Literature DB >> 16527257

Catalytic roles of CYP2D6.10 and CYP2D6.36 enzymes in mexiletine metabolism: in vitro functional analysis of recombinant proteins expressed in Saccharomyces cerevisiae.

Nobumitsu Hanioka1, Yoshihito Okumura, Yoshiro Saito, Hiroyuki Hichiya, Akiko Soyama, Keita Saito, Kazuyuki Ueno, Jun-ichi Sawada, Shizuo Narimatsu.   

Abstract

Cytochrome P450 2D6 (CYP2D6) metabolizes approximately one-third of the medicines in current clinical use and exhibits genetic polymorphism with interindividual differences in metabolic activity. To precisely investigate the effect of CYP2D6*10B and CYP2D6*36 frequently found in Oriental populations on mexiletine metabolism in vitro, CYP2D6 proteins of wild-type (CYP2D6.1) and variants (CYP2D6.10 and CYP2D6.36) were heterologously expressed in yeast cells and their mexiletine p- and 2-methyl hydroxylation activities were determined. Both variant CYP2D6 enzymes showed a drastic reduction of CYP2D6 holo- and apoproteins compared with those of CYP2D6.1. Mexiletine p- and 2-methyl hydroxylation activities on the basis of the microsomal protein level at the single substrate concentration (100 microM) of variant CYP2D6s were less than 6% for CYP2D6.10 and 1% for CYP2D6.36 of those of CYP2D6.1. Kinetic analysis for mexiletine hydroxylation revealed that the affinity toward mexiletine of CYP2D6.10 and CYP2D6.36 was reduced by amino acid substitutions. The Vmax and Vmax/Km values of CYP2D6.10 on the basis of the microsomal protein level were reduced to less than 10% of those of CYP2D6.1, whereas the values on the basis of functional CYP2D6 level were comparable to those of CYP2D6.1. Although it was impossible to estimate the kinetic parameters for the mexiletine hydroxylation of CYP2D6.36, the metabolic ability toward mexiletine was considered to be poorer not only than that of CYP2D6.1 but also than that of CYP2D6.10. The same tendency was also observed in kinetic analysis for bufuralol 1''-hydroxylation as a representative CYP2D6 probe. These findings suggest that CYP2D6*36 has a more drastic impact on mexiletine metabolism than CYP2D6*10.

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Year:  2006        PMID: 16527257     DOI: 10.1016/j.bcp.2006.01.019

Source DB:  PubMed          Journal:  Biochem Pharmacol        ISSN: 0006-2952            Impact factor:   5.858


  3 in total

1.  Limited effects of frequent CYP2D6*36-*10 tandem duplication allele on in vivo dextromethorphan metabolism in a Japanese population.

Authors:  Kazuma Kiyotani; Makiko Shimizu; Toshio Kumai; Tetsuya Kamataki; Shinichi Kobayashi; Hiroshi Yamazaki
Journal:  Eur J Clin Pharmacol       Date:  2010-08-11       Impact factor: 2.953

2.  CYP2D7-2D6 hybrid tandems: identification of novel CYP2D6 duplication arrangements and implications for phenotype prediction.

Authors:  Andrea Gaedigk; Uwe Fuhr; Charlene Johnson; L Anick Bérard; Dianne Bradford; J Steven Leeder
Journal:  Pharmacogenomics       Date:  2010-01       Impact factor: 2.533

Review 3.  Ten Years' Experience with the CYP2D6 Activity Score: A Perspective on Future Investigations to Improve Clinical Predictions for Precision Therapeutics.

Authors:  Andrea Gaedigk; Jean C Dinh; Hyunyoung Jeong; Bhagwat Prasad; J Steven Leeder
Journal:  J Pers Med       Date:  2018-04-17
  3 in total

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