Literature DB >> 8048052

Species differences in urinary butadiene metabolites: comparisons of metabolite ratios between mice, rats, and humans.

W E Bechtold1, M R Strunk, I Y Chang, J B Ward, R F Henderson.   

Abstract

We have previously identified two metabolites, 1,2-dihydroxy-4-(N-acetylcysteinyl-S-)-butane (M-I) and 1-hydroxy-2-(N-acetylcysteinyl-S-)-3-butene (M-II) in the urine of mice, rats, hamsters, and monkeys exposed by inhalation to 8000 ppm [14C]butadiene. The sum of these two metabolites constituted between 50 and 90% of the total urinary [14C]butadiene equivalents. When comparing species, the ratios of excreted M-I relative to the total of M-I + M-II were linearly related to hepatic epoxide hydrolase activities, with mice displaying the lowest ratios and monkeys displaying the highest ratios. Because humans are known to have epoxide hydrolase activities more similar to those of monkeys than mice, we postulated that after inhalation of butadiene, humans would excrete predominantly M-I and little M-II. To address this hypothesis, we measured the two metabolites in the urine of workers occupationally exposed to butadiene. We initially developed an assay to measure the two metabolites in urine using techniques not dependent on radiolabeled compounds. The assay is based on isotope-dilution gas chromatography/mass spectroscopy. After addition of deuterated internal standards, the metabolites were isolated from urine samples by solid-phase extraction and selective precipitation. The metabolites were converted to volatile derivatives by trimethylsilylation prior to analysis. The assay is sensitive down to at least 100 ng/ml of both metabolites in urine. The assay was applied to urine samples of humans occupationally exposed to butadiene in a production plant. M-I, but not M-II, could be readily identified and quantitated in the urine samples at levels frequently greater than 1 microgram/ml, thus supporting our hypothesis. Employees who worked in production areas with historical atmospheric concentrations of 3-4 ppm butadiene could be distinguished as a group from those outside controls. Finally, mice and rats were exposed to 11.7 ppm butadiene for 4 hr, and the ratio of the two metabolites was measured. For mice, the ratios of M-I to M-I + M-II were similar to those reported previously following exposure to 8000 ppm. In contrast, for rats, M-I represented a higher proportion of the excreted metabolites at the lower exposure level. These results confirm earlier in vitro studies that suggested the predominant pathway for clearance of BDO in humans is by hydrolysis rather than direct conjugation with glutathione.

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Year:  1994        PMID: 8048052     DOI: 10.1006/taap.1994.1137

Source DB:  PubMed          Journal:  Toxicol Appl Pharmacol        ISSN: 0041-008X            Impact factor:   4.219


  17 in total

1.  Personal exposure to 1,3-butadiene in a petrochemical plant, assessed by use of diffusive samplers.

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2.  High throughput HPLC-ESI(-)-MS/MS methodology for mercapturic acid metabolites of 1,3-butadiene: Biomarkers of exposure and bioactivation.

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3.  Inhibitory potency of 4-carbon alkanes and alkenes toward CYP2E1 activity.

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4.  Urinary N7-(1-hydroxy-3-buten-2-yl) guanine adducts in humans: temporal stability and association with smoking.

Authors:  Caitlin C Jokipii Krueger; Guru Madugundu; Amanda Degner; Yesha Patel; Daniel O Stram; Timothy R Church; Natalia Tretyakova
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5.  Effects of 2-Phenethyl Isothiocyanate on Metabolism of 1,3-Butadiene in Smokers.

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Review 6.  Mercapturic acids revisited as biomarkers of exposure to reactive chemicals in occupational toxicology: a minireview.

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Journal:  Int Arch Occup Environ Health       Date:  2005-05-10       Impact factor: 3.015

7.  Genetic Determinants of 1,3-Butadiene Metabolism and Detoxification in Three Populations of Smokers with Different Risks of Lung Cancer.

Authors:  Emily J Boldry; Yesha M Patel; Srikanth Kotapati; Amanda Esades; Sungshim L Park; Maarit Tiirikainen; Daniel O Stram; Loïc Le Marchand; Natalia Tretyakova
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8.  In vivo roles of conjugation with glutathione and O6-alkylguanine DNA-alkyltransferase in the mutagenicity of the bis-electrophiles 1,2-dibromoethane and 1,2,3,4-diepoxybutane in mice.

Authors:  Sung-Hee Cho; F Peter Guengerich
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9.  Formation of mono- and bis-Michael adducts by the reaction of nucleophilic amino acids with hydroxymethylvinyl ketone, a reactive metabolite of 1,3-butadiene.

Authors:  Nella Barshteyn; Adnan A Elfarra
Journal:  Chem Res Toxicol       Date:  2009-05       Impact factor: 3.739

10.  Effects of smoking cessation on eight urinary tobacco carcinogen and toxicant biomarkers.

Authors:  Steven G Carmella; Menglan Chen; Shaomei Han; Anna Briggs; Joni Jensen; Dorothy K Hatsukami; Stephen S Hecht
Journal:  Chem Res Toxicol       Date:  2009-04       Impact factor: 3.739

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