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Published on: April 13, 2021
Mycophenolic Acid and Its Metabolites in Kidney Transplant Recipients: A Semimechanistic Enterohepatic Circulation
Malek Okour1, Pamala A Jacobson2, Mariam A Ahmed2
1Clinical Pharmacology Modeling and Simulation (CPMS), GlaxoSmithKline, King of Prussia, PA, USA.
Abstract:
Mycophenolic acid (MPA) is an approved immunosuppressive agent widely prescribed to prevent rejection after kidney transplantation. Wide between-subject variability (BSV) in MPA exposure exists which in part may be due to variability in enterohepatic recirculation (EHC). Several modeling strategies were developed to evaluate EHC as part of MPA pharmacokinetics, however mechanistic representation of EHC is limited. These models have not provided a satisfactory representation of the physiology of EHC in their modeling assumptions. The aim of this study was i) to develop an integrated model of MPA (total and unbound) and its metabolites (MPAG and acyl-MPAG) in kidney recipients, where this model provides a more physiological representation of EHC process, and ii) to evaluate the effect of donor and recipient clinical covariates and genotypes on MPA disposition. A five-compartment model with first-order input into an unbound MPA compartment connected to the MPAG, acyl-MPAG, and gallbladder compartment best fit the data. To represent the EHC process, the model was built based on the physiological concepts related to the hepatobiliary system and the gallbladder filling and emptying processes. The effect of cyclosporine versus tacrolimus on clearance of unbound MPA was included in the base model. Covariate analysis showed creatinine clearance to be significant on oral clearance of unbound MPA. The hepatic nuclear factor 1 alpha (HNF1A) genetic single nucleotide polymorphism (SNP) (rs2393791) in the recipient significantly affected the fraction of enterohepatically-circulated drug. Oral clearance of MPAG was affected by recipient IMPDH1 SNP (rs2288553), diabetes at the time of transplant, and donor sex.
Insights
This study developed a physiological model for mycophenolic acid (MPA) pharmacokinetics, improving understanding of enterohepatic recirculation (EHC) in kidney transplant recipients. The model reveals how clinical factors and genetic variations influence MPA exposure and EHC.
Area of Science:
- Pharmacology
- Pharmacokinetics
- Transplantation Medicine
Background:
- Mycophenolic acid (MPA) is crucial for preventing kidney transplant rejection.
- Significant inter-individual variability in MPA exposure exists, partly due to enterohepatic recirculation (EHC).
- Existing models offer limited mechanistic insight into MPA's EHC physiology.
Purpose of the Study:
- To develop an integrated, physiologically-based model for MPA (total and unbound) and its metabolites (MPAG, acyl-MPAG) in kidney recipients.
- To enhance the representation of the EHC process within MPA pharmacokinetic modeling.
- To evaluate the impact of clinical covariates and genetic factors on MPA disposition.
Main Methods:
- A five-compartment model incorporating unbound MPA, metabolites (MPAG, acyl-MPAG), and a gallbladder compartment was utilized.
- The model's EHC representation was based on physiological principles of the hepatobiliary system and gallbladder dynamics.
- Cyclosporine vs. tacrolimus effects on unbound MPA clearance were integrated.
Main Results:
- Creatinine clearance significantly impacted the oral clearance of unbound MPA.
- A specific HNF1A genetic polymorphism (rs2393791) in recipients influenced the fraction of MPA undergoing EHC.
- MPAG oral clearance was affected by an IMPDH1 SNP (rs2288553), diabetes status, and donor sex.
Conclusions:
- The developed integrated model provides a more accurate physiological representation of MPA EHC in kidney transplant recipients.
- Clinical factors like creatinine clearance and genetic variations (HNF1A, IMPDH1) are key determinants of MPA pharmacokinetics and EHC.
- This enhanced understanding can inform personalized dosing strategies for MPA in transplantation.
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