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Leveraging QSP Models for MIPD: A Case Study for Warfarin/INR.

Undine Falkenhagen1,2, Larisa H Cavallari3, Julio D Duarte3

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Clinical Pharmacology and Therapeutics
|April 24, 2024
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Quantitative system pharmacology (QSP) models show promise for model-informed precision dosing (MIPD) of warfarin. A QSP-derived warfarin model performed comparably to empirical models, improving prediction with genetic data.

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Area of Science:

  • Pharmacometrics
  • Pharmacogenomics
  • Systems Pharmacology

Background:

  • Warfarin dosing is complex due to high inter-individual variability, often leading to suboptimal patient outcomes.
  • Model-informed precision dosing (MIPD) offers a path to individualized warfarin therapy, but model generalizability is a concern.
  • Quantitative systems pharmacology (QSP) models offer potential for improved extrapolation but require clinical validation for MIPD.

Purpose of the Study:

  • To evaluate the predictive performance of a previously derived mechanistic warfarin/international normalized ratio (INR) model in the context of MIPD.
  • To benchmark the QSP-derived model against an established empirical reference model using external clinical data.
  • To assess the impact of genetic covariates (CYP2C9, VKORC1) on warfarin dosing predictions.

Main Methods:

  • Utilized an external dataset of patient INR data during warfarin initiation.
  • Assessed model accuracy and precision, comparing predictions to observed INR values.
  • Evaluated covariate contributions and performance in inpatient versus outpatient settings.

Main Results:

  • The QSP-derived warfarin/INR model demonstrated comparable predictive performance to the empirical reference model without specific calibration for warfarin initiation.
  • Inclusion of CYP2C9 and/or VKORC1 genotypes significantly improved prediction quality, even after incorporating 4 days of INR data.
  • Outpatient data showed higher unexplained variability, suggesting potential need for model adjustments during patient transition.

Conclusions:

  • QSP-derived mechanistic models hold significant potential for application in MIPD of warfarin.
  • These models provide a valuable complementary approach to traditional empirical model development.
  • Pharmacogenetic information enhances the predictive accuracy of QSP-based warfarin dosing models.