Literature DB >> 7473140

Variability in human cytochrome P450 paclitaxel metabolism.

D S Sonnichsen1, Q Liu, E G Schuetz, J D Schuetz, A Pappo, M V Relling.   

Abstract

Formation of 6 alpha-hydroxypaclitaxel has been described as the primary biotransformation pathway for paclitaxel in vitro and in vivo, with additional formation of two other "minor" metabolites. Using a large group (n = 49) of human liver microsomes, and P450s heterologously expressed in cell lines, our aims were to elucidate the P450s responsible for and investigate variability in paclitaxel metabolite formation. Four metabolites of paclitaxel (6 alpha-hydroxypaclitaxel, metabolites B, C and A) were formed in vitro, via CYP2C8, 3A4, 3A4 and both 2C8 and 3A4, respectively. Although 6 alpha-hydroxypaclitaxel was predominant in the majority of livers, metabolites B and C (formed by CYP3A4) were predominant in 11/49 and 2/49 livers, respectively. Predominance of metabolite B over 6 alpha-hydroxypaclitaxel was more likely in liver microsomes from donors known to be exposed to phenobarbital (P = .009), and tended to be more likely in diseased vs. normal livers (P = .047). Formation rates for 6 alpha-hydroxypaclitaxel, A, B, and C were lower in diseased liver vs. normal liver (P < .001). Rates of formation of metabolites B and C were highly correlated with each other (r2 = .91; P < .001) and with midazolam 4-hydroxylation (r2 = .87 &amp; 0.86, respectively; P < .001). Inhibitor experiments suggest that typical CYP3A substrates/inhibitors (e.g., cyclosporin, epipodophyllotoxins) may significantly interact with paclitaxel in vivo. In a single patient in whom plasma samples were measured on two occasions, metabolite A (the dihydroxylate) was predominant, and systemic clearance of paclitaxel was lower in a course administered 1 day vs. 6 wk after a course of fluconazole therapy. We report that 6 alpha-hydroxypaclitaxel, formed via CYP2C8, is not the predominant paclitaxel metabolite in all individuals, and that CYP3A4 catalytic activity is important to overall paclitaxel metabolism in humans.

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Year:  1995        PMID: 7473140

Source DB:  PubMed          Journal:  J Pharmacol Exp Ther        ISSN: 0022-3565            Impact factor:   4.030


  39 in total

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2.  Inhibitory Effects of Selected Antituberculosis Drugs on Common Human Hepatic Cytochrome P450 and UDP-glucuronosyltransferase Enzymes.

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3.  Coadministration of gemfibrozil and itraconazole has only a minor effect on the pharmacokinetics of the CYP2C9 and CYP3A4 substrate nateglinide.

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4.  Cyclosporin A aerosol improves the anticancer effect of paclitaxel aerosol in mice.

Authors:  Vernon Knight; N V Koshkina; E Golunski; L E Roberts; B E Gilbert
Journal:  Trans Am Clin Climatol Assoc       Date:  2004

5.  A phase I pharmacokinetic study of the P-glycoprotein inhibitor, ONT-093, in combination with paclitaxel in patients with advanced cancer.

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Review 6.  Interactions between antiretrovirals and antineoplastic drug therapy.

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7.  Metabolomics Analysis of Hormone-Responsive and Triple-Negative Breast Cancer Cell Responses to Paclitaxel Identify Key Metabolic Differences.

Authors:  Delisha A Stewart; Jason H Winnike; Susan L McRitchie; Robert F Clark; Wimal W Pathmasiri; Susan J Sumner
Journal:  J Proteome Res       Date:  2016-08-03       Impact factor: 4.466

8.  CYP2C8 and CYP3A4 are the principal enzymes involved in the human in vitro biotransformation of the insulin secretagogue repaglinide.

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Journal:  Br J Clin Pharmacol       Date:  2003-09       Impact factor: 4.335

9.  Human liver microsomal metabolism of paclitaxel and drug interactions.

Authors:  P B Desai; J Z Duan; Y W Zhu; S Kouzi
Journal:  Eur J Drug Metab Pharmacokinet       Date:  1998 Jul-Sep       Impact factor: 2.441

10.  Phase I clinical and pharmacokinetic study of sorafenib in combination with carboplatin and paclitaxel in patients with advanced non-small cell lung cancer.

Authors:  Isamu Okamoto; Masaki Miyazaki; Ryotaro Morinaga; Hiroyasu Kaneda; Shinya Ueda; Yoshikazu Hasegawa; Taroh Satoh; Akira Kawada; Masahiro Fukuoka; Koichi Fukino; Takahiko Tanigawa; Kazuhiko Nakagawa
Journal:  Invest New Drugs       Date:  2009-09-18       Impact factor: 3.850

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