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Updated: Dec 25, 2025

Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
Model-Based Biomarker Selection for Dose Individualization of Tyrosine-Kinase Inhibitors
Maddalena Centanni1, Lena E Friberg1
1Department of Pharmaceutical Biosciences, Uppsala University, Uppsala, Sweden.
Abstract:
Tyrosine-kinase inhibitors (TKIs) demonstrate high inter-individual variability with respect to safety and efficacy and would therefore benefit from dose or schedule adjustments. This study investigated the efficacy, safety, and economical aspects of alternative dosing options for sunitinib in gastro-intestinal stromal tumors (GIST) and axitinib in metastatic renal cell carcinoma (mRCC). Dose individualization based on drug concentration, adverse effects, and sVEGFR-3 was explored using a modeling framework connecting pharmacokinetic and pharmacodynamic models, as well as overall survival. Model-based simulations were performed to investigate four different scenarios: (I) the predicted value of high-dose pulsatile schedules to improve clinical outcomes as compared to regular daily dosing, (II) the potential of biomarkers for dose individualizations, such as drug concentrations, toxicity measurements, and the biomarker sVEGFR-3, (III) the cost-effectiveness of biomarker-guided dose-individualizations, and (IV) model-based dosing approaches versus standard sample-based methods to guide dose adjustments in clinical practice. Simulations from the axitinib and sunitinib frameworks suggest that weekly or once every two weeks high-dosing result in lower overall survival in patients with mRCC and GIST, compared to continuous daily dosing. Moreover, sVEGFR-3 appears a safe and cost-effective biomarker to guide dose adjustments and improve overall survival (€36 784.- per QALY). Model-based estimations were for biomarkers in general found to correctly predict dose adjustments similar to or more accurately than single clinical measurements and might therefore guide dose adjustments. A simulation framework represents a rapid and resource saving method to explore various propositions for dose and schedule adjustments of TKIs, while accounting for complicating factors such as circulating biomarker dynamics and inter-or intra-individual variability.
Insights
Alternative dosing for tyrosine-kinase inhibitors (TKIs) like sunitinib and axitinib showed lower survival. The biomarker sVEGFR-3 offers a cost-effective way to guide personalized dosing for better outcomes.
Area of Science:
- Pharmacology
- Oncology
- Biomarkers
Background:
- Tyrosine-kinase inhibitors (TKIs) exhibit significant inter-individual variability in safety and efficacy.
- Dose or schedule adjustments are crucial for optimizing TKI therapy.
- Gastro-intestinal stromal tumors (GIST) and metastatic renal cell carcinoma (mRCC) are key indications for TKIs like sunitinib and axitinib, respectively.
Purpose of the Study:
- To investigate alternative dosing strategies for sunitinib (GIST) and axitinib (mRCC).
- To explore dose individualization using drug concentrations, adverse effects, and sVEGFR-3 biomarker.
- To assess the cost-effectiveness and accuracy of model-based dosing approaches.
Main Methods:
- Development of integrated pharmacokinetic and pharmacodynamic models.
- Model-based simulations to evaluate different dosing scenarios (pulsatile vs. daily, biomarker-guided).
- Cost-effectiveness analysis of biomarker-guided dose individualization.
Main Results:
- High-dose pulsatile schedules (weekly/bi-weekly) resulted in lower overall survival compared to daily dosing for both axitinib and sunitinib.
- sVEGFR-3 was identified as a safe and cost-effective biomarker for dose adjustment, improving overall survival (€36,784 per QALY).
- Model-based estimations accurately predicted dose adjustments, comparable to or better than standard clinical measurements.
Conclusions:
- Continuous daily dosing is superior to high-dose pulsatile schedules for sunitinib and axitinib in GIST and mRCC.
- Biomarker-guided dose individualization, particularly using sVEGFR-3, enhances patient outcomes and cost-effectiveness.
- Model-based simulation frameworks provide an efficient method for optimizing TKI dosing strategies.
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