PubMed Health⌕ Search

Biomedical subjects

M J De Vito

Publications and source records attributed to M J De Vito.

3 recordsLinked to original sources

Comparative ability of various PCBs, PCDFs, and TCDD to induce cytochrome P450 1A1 and 1A2 activity following 4 weeks of treatment.

Toxic equivalency factors (TEFs) have been proposed for dibenzo-p-dioxins, dibenzofurans, and polyhalogenated biphenyls. The proposed toxic equivalency factors (TEFs), which are presently being evaluated in our laboratory, are currently used to estimate the potential health risk associated with exposure to complex mixtures containing these chemicals. In preliminary studies, equally potent doses, based on the published TEFs and relative enzyme-inducing potency, of 2,3,7,8-tetrachloro-dibenzo-p-dioxin (TCDD), 2,3,7,8-tetrachlorodibenzofuran, 1,2,3,7,8-pentachlorodibenzofuran, 1,2,3,4,6,7,8,9-octachloro-dibenzofuran, 3,4,3',4'-tetrachlorobiphenyl, 2,3,4,3',4'-pentachlorobiphenyl, 3,4,5,3',4'-pentachlorobiphenyl, 2,3,4,3',4',5'-hexachlorobiphenyl, 2,3,4,5,3',4'-hexachlorobiphenyl, and 3,4,5,3',4',5'-hexachlorobiphenyl were administered to female B6C3F1 mice 5 days a week over a 4-week period. Hepatic, skin, and lung cytochrome P450 1A1 and hepatic 1A2 activities were determined for all chemicals tested and compared to those from TCDD-treated mice. These initial studies indicate that the present TEFs do not reliably predict induction potency for many of the chemicals. Furthermore, our data suggest that the relative inductive potency of these chemicals may be tissue specific and that estimates of TEFs based on hepatic ethoxyresorufin O-de-ethylase activity may not accurately reflect the potency of these chemicals in nonhepatic tissue. The TEFs proposed for the "dioxin-like" polychlorinated biphenyls (PCBs) overestimate the potency of these compounds by factors of 10-1000. The present study indicates that more experimental data are required before TEFs for PCBs should be used in regulatory decision making.

Animals↗

Functional consequences following methamphetamine-induced neuronal damage.

The functional consequences following methamphetamine-induced neuronal damage were evaluated under several different conditions known to affect the magnitude of the lesion. It was found that methamphetamine (6.25 mg/kg administered SC, four times at 2-h intervals) caused long-lasting depletions of striatal dopamine and serotonin and that pretreatment with the antioxidant, ascorbic acid (100 mg/kg), attenuated these depletions, whereas pretreatment with the superoxide dismutase inhibitor diethyldithiocarbamate (200 mg/kg) exacerbated these depletions. The dopamine depletions resulting from the repeated administration of methamphetamine under these various conditions did not result in any alteration in the consumption of a sweetened-condensed milk solution under baseline conditions. However, when these lesioned animals were challenged with acutely administered methamphetamine, it was observed that there was an altered sensitivity to the milk intake decreasing effects of this compound. That is, the degree to which the acutely administered methamphetamine reduced the intake of sweetened-condensed milk was highly correlated with the magnitude of the methamphetamine-induced dopamine and serotonin depletions. These observations support the hypothesis that methamphetamine-induced neuronal damage is mediated by free radical formation and indicate that behavioral measures may be employed to assess neuronal damage.

Animals↗

Methamphetamine-induced neuronal damage: a possible role for free radicals.

The hypothesis that methamphetamine-induced neuronal damage is mediated by the production of free radicals was evaluated by pretreating rats with either antioxidants or a superoxide dismutase (SOD) inhibitor. It was found that methamphetamine (dose range 6.25-25.0 mg/kg) caused long-lasting depletions of dopamine and serotonin in the striatum and that pretreatment with the antioxidants, ascorbic acid (10-100 mg/kg), ethanol (1 g/kg), mannitol (2 g/kg), or vitamin E (2 g/kg), attenuated these depletions, whereas pretreatment with the superoxide dismutase inhibitor diethyldithiocarbamate (200-400 mg/kg) exacerbated the depletions. The alteration of this effect by four different antioxidants, as well as an inhibitor of superoxidase dismutase, indicated that oxygen-free radicals may have a role in the methamphetamine-induced neurotoxicity.

Animals↗