![]() |
|
|
Vol. 28, Issue 10, 1231-1237, October 2000
Research & Development Headquarters, Hokuriku Seiyaku Co.,
Katsuyama, Fukui, Japan
The goals of the present study were to identify the enzyme
responsible for metabolism of itopride hydrochloride (itopride) and to
evaluate the likelihood of drug interaction involving itopride. In
human liver microsomes, the involvement of flavin-containing monooxygenase in N-oxygenation, the major metabolic
pathway of itopride, was indicated by the following results: inhibition
by methimazole and thiourea, heat inactivation, and protection against heat inactivation by NADPH. When the effects of ketoconazole on the
metabolism of itopride, cisapride, and mosapride citrate (mosapride) were examined using human liver microsomes, ketoconazole strongly inhibited the formation of the primary metabolites of cisapride and
mosapride, but not itopride. Other cytochrome P450 (CYP) 3A4 inhibitors, cimetidine, erythromycin, and clarithromycin, also inhibited the metabolism of cisapride and mosapride. In an in vivo
study, itopride (30 mg/kg), cisapride (1.5 mg/kg), or mosapride (3 mg/kg) was orally administered to male rats with or without oral
pretreatment with ketoconazole (120 mg/kg) twice daily for 2 days. The
ketoconazole pretreatment significantly increased the area under the
serum concentration curve and the maximum serum concentration of
cisapride and mosapride but had no significant effect on the
pharmacokinetics of itopride. In addition, itopride did not inhibit
five specific CYP-mediated reactions of human liver microsomes. These
results suggest that itopride is unlikely to alter the pharmacokinetics
of other concomitantly administered drugs.
This article has been cited by other articles:
![]() |
S. B. Koukouritaki, M. T. Poch, M. C. Henderson, L. K. Siddens, S. K. Krueger, J. E. VanDyke, D. E. Williams, N. M. Pajewski, T. Wang, and R. N. Hines Identification and Functional Analysis of Common Human Flavin-Containing Monooxygenase 3 Genetic Variants J. Pharmacol. Exp. Ther., January 1, 2007; 320(1): 266 - 273. [Abstract] [Full Text] [PDF] |
||||
![]() |
B. Furnes and D. Schlenk EXTRAHEPATIC METABOLISM OF CARBAMATE AND ORGANOPHOSPHATE THIOETHER COMPOUNDS BY THE FLAVIN-CONTAINING MONOOXYGENASE AND CYTOCHROME P450 SYSTEMS Drug Metab. Dispos., February 1, 2005; 33(2): 214 - 218. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. N. Hines, Z. Luo, K. A. Hopp, E. T. Cabacungan, S. B. Koukouritaki, and D. G. McCarver Genetic Variability at the Human FMO1 Locus: Significance of a Basal Promoter Yin Yang 1 Element Polymorphism (FMO1*6) J. Pharmacol. Exp. Ther., September 1, 2003; 306(3): 1210 - 1218. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. R. Cashman and J. Zhang Interindividual Differences of Human Flavin-Containing Monooxygenase 3: Genetic Polymorphisms and Functional Variation Drug Metab. Dispos., October 1, 2002; 30(10): 1043 - 1052. [Abstract] [Full Text] [PDF] |
||||