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Published on: July 17, 2019
Prediction of the Transporter-Mediated Drug-Drug Interaction Potential of Dabrafenib and Its Major Circulating
Harma Ellens1, Marta Johnson2, Sarah K Lawrence2
1Drug Metabolism and Pharmacokinetics, GlaxoSmithKline, King of Prussia, Pennsylvania harmaellens@gmail.com.
Abstract:
The BRAF inhibitor dabrafenib was recently approved for the treatment of certain BRAF V600 mutation-positive tumors, either alone or in combination therapy with the mitogen-activated extracellular signal regulated kinase 1 (MEK1) and MEK2 inhibitor, trametinib. This article presents the dabrafenib transporter-mediated drug-drug interaction (DDI) risk assessment, which is currently an important part of drug development, regulatory submission, and drug registration. Dabrafenib and its major circulating metabolites (hydroxy-, carboxy-, and desmethyl-dabrafenib) were investigated as inhibitors of the clinically relevant transporters P-gp, BCRP, OATP1B1, OATP1B3, OCT2, OAT1, and OAT3. The DDI Guidance risk assessment decision criteria for inhibition of BCRP, OATP1B1 and OAT3 were slightly exceeded and therefore a minor DDI effect resulting from inhibition of these transporters remained possible. Biliary secretion is the major excretion pathway of dabrafenib-related material (71.1% of orally administered radiolabeled dose recovered in feces), whereas urinary excretion was observed as well (22.7% of the dose). In vitro uptake into human hepatocytes of the dabrafenib metabolites, but not of dabrafenib parent compound, was mediated, at least in part, by hepatic uptake transporters. The transporters responsible for uptake of the pharmacologically active hydroxy- and desmethyl dabrafenib could not be identified, whereas carboxy-dabrafenib was a substrate of several OATPs. Dabrafenib, hydroxy-, and desmethyl-dabrafenib were substrates of P-gp and BCRP, whereas carboxy-dabrafenib was not. Although a small increase in exposure to carboxy-dabrafenib upon inhibition of OATPs and an increase in exposure to desmethyl-dabrafenib upon inhibition of P-gp or BCRP cannot be excluded, the clinical significance of such increases is likely to be low.
Insights
Dabrafenib and its metabolites may cause minor drug-drug interactions by inhibiting certain transporters. However, the clinical significance of these interactions is likely low, with biliary excretion being the primary elimination route.
Area of Science:
- Pharmacology
- Drug Metabolism and Pharmacokinetics
- Oncology
Background:
- Dabrafenib is approved for BRAF V600 mutation-positive tumors, often with trametinib.
- Understanding transporter-mediated drug-drug interactions (DDIs) is crucial for drug development and regulatory approval.
Purpose of the Study:
- To assess the DDI risk of dabrafenib and its metabolites via transporter inhibition.
- To identify dabrafenib and metabolite interactions with key drug transporters.
Main Methods:
- Investigated dabrafenib and its metabolites (hydroxy-, carboxy-, desmethyl-) as inhibitors of P-gp, BCRP, OATP1B1, OATP1B3, OCT2, OAT1, and OAT3.
- Assessed biliary and urinary excretion pathways.
- Evaluated in vitro uptake into human hepatocytes.
Main Results:
- Slightly exceeded DDI risk criteria for BCRP, OATP1B1, and OAT3 inhibition, suggesting a minor DDI potential.
- Biliary excretion accounted for 71.1% of the dose; urinary excretion was 22.7%.
- Metabolite uptake into hepatocytes was transporter-mediated; dabrafenib parent compound uptake was not.
Conclusions:
- A minor DDI effect from dabrafenib inhibiting BCRP, OATP1B1, and OAT3 is possible but likely of low clinical significance.
- Dabrafenib, hydroxy-, and desmethyl-dabrafenib are substrates of P-gp and BCRP.
- Carboxy-dabrafenib is a substrate of OATPs but not P-gp or BCRP; its DDI potential is low.
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