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PMID: 16432637 Published · ppublish English Journal Article

Association of VKORC1 and CYP2C9 polymorphisms with warfarin dose requirements in Japanese patients.

Journal of human genetics ·Vol. 51 ·No. 3 ·2006-00-00 ·Pages 249-253

Mushiroda T, Ohnishi Y, Saito S, Takahashi A, Kikuchi Y, Saito S, Shimomura H, Wanibuchi Y, Suzuki T, Kamatani N, Nakamura Y

Abstract

Warfarin is the most commonly used oral anticoagulant for treatment of thromboembolism, but adjustment of the dose appropriate to each patient is not so easy because of the large inter-individual variation in dose requirement. We analyzed single nucleotide polymorphism (SNP) genotypes of the VKORC1 and CYP2C9 genes using DNA from 828 Japanese patients treated with warfarin, and investigated association between SNP genotype and warfarin-maintenance dose. Five SNPs in VKORC1, 5' flanking-1413A > G, intron 1-136T > C, intron 2+124C > G, intron 2+837T > C and exon 3 343G > A, were in absolute linkage disequilibrium, and showed a significant association with daily warfarin dose of these patients. The median warfarin dose of patients with homozygosity for the minor allele was 4.0 mg/day, which is significantly higher than those heterozygous for the minor allele (3.5 mg/day) or those homozygous for the major allele (2.5 mg/day; P = 5.1 x 10(-11) in the case of intron 1-136T > C SNP). We then genotyped the CYP2C9 gene for the Japanese common genetic variant, CYP2C9*3 and, based on the genotype of these two genes, classified patients into three categories, which we call "warfarin-responsive index." The median warfarin daily dose varied significantly in this classification according to the warfarin-responsive index (2.0 mg/day for index 0 group, 2.5 mg/day for index 1 group, and 3.5 mg/day for index 2 group; P = 4.4 x 10(-13)). Thus, analysis of the combination of VKORC1 and CYP2C9 genotypes should identify warfarin-sensitive patients who require a lower dose of drug, allowing personalized warfarin treatment.

