor: 1.451

  6 in total

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