CYP3A4*22 and CYP3A5*3 are associated with increased levels of plasma simvastatin concentrations in the cholesterol and pharmacogenetics study cohort

被引:35
|
作者
Kitzmiller, Joseph P. [1 ]
Luzum, Jasmine A. [1 ]
Baldassarre, Damiano [3 ]
Krauss, Ronald M. [2 ]
Medina, Marisa W. [2 ]
机构
[1] Ohio State Univ, Ctr Pharmacogen, Coll Med, Columbus, OH 43210 USA
[2] Childrens Hosp Oakland, Res Inst, Oakland, CA 94609 USA
[3] Univ Milan, Dipartimento Sci Farmacol & Biomol, Milan, Italy
基金
美国国家卫生研究院;
关键词
CYP3A4; CYP3A5; metabolism; pharmacogenetics; simvastatin; KIDNEY-TRANSPLANT RECIPIENTS; HYDROXY ACID; POLYMORPHISM; STATINS; CYP3A5; PHARMACOKINETICS; METABOLISM; GENOTYPE;
D O I
10.1097/FPC.0000000000000079
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Objective Simvastatin is primarily metabolized by CYP3A4. A combined CYP3A4/5 genotype classification, combining the decrease-of-function CYP3A4*22 and the loss-of-function CYP3A5*3, has recently been reported. We aim to determine whether CYP3A4*22 and CYP3A5*3 alleles are associated with increased plasma concentrations of simvastatin lactone (SV) and simvastatin acid (SVA). This is the first report evaluating associations between in-vivo simvastatin concentrations and CYP3A4*22, alone or in a combined CYP3A4/5 genotype-defined classification. Participants and methods Genotypes and simvastatin concentrations were determined for 830 participants (555 Whites and 275 African-Americans) in the Cholesterol and Pharmacogenomics clinical trial with 40 mg/day simvastatin for 6 weeks. Concentrations were determined in 12-h postdose samples. Associations between simvastatin concentrations and CYP3A4*22 and CYP3A5*3 alleles were tested separately and in a combined CYP3A4/5 genotype-defined classification system. Results In Whites, CYP3A4*22 carriers (n = 42) had 14% higher SVA (P = 0.04) and 20% higher SV (P = 0.06) compared with noncarriers (n = 513). CYP3A5*3 allele status was not significantly associated with SV or SVA in Whites. In African-Americans, CYP3A4*22 carriers (n = 8) had 170% higher SV (P < 0.01) than noncarriers (n = 267), but no significant difference was detected for SVA. African-American CYP3A5 nonexpressors (n = 28) had 33% higher SV (P = 0.02) than CYP3A5 expressors (n = 247), but no significant difference was detected for SVA. For both races, SV appeared to decrease across the rank-ordered combined CYP3A4/5 genotype-defined groups (poor, intermediate, and extensive metabolizers); however, similar trends were not observed for SVA. Conclusion Genetic variation in CYP3A4 was associated with plasma simvastatin concentrations in self-reported Whites. Genetic variations in CYP3A4 and CYP3A5 were associated with plasma simvastatin concentrations in self-reported African-Americans. (C) 2014 Wolters Kluwer Health | Lippincott Williams & Wilkins.
引用
收藏
页码:486 / 491
页数:6
相关论文
共 50 条
  • [1] The relative role of CYP3A4 and CYP3A5 in eplerenone metabolism
    McGraw, Joseph
    Cherney, Mitchell
    Bichler, Katherine
    Gerhardt, Armin
    Nauman, Mirielle
    TOXICOLOGY LETTERS, 2019, 315 : 9 - 13
  • [2] Tacrolimus Elimination in Four Patients With a CYP3A5*3/*3 CYP3A4*22/*22 Genotype Combination
    Scheibner, Aileen
    Remmel, Rory
    Schladt, David
    Oetting, William S.
