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Mechanisms of selenium methylation and toxicity in mice treated with selenocystine
T Hasegawa1, M Mihara, K Nakamuro
1Division of Environmental Health, Faculty of Pharmaceutical Sciences, Setsunan University, Osaka, Japan.
Abstract:
Mechanisms of selenium methylation and toxicity were investigated in the liver of ICR male mice treated with selenocystine. To elucidate the selenium methylation mechanism, animals received a single oral administration of selenocystine (Se-Cys; 5, 10, 20, 30, 40, or 50 mg/kg). In the liver, both accumulation of total selenium and production of trimethylselenonium (TMSe) as the end-product of methylation were increased by the dose of Se-Cys. A negative correlation was found between production of TMSe and level of S-adenosylmethionine (SAM) as methyl donor. The relationship between Se-Cys toxicity and selenium methylation was determined by giving mice repeated oral administration of Se-Cys (10 or 20 mg/kg) for 10 days. The animals exposed only to the high dose showed a significant rise of aspartate aminotransferase (AST) and alanine aminotransferase (ALT) activities in plasma. Urinary total selenium increased with Se-Cys dose. TMSe content in urine represented 85% of total selenium at the low dose and 25% at the high dose. The potential of Se-methylation and activity of methionine adenosyltransferase, the enzyme responsible for SAM synthesis, and the level of SAM in the liver were determined. The high dose resulted in inactivation of Se-methylation and decrease in SAM level due to the inhibition of methionine adenosyltransferase activity. To learn whether hepatic toxicity is induced by depressing selenium methylation ability, mice were injected intraperitoneally with periodate-oxidized adenosine (100 mumol/kg), a known potent inhibitor of the SAM-dependent methyltransferase, at 30 min before oral treatment of Se-Cys (10, 20, of 50 mg/kg). Liver toxicity induced by selenocystine was enhanced by inhibition of selenium methylation. These results suggest that TMSe was produced by SAM-dependent methyltransferases, which are identical with those involved in the methylation of inorganic selenium compounds such as selenite, in the liver of mice orally administered Se-Cys. Depression of selenium methylation ability resulting from inactivation of methionine adenosyltransferase and Se-methylation via enzymic reaction was also found in mice following repeated oral administration of a toxic dose of Se-Cys. The excess selenides accumulating during the depression of selenium methylation ability may be involved in the liver toxicity caused by Se-Cys.
Insights
Selenium methylation in mouse liver produces trimethylselenonium (TMSe), but high doses of selenocystine (Se-Cys) impair this process. Impaired selenium methylation and reduced S-adenosylmethionine (SAM) levels contribute to Se-Cys liver toxicity.
Area of Science:
- Biochemistry
- Toxicology
- Pharmacology
Background:
- Selenium is an essential trace element with complex biological roles.
- Selenium compounds can exhibit both beneficial and toxic effects depending on dose and chemical form.
- Understanding selenium metabolism, particularly methylation, is crucial for assessing its toxicity.
Purpose of the Study:
- To investigate the mechanisms of selenium methylation and toxicity in mouse liver following selenocystine administration.
- To elucidate the relationship between selenocystine dose, selenium methylation, and the production of trimethylselenonium (TMSe).
- To determine the role of S-adenosylmethionine (SAM) and methionine adenosyltransferase (MAT) in selenium methylation and toxicity.
Main Methods:
- Single and repeated oral administration of selenocystine (Se-Cys) to ICR male mice.
- Measurement of total selenium and TMSe in liver and urine.
- Assay of S-adenosylmethionine (SAM) levels and methionine adenosyltransferase (MAT) activity.
- Inhibition of SAM-dependent methyltransferases using periodate-oxidized adenosine.
Main Results:
- Se-Cys administration increased hepatic selenium accumulation and TMSe production in a dose-dependent manner.
- A negative correlation was observed between TMSe production and SAM levels.
- High-dose Se-Cys treatment led to decreased SAM levels, inhibited MAT activity, and impaired selenium methylation.
- Inhibition of selenium methylation exacerbated Se-Cys-induced liver toxicity (elevated AST and ALT).
- Urinary TMSe percentage decreased with increasing Se-Cys dose, indicating saturation or inhibition of methylation pathways.
Conclusions:
- TMSe is produced by SAM-dependent methyltransferases in mouse liver, similar to inorganic selenium methylation.
- Repeated exposure to toxic doses of Se-Cys inactivates methionine adenosyltransferase, reducing SAM levels and impairing selenium methylation.
- The accumulation of excess selenides due to impaired selenium methylation likely contributes to selenocystine-induced liver toxicity.