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Evaluation of Intracellular Location of Reactive Oxygen Species in Solea Senegalensis Spermatozoa
Published on: March 11, 2018
CYP2E1-catalyzed oxidation contributes to the sperm toxicity of 1-bromopropane in mice
C Edwin Garner1, C Sloan, S C J Sumner
1RTI International, Research Triangle Park, North Carolina 27709, USA. cegarner@rti.org
Abstract:
1-bromopropane (1-BrP) induces dose- and time-dependent reproductive organ toxicity and reduced sperm motility in rodents. The contribution of cytochrome P4502E1 (CYP2E1) to both 1-BrP metabolism and the induction of male reproductive toxicity was investigated using wild-type (WT) and Cyp2e1-/- mice. In gas uptake inhalation studies, the elimination half-life of [1,2,3-(13)C]-1-BrP was longer in Cyp2e1-/- mice relative to WT (3.2 vs. 1.3 h). Urinary metabolites were identified by 13C nuclear magnetic resonance. The mercapturic acid of 1-bromo-2-hydroxypropane (2OHBrP) was the major urinary metabolite in WT mice, and products of conjugation of 1-BrP with glutathione (GSH) were insignificant. The ratio of GSH conjugation to 2-hydroxylation increased 5-fold in Cyp2e1-/- mice relative to WT. After 1-BrP exposure, hepatic GSH was decreased by 76% in WT mice vs. 47% in Cyp2e1-/- mice. Despite a 170% increase in 1-BrP exposure in Cyp2e1-/- vs. WT mice, sperm motility in exposed Cyp2e1-/- mice did not change relative to unexposed matched controls. This suggests that metabolites produced through CYP2E1-mediated oxidation may be responsible for 1-BrP-induced sperm toxicity. Both 1-BrP and 2OHBrP inhibited the motility of sperm obtained from WT mice in vitro. However, only 2OHBrP reduced the motility of sperm obtained from Cyp2e1-/- mice in vitro, suggesting that conversion of parent compound to 2OHBrP within the spermatozoa may contribute, at least in part, to reduced motility. Overall, these data suggest that metabolism of 1-BrP is mediated in part by CYP2E1, and activation of 1BrP via this enzyme may contribute to the male reproductive toxicity of this chemical.
Insights
1-bromopropane (1-BrP) causes male reproductive toxicity. Cytochrome P4502E1 (CYP2E1) metabolism of 1-BrP is linked to this toxicity, as CYP2E1-deficient mice showed reduced toxicity and altered metabolite profiles.
Area of Science:
- Toxicology
- Metabolism
- Reproductive Biology
Background:
- 1-bromopropane (1-BrP) is a known reproductive toxicant.
- Cytochrome P4502E1 (CYP2E1) is involved in xenobiotic metabolism.
- The specific role of CYP2E1 in 1-BrP-induced male reproductive toxicity is not fully understood.
Purpose of the Study:
- To investigate the role of CYP2E1 in 1-BrP metabolism.
- To determine the contribution of CYP2E1 to 1-BrP-induced male reproductive toxicity.
- To identify key metabolites responsible for 1-BrP toxicity.
Main Methods:
- Comparison of 1-BrP metabolism and toxicity in wild-type (WT) and Cyp2e1-/- mice.
- Gas uptake inhalation studies with labeled 1-BrP.
- Urinary metabolite analysis using 13C nuclear magnetic resonance.
- In vitro sperm motility assays.
Main Results:
- 1-BrP elimination half-life was longer in Cyp2e1-/- mice.
- Major urinary metabolite in WT mice was 1-bromo-2-hydroxypropane (2OHBrP); GSH conjugation was minor.
- Cyp2e1-/- mice showed a 5-fold increase in GSH conjugation to 2-hydroxylation ratio.
- Hepatic glutathione (GSH) depletion was less severe in Cyp2e1-/- mice.
- Sperm motility was unaffected in exposed Cyp2e1-/- mice, unlike WT mice.
- In vitro, 2OHBrP inhibited sperm motility in both WT and Cyp2e1-/- mice.
Conclusions:
- CYP2E1 plays a significant role in 1-BrP metabolism and male reproductive toxicity.
- Metabolites formed via CYP2E1-mediated oxidation are likely responsible for 1-BrP's sperm toxicity.
- Conversion of 1-BrP to 2OHBrP contributes to reduced sperm motility.