MeSH Terms
Anticoagulants/administration & dosage Aryl Hydrocarbon Hydroxylases/genetics Cytochrome P-450 CYP2C9 Dose-Response Relationship, Drug Humans Japan Linkage Disequilibrium Mixed Function Oxygenases/genetics Pharmacogenetics Polymorphism, Single Nucleotide Thromboembolism/prevention & control Vitamin K Epoxide Reductases Warfarin/administration & dosage
Chemicals
Anticoagulants Warfarin Mixed Function Oxygenases CYP2C9 protein, human Cytochrome P-450 CYP2C9 Aryl Hydrocarbon Hydroxylases VKORC1 protein, human Vitamin K Epoxide Reductases
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Mushiroda Taisei
Laboratory for Pharmacogenetics, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan.
Ohnishi Yozo
Laboratory of Molecular Medicine, Human Genome Center, Institute of Medical Science, University of Tokyo, 4-6-1 Shirokanedai, Minato-ku, Tokyo 108-8639, Japan.
Saito Susumu
Laboratory for SNP Analysis, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan.
Takahashi Atsushi
Laboratory of Statistical Analysis, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan.
Kikuchi Yuka
Laboratory for Pharmacogenetics, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan.
Saito Shigeru
Tokushukai Hospital Group, Tokyo, Japan.
Shimomura Hideki
Tokushukai Hospital Group, Tokyo, Japan.
Wanibuchi Yasuhiko
Tokushukai Hospital Group, Tokyo, Japan.
Suzuki Takao
Tokushukai Hospital Group, Tokyo, Japan.
Kamatani Naoyuki
Laboratory of Statistical Analysis, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan.
Nakamura Yusuke
Laboratory for Pharmacogenetics, SNP Research Center, The Institute of Physical and Chemical Research (RIKEN), Tokyo, Japan. yusuke@ims.u-tokyo.ac.jp. | Laboratory of Molecular Medicine, Human Genome Center, Institute of Medical Science, University of Tokyo, 4-6-1 Shirokanedai, Minato-ku, Tokyo 108-8639, Japan. yusuke@ims.u-tokyo.ac.jp.
References (20)
20 references, click to expand
  1. Novel CYP2C9 genetic variants in Asian subjects and their influence on maintenance warfarin dose.
    Clin Pharmacol Ther. 2004 Sep;76(3):210-9 PMID: 15371982
  2. Genetic polymorphism of cytochrome P450s, CYP2C19, and CYP2C9 in a Japanese population.
    Ther Drug Monit. 1998 Jun;20(3):243-7 PMID: 9631918
  3. Catalog of 320 single nucleotide polymorphisms (SNPs) in 20 quinone oxidoreductase and sulfotransferase genes.
    J Hum Genet. 2001;46(4):225-40 PMID: 11322664
  4. Translation of pharmacogenomics and pharmacogenetics: a regulatory perspective.
    Nat Rev Drug Discov. 2004 Sep;3(9):763-9 PMID: 15340386
  5. Identification of the gene for vitamin K epoxide reductase.
    Nature. 2004 Feb 5;427(6974):541-4 PMID: 14765195
  6. Population differences in S-warfarin metabolism between CYP2C9 genotype-matched Caucasian and Japanese patients.
    Clin Pharmacol Ther. 2003 Mar;73(3):253-63 PMID: 12621390
  7. Pharmacokinetics and pharmacodynamics of the enantiomers of warfarin in man.
    Clin Pharmacol Ther. 1974 Apr;15(4):424-30 PMID: 4821443
  8. A novel functional VKORC1 promoter polymorphism is associated with inter-individual and inter-ethnic differences in warfarin sensitivity.
    Hum Mol Genet. 2005 Jul 1;14(13):1745-51 PMID: 15888487
  9. Hydroxylation of warfarin by human cDNA-expressed cytochrome P-450: a role for P-4502C9 in the etiology of (S)-warfarin-drug interactions.
    Chem Res Toxicol. 1992 Jan-Feb;5(1):54-9 PMID: 1581537
  10. Clinical consequences of cytochrome P450 2C9 polymorphisms.
    Clin Pharmacol Ther. 2005 Jan;77(1):1-16 PMID: 15637526
  11. Rapid reverse transcription-PCR detection of hepatitis C virus RNA in serum by using the TaqMan fluorogenic detection system.
    J Clin Microbiol. 1996 Dec;34(12):2933-6 PMID: 8940425
  12. Cytochrome P450 2C9 polymorphisms: a comprehensive review of the in-vitro and human data.
    Pharmacogenetics. 2002 Apr;12(3):251-63 PMID: 11927841
  13. Common VKORC1 and GGCX polymorphisms associated with warfarin dose.
    Pharmacogenomics J. 2005;5(4):262-70 PMID: 15883587
  14. The impact of CYP2C9 and VKORC1 genetic polymorphism and patient characteristics upon warfarin dose requirements: proposal for a new dosing regimen.
    Blood. 2005 Oct 1;106(7):2329-33 PMID: 15947090
  15. Anticoagulant therapy in Japanese patients with mechanical mitral valves.
    Circ J. 2002 Jul;66(7):668-70 PMID: 12135136
  16. A polymorphism in the VKORC1 gene is associated with an interindividual variability in the dose-anticoagulant effect of warfarin.
    Blood. 2005 Jan 15;105(2):645-9 PMID: 15358623
  17. A high-throughput SNP typing system for genome-wide association studies.
    J Hum Genet. 2001;46(8):471-7 PMID: 11501945
  18. Effect of VKORC1 haplotypes on transcriptional regulation and warfarin dose.
    N Engl J Med. 2005 Jun 2;352(22):2285-93 PMID: 15930419
  19. Pharmacodynamic resistance to warfarin associated with a Val66Met substitution in vitamin K epoxide reductase complex subunit 1.
    Thromb Haemost. 2005 Jan;93(1):23-6 PMID: 15630486
  20. Mutations in VKORC1 cause warfarin resistance and multiple coagulation factor deficiency type 2.
    Nature. 2004 Feb 5;427(6974):537-41 PMID: 14765194
Article Info
Journal
Journal of human genetics
Abbr.
J Hum Genet
ISSN
1434-5161
Published
2006-00-00
Epub
2006-00-24
Pages
249-253
Language
English
Region
England
NLM ID
9808008
Subset
IM
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