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Gamma-tocotrienol and Gamma-tocopherol Are Primarily Metabolized to Conjugated 2-(beta-carboxyethyl)-6-hydroxy-2,7,8-trimethylchroman and Sulfated Long-chain Carboxychromanols in Rats

Overview
Journal J Nutr
Publisher Elsevier
Date 2009 Mar 20
PMID 19297424
Citations 32
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Abstract

The metabolism of gamma-tocotrienol (gamma-TE) and gamma-tocopherol (gamma-T) was investigated in human A549 cells and in rats. Similar to gamma-T, A549 cells metabolized gamma-TE to sulfated 9'-, 11'-, and 13'-carboxychromanol and their unconjugated counterparts. After 72-h incubation with the cells, 90% of long-chain carboxychromanols in the culture media from gamma-TE, but <45% from gamma-T, were in the sulfated form. The formation of these metabolites was further investigated in rats gavaged by gamma-TE at 10 or 50 mg/kg, gamma-T at 10 mg/kg, or tocopherol-stripped corn oil in controls. Six hours after a single dosing, the supplemented rats had increased plasma concentrations of 13'-carboxychromanol and sulfated 9'-, 11'-, 13'-carboxychromanol, whereas none of these metabolites were detectable in the controls. Sulfated 11'-carboxychromanol was the most abundant long-chain metabolite in gamma-TE-supplemented rats. Sulfatase/glucuronidase hydrolysis revealed for the first time that >88% 2-(beta-carboxyethyl)-6-hydroxychroman (gamma-CEHC), the terminal beta-oxidation metabolite, was in the conjugated form in the plasma. In all groups, conjugated gamma-CEHC accounted for >75% of total metabolites, whereas free CEHC was a minor metabolite. At 10 mg/kg, the plasma concentrations of total metabolites from gamma-TE-supplemented rats were higher (P < 0.05) than those from gamma-T-fed rats. These results demonstrate that in rats, conjugation such as sulfation occurs parallel to beta-oxidation in the liver and is quantitatively important to vitamin E metabolism. Conjugated long-chain carboxychromanols may be novel excreted metabolites during supplementation. Our data also provide in vivo evidence that gamma-TE is more extensively metabolized than gamma-T.

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References
1.
Sontag T, Parker R . Influence of major structural features of tocopherols and tocotrienols on their omega-oxidation by tocopherol-omega-hydroxylase. J Lipid Res. 2007; 48(5):1090-8. DOI: 10.1194/jlr.M600514-JLR200. View

2.
Saito H, Kiyose C, Yoshimura H, Ueda T, Kondo K, Igarashi O . Gamma-tocotrienol, a vitamin E homolog, is a natriuretic hormone precursor. J Lipid Res. 2003; 44(8):1530-5. DOI: 10.1194/jlr.M300061-JLR200. View

3.
WECHTER W, Kantoci D, Murray Jr E, DAmico D, Jung M, Wang W . A new endogenous natriuretic factor: LLU-alpha. Proc Natl Acad Sci U S A. 1996; 93(12):6002-7. PMC: 39178. DOI: 10.1073/pnas.93.12.6002. View

4.
Brigelius-Flohe R, Traber M . Vitamin E: function and metabolism. FASEB J. 1999; 13(10):1145-55. View

5.
Strott C, Higashi Y . Cholesterol sulfate in human physiology: what's it all about?. J Lipid Res. 2003; 44(7):1268-78. DOI: 10.1194/jlr.R300005-JLR200. View