Literature DB >> 32892153

Functional Consequences of Pravastatin Isomerization on OATP1B1-Mediated Transport.

Jonathan B Wagner1, Melissa Ruggiero2, J Steven Leeder2, Bruno Hagenbuch2.   

Abstract

Pravastatin acid (PVA) can be isomerized to its inactive metabolite 3'α-iso-pravastatin acid (3αPVA) under acidic pH conditions. Previous studies reported interindividual differences in circulating concentrations of PVA and 3αPVA. This study investigated the functional consequences of PVA isomerization on OATP1B1-mediated transport. We characterized 3αPVA inhibition of OATP1B1-mediated PVA uptake into human embryonic kidney 293 cells expressing the four different OATP1B1 proteins (*1a, *1b, *5, and *15). 3αPVA inhibited OATP1B1-mediated PVA uptake in all four OATP1B1 gene products but with lower IC50/Ki values for OATP1B1*5 and *15 than for the reference proteins (*1a and *1b). PVA and 3αPVA were transported by all four OATP1B1 proteins. Kinetic experiments revealed that maximal transport rates (Vmax values) for OATP1B1 variants *5 and *15 were lower than for *1a and *1b for both substrates. Apparent affinities for 3αPVA transport were similar for all four variants. However, the apparent affinity of OATP1B1*5 for 3αPVA was higher (lower Km value) than for PVA. These data confirm that PVA conversion to 3αPVA can have functional consequences on PVA uptake and impacts OATP1B1 variants more than the reference protein, thus highlighting another source variation that must be taken into consideration when optimizing the PVA dose-exposure relationship for patients. SIGNIFICANCE STATEMENT: 3'α-iso-pravastatin acid inhibits pravastatin uptake for all OATP1B1 protein types; however, the IC50 values were significantly lower in OATP1B1*5 and *15 transfected cells. This suggests that a lower concentration of 3'α-iso-pravastatin is needed to disrupt OATP1B1-mediated pravastatin uptake, secondary to decreased cell surface expression of functional OATP1B1 in variant-expressing cells. These data will refine previous pharmacokinetic models that are utilized to characterize pravastatin interindividual variability with an ultimate goal of maximizing efficacy at the lowest possible risk for toxicity.
Copyright © 2020 by The American Society for Pharmacology and Experimental Therapeutics.

Entities:  

Year:  2020        PMID: 32892153      PMCID: PMC7589943          DOI: 10.1124/dmd.120.000122

Source DB:  PubMed          Journal:  Drug Metab Dispos        ISSN: 0090-9556            Impact factor:   3.922


  36 in total

1.  Human liver-specific organic anion transporter, LST-1, mediates uptake of pravastatin by human hepatocytes.

Authors:  D Nakai; R Nakagomi; Y Furuta; T Tokui; T Abe; T Ikeda; K Nishimura
Journal:  J Pharmacol Exp Ther       Date:  2001-06       Impact factor: 4.030

2.  Frequencies of single nucleotide polymorphisms and haplotypes of organic anion transporting polypeptide 1B1 SLCO1B1 gene in a Finnish population.

Authors:  Marja K Pasanen; Janne T Backman; Pertti J Neuvonen; Mikko Niemi
Journal:  Eur J Clin Pharmacol       Date:  2006-04-21       Impact factor: 2.953

3.  Amino acid residues in transmembrane domain 10 of organic anion transporting polypeptide 1B3 are critical for cholecystokinin octapeptide transport.

Authors:  Chunshan Gui; Bruno Hagenbuch
Journal:  Biochemistry       Date:  2008-08-09       Impact factor: 3.162

4.  Association between SLCO1B1 521 T>C and 388 A>G Polymorphisms and Statins Effectiveness: A Meta-Analysis.

Authors:  Rong Dai; Jing Feng; Yang Wang; Yuan Yang; Changkai Deng; Xiaojun Tang; Yong Zhao; Hao Zhou; Fan Zhang
Journal:  J Atheroscler Thromb       Date:  2015-04-01       Impact factor: 4.928

5.  Differential sensitivity of C2-C12 striated muscle cells to lovastatin and pravastatin.

Authors:  A P Gadbut; A P Caruso; J B Galper
Journal:  J Mol Cell Cardiol       Date:  1995-10       Impact factor: 5.000

6.  Functional characterization of SLCO1B1 (OATP-C) variants, SLCO1B1*5, SLCO1B1*15 and SLCO1B1*15+C1007G, by using transient expression systems of HeLa and HEK293 cells.

Authors:  Yoshio Kameyama; Keiko Yamashita; Kaoru Kobayashi; Masakiyo Hosokawa; Kan Chiba
Journal:  Pharmacogenet Genomics       Date:  2005-07       Impact factor: 2.089

Review 7.  Pharmacokinetic and pharmacodynamic alterations of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitors: drug-drug interactions and interindividual differences in transporter and metabolic enzyme functions.

Authors:  Yoshihisa Shitara; Yuichi Sugiyama
Journal:  Pharmacol Ther       Date:  2006-05-22       Impact factor: 12.310

8.  A novel human hepatic organic anion transporting polypeptide (OATP2). Identification of a liver-specific human organic anion transporting polypeptide and identification of rat and human hydroxymethylglutaryl-CoA reductase inhibitor transporters.

Authors:  B Hsiang; Y Zhu; Z Wang; Y Wu; V Sasseville; W P Yang; T G Kirchgessner
Journal:  J Biol Chem       Date:  1999-12-24       Impact factor: 5.157

9.  Evidence for inverse effects of OATP-C (SLC21A6) 5 and 1b haplotypes on pravastatin kinetics.

Authors:  Jessica Mwinyi; Andreas Johne; Steffen Bauer; Ivar Roots; Thomas Gerloff
Journal:  Clin Pharmacol Ther       Date:  2004-05       Impact factor: 6.875

10.  High plasma pravastatin concentrations are associated with single nucleotide polymorphisms and haplotypes of organic anion transporting polypeptide-C (OATP-C, SLCO1B1).

Authors:  Mikko Niemi; Elke Schaeffeler; Thomas Lang; Martin F Fromm; Mikko Neuvonen; Carl Kyrklund; Janne T Backman; Reinhold Kerb; Matthias Schwab; Pertti J Neuvonen; Michel Eichelbaum; Kari T Kivistö
Journal:  Pharmacogenetics       Date:  2004-07
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