    Guan, Weihua
    Wu, Baolin
    Dorr, Casey
    Israni, Ajay
    Jacobson, Pamala A.
    PHARMACOTHERAPY, 2018, 38 (07): : E46 - E52
  • [3] Statin regulation of CYP3A4 and CYP3A5 expression
    Vieira Willrich, Maria Alice
    Hirata, Mario Hiroyuki
    Crespo Hirata, Rosario Dominguez
    PHARMACOGENOMICS, 2009, 10 (06) : 1017 - 1024
  • [4] Individual and Combined Associations of Genetic Variants in CYP3A4, CYP3A5, and SLCO1B1 With Simvastatin and Simvastatin Acid Plasma Concentrations
    Luzum, Jasmine A.
    Theusch, Elizabeth
    Taylor, Kent D.
    Wang, Ann
    Sadee, Wolfgang
    Binkley, Philip F.
    Krauss, Ronald M.
    Medina, Marisa W.
    Kitzmiller, Joseph P.
    JOURNAL OF CARDIOVASCULAR PHARMACOLOGY, 2015, 66 (01) : 80 - 85
  • [5] Pharmacogenetics of Carbamazepine: A Systematic Review on CYP3A4 and CYP3A5 Polymorphisms
    Riffi, Rachda
    Boughrara, Wefa
    Chentouf, Amina
    Ilias, Wassila
    Brahim, Narimene Malika Taieb
    Berrebbah, Amel Alioua
    Belhoucine, Fatma
    CNS & NEUROLOGICAL DISORDERS-DRUG TARGETS, 2024, 23 (12) : 1463 - 1473
  • [6] A New CYP3A5*3 and CYP3A4*22 Cluster Influencing Tacrolimus Target Concentrations: A Population Approach
    Andreu, Franc
    Colom, Helena
    Elens, Laure
    van Gelder, Teun
    van Schaik, Ronald H. N.
    Hesselink, Dennis A.
    Bestard, Oriol
    Torras, Joan
    Cruzado, Josep M.
    Grinyo, Josep M.
    Lloberas, Nuria
    CLINICAL PHARMACOKINETICS, 2017, 56 (08) : 963 - 975
  • [7] Screening of Genetic Polymorphisms of CYP3A4 and CYP3A5 Genes
    Leel, Jin Sol
    Cheong, Hyun Sub
    Kim, Lyoung Hyo
    Kixn, Ji On
    Seo, Doo Won
    Kim, Young Hoon
    Chung, Myeon Woo
    Han, Soon Young
    Shin, Hyoung Doo
    KOREAN JOURNAL OF PHYSIOLOGY & PHARMACOLOGY, 2013, 17 (06) : 479 - 484
  • [8] Composite CYP3A (CYP3A4 and CYP3A5) phenotypes and influence on tacrolimus dose adjusted concentrations in adult heart transplant recipients
    Liu, Michelle
    Hernandez, Savine
    Aquilante, Christina L.
    Deininger, Kimberly M.
    Lindenfeld, Joann
    Schlendorf, Kelly H.
    Van Driest, Sara L.
    PHARMACOGENOMICS JOURNAL, 2024, 24 (02)
  • [9] Metabolism of Quetiapine by CYP3A4 and CYP3A5 in Presence or Absence of Cytochrome B5
    Bakken, Gry Vibeke
    Rudberg, Ida
    Christensen, Hege
    Molden, Espen
    Refsum, Helge
    Hermann, Monica
    DRUG METABOLISM AND DISPOSITION, 2009, 37 (02) : 254 - 258
  • [10] Discovery of a Highly Selective CYP3A4 Inhibitor Suitable for Reaction Phenotyping Studies and Differentiation of CYP3A4 and CYP3A5
    Li, Xiaohai
    Song, Xinyi
    Kamenecka, Theodore M.
    Cameron, Michael D.
    DRUG METABOLISM AND DISPOSITION, 2012, 40 (09) : 1803 - 1809