Astaxanthin can alter CYP1A-dependent activities via two different mechanisms: Induction of protein expression and inhibition of NADPH P450 reductase dependent electron transfer

Faculty Veterinary Medicine Year: 2011
Type of Publication: Article Pages: 1285-1291
Authors: DOI: 10.1016/j.fct.2011.03.009
Journal: FOOD AND CHEMICAL TOXICOLOGY PERGAMON-ELSEVIER SCIENCE LTD Volume: 49
Research Area: Food Science \& Technology; Toxicology ISSN ISI:000291514800014
Keywords : Astaxanthin, Cytochrome P450 1A, Conjugating enzyme, Metabolic activation, Benzo[a]pyrene, NADPH P450 reductase    
Abstract:
Astaxanthin (Ax), a xanthophyll carotenoid, is reported to induce cytochrome P450 (CYP) 1A-dependent activity. CYP1A is one of the most important enzymes participating in phase! metabolism for chemicals, and it can activate various mutagens. To investigate the effect of Ax on the metabolic activation of a typical promutagen, benzo{[}a]pyrene by CYP1A, we orally administrated Ax-containing oil (100 mg Ax/kg body weight/day for 3 days) to male Wistar rats. In the treated rat liver, expression of CYP1A1 mRNA, protein, and its activity were significantly increased (5.5-, 8.5-, and 2.5-fold, respectively). In contrast, the activities of phase II enzymes (glutathione S-transferase and glucuronosyl-transferase) were not modulated by Ax-containing oil. As a consequence, the mutagenicity of benzo{[}a]pyrene was more enhanced in Ax-treated rats, compared with controls in the Ames assay. On the other hand, NADPH P450 reductase activity was decreased in liver microsomes from the treated group. This result suggests the possibility that Ax inhibits the electron supply necessary for CYP catalytic activities and decreases CYP1A activity indirectly. In conclusion, Ax-containing oil intake can alter CYP1A-dependent activities through two different mechanisms: (1) induction of CYP1A1 mRNA, protein expression, and activity; and (2) inhibition of the electron supply for the enzyme. (C) 2011 Elsevier Ltd. All rights reserved.
   
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