Article ID Journal Published Year Pages File Type
5846432 Toxicology and Applied Pharmacology 2013 7 Pages PDF
Abstract

•We exposed male mice to low-level trichloroethylene from postnatal days 1 through 42.•This exposure altered redox potential and increased oxidative stress in cerebellum.•This exposure altered metabolites important in cellular methylation in cerebellum.•This exposure promoted DNA hypomethylation in cerebellum.•This exposure enhanced locomotor activity and exploratory behavior.

Previous studies demonstrated that low-level postnatal and early life exposure to the environmental contaminant, trichloroethylene (TCE), in the drinking water of MRL +/+ mice altered glutathione redox homeostasis and increased biomarkers of oxidative stress indicating a more oxidized state. Plasma metabolites along the interrelated transmethylation pathway were also altered indicating impaired methylation capacity. Here we extend these findings to further characterize the impact of TCE exposure in mice exposed to water only or two doses of TCE in the drinking water (0, 2, and 28 mg/kg/day) postnatally from birth until 6 weeks of age on redox homeostasis and biomarkers of oxidative stress in the cerebellum. In addition, pathway intermediates involved in methyl metabolism and global DNA methylation patterns were examined in cerebellar tissue. Because the cerebellum is functionally important for coordinating motor activity, including exploratory and social approach behaviors, these parameters were evaluated in the present study. Mice exposed to 28 mg/kg/day TCE exhibited increased locomotor activity over time as compared with control mice. In the novel object exploration test, these mice were more likely to enter the zone with the novel object as compared to control mice. Similar results were obtained in a second test when an unfamiliar mouse was introduced into the testing arena. The results show for the first time that postnatal exposure to TCE causes key metabolic changes in the cerebellum that may contribute to global DNA methylation deficits and behavioral alterations in TCE-exposed mice.

Related Topics
Life Sciences Environmental Science Health, Toxicology and Mutagenesis
Authors
, , , , , ,