Literature DB >> 15795641

Influence of cyclosporine on the serum concentration and biliary excretion of mycophenolic acid and 7-O-mycophenolic acid glucuronide.

Michael Deters1, Gabriele Kirchner, Therese Koal, Klaus Resch, Volkhard Kaever.   

Abstract

The authors have investigated whether cyclosporine decreases the serum concentration of mycophenolic acid, the active principle of the immunosuppressant mycophenolate mofetil, and increases that of the inactive metabolite 7-O-mycophenolic acid glucuronide by reducing their enterohepatic recirculation. Rats were treated daily with methylcellulose (1.66 mL/kg PO) plus 0.9% NaCl (6 mL/kg IP), mycophenolate mofetil (20 mg/kg PO) plus 0.9% NaCl (6 mL/kg IP), methylcellulose (1.66 mL/kg PO) plus cyclosporine (5 mg/kg IP), and mycophenolate mofetil (20 mg/kg PO) plus cyclosporine (5 mg/kg IP). After 14 days a bile fistula was installed to measure the biliary excretion of the immunosuppressants and their metabolites. After 90 minutes blood was taken to determine their concentrations in blood or serum by HPLC. Cyclosporine significantly decreased the serum concentration of mycophenolic acid by 39% and increased, not significantly, that of 7-O-mycophenolic acid glucuronide by 53%. The biliary excretion of 7-O-mycophenolic acid glucuronide was significantly reduced by cyclosporine by 57%, whereas that of mycophenolic acid was not affected. Mycophenolate mofetil did not show a significant effect on either the blood concentration or the biliary excretion of cyclosporine and its metabolites AM1, AM9, AM1c, and AM4N. Cyclosporine significantly decreased the serum concentration of active mycophenolate acid and increased, not significantly, the serum concentration of inactive 7-O-mycophenolic acid glucuronide, presumably by reducing the biliary excretion of this inactive metabolite.

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Year:  2005        PMID: 15795641     DOI: 10.1097/01.ftd.0000152682.13647.5e

Source DB:  PubMed          Journal:  Ther Drug Monit        ISSN: 0163-4356            Impact factor:   3.681


  6 in total

Review 1.  Clinical pharmacokinetics and pharmacodynamics of mycophenolate in solid organ transplant recipients.

Authors:  Christine E Staatz; Susan E Tett
Journal:  Clin Pharmacokinet       Date:  2007       Impact factor: 6.447

2.  Influence of Calcineurin Inhibitor and Sex on Mycophenolic Acid Pharmacokinetics and Adverse Effects Post-Renal Transplant.

Authors:  Calvin J Meaney; Patcharaporn Sudchada; Joseph D Consiglio; Gregory E Wilding; Louise M Cooper; Rocco C Venuto; Kathleen M Tornatore
Journal:  J Clin Pharmacol       Date:  2019-05-06       Impact factor: 3.126

3.  Impact of UGT1A9 Polymorphism on Mycophenolic Acid Pharmacokinetic Parameters in Stable Renal Transplant Patients.

Authors:  Talia Mazidi; Mohammad-Reza Rouini; Mohammad-Hossein Ghahremani; Simin Dashti-Khavidaki; Mahboob Lessan-Pezeshki; Farrokh Lagha Ahmadi; Jamshid Salam-Zadeh; Ali Mandegary; Kheirollah Gholami
Journal:  Iran J Pharm Res       Date:  2013       Impact factor: 1.696

4.  Limited Sampling Strategy for Estimation of Mycophenolic Acid Exposure in Adult Chinese Heart Transplant Recipients.

Authors:  Hongping Xiang; Hong Zhou; Jing Zhang; Yongfeng Sun; Yirong Wang; Yong Han; Jie Cai
Journal:  Front Pharmacol       Date:  2021-04-12       Impact factor: 5.810

5.  Association of ABCC2 Haplotypes to Mycophenolic Acid Pharmacokinetics in Stable Kidney Transplant Recipients.

Authors:  Daniel Brazeau; Calvin J Meaney; Joseph D Consiglio; Gregory E Wilding; Louise M Cooper; Rocco C Venuto; Kathleen M Tornatore
Journal:  J Clin Pharmacol       Date:  2021-07-20       Impact factor: 2.860

6.  Comparison of PETINIA and LC-MS/MS for determining plasma mycophenolic acid concentrations in Japanese lung transplant recipients.

Authors:  Masafumi Kikuchi; Masaki Tanaka; Shinya Takasaki; Akiko Takahashi; Miki Akiba; Yasushi Matsuda; Masafumi Noda; Kanehiko Hisamichi; Hiroaki Yamaguchi; Yoshinori Okada; Nariyasu Mano
Journal:  J Pharm Health Care Sci       Date:  2018-04-02
  6 in total

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