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Published on: December 7, 2014
Drug-Drug Interaction Liabilities with BTK Inhibitor TL-895
Jack C Stromatt1, Eman A Ahmed1, Thomas Drabison1
1Division of Pharmaceutics and Pharmacology, College of Pharmacy, The Ohio State University, Columbus, Ohio.
Abstract:
TL-895 is an orally administered protein kinase inhibitor in clinical development for the treatment of B-cell malignancies and various other blood and autoimmune disorders. In the early stages of drug development, limited data are available to assess off-target engagement and drug-drug interaction (DDI) liabilities, which may have profound effects on drug safety and efficacy. In this context, we characterized the kinase interaction profile of TL-895 and determined that the agent inhibits Bruton's tyrosine kinase (BTK) and bone marrow kinase on chromosome X (BMX), with more potent inhibition of BMX than BTK in a kinase assay (IC50: 0.53 vs. 3.02 nmol/L) and a bioluminescence resonance energy transfer (BRET) assay (IC50: 1.6 vs. 6.8 nmol/L). We used in vitro and in vivo models to assess DDI liabilities and identified TL-895 as a substrate of the hepatic uptake transporter OATP1B1 and the enzyme CYP3A4. In vivo, coadministration of TL-895 did not increase plasma concentrations of the endogenous and xenobiotic OATP1B1 substrates chenodeoxycholic acid 24-acyl-β-D-glucuronide, pravastatin, and gilteritinib, which indicates that TL-895 is an unlikely perpetrator of OATP1B1-mediated DDIs. Consistent with hepatic microsomal studies, we found that plasma concentrations of TL-895 were increased by 1.8- and 4.6-fold, respectively, in male and female mice lacking all CYP3A isoforms. The pharmacokinetic profile of TL-895 was not significantly sexually dimorphic or strain-dependent at drug doses producing human-equivalent measures of systemic exposure. These collective findings signify an important contribution of OATP1B1 and CYP3A4 to the in vivo handling of the dual BTK/BMX inhibitor TL-895 and suggest the agent is an unlikely perpetrator of potentially deleterious DDIs in polypharmacy regimens.
Significance:
TL-895 is an investigational second-generation BTK inhibitor for the treatment of B-cell malignancies. We found that TL-895 undergoes hepatocellular uptake by OATP1B-type transporters in advance of extensive CYP3A-mediated metabolism but is unlikely to perpetrate pharmacokinetic DDIs that could compromise drug safety in the context of polypharmacy regimens.
Insights
TL-895, a dual BTK/BMX inhibitor, shows potent inhibition of BMX. It is a substrate for OATP1B1 and CYP3A4 but unlikely to cause drug-drug interactions, ensuring safer use in combination therapies.
Area of Science:
- Pharmacology
- Drug Metabolism and Pharmacokinetics
- Oncology
Background:
- Limited early-stage data exists for drug-drug interaction (DDI) liabilities of novel therapeutics.
- Understanding off-target engagement and transporter/enzyme interactions is crucial for drug safety and efficacy.
Purpose of the Study:
- To characterize the kinase interaction profile of TL-895.
- To assess the drug-drug interaction (DDI) liabilities of TL-895 as a substrate of OATP1B1 and CYP3A4.
Main Methods:
- Kinase inhibition assays (IC50) and BRET assays were used to determine enzyme inhibition.
- In vitro and in vivo models were employed to evaluate DDI potential with OATP1B1 and CYP3A4.
- Pharmacokinetic studies were conducted in CYP3A-null mice to assess enzyme-mediated interactions.
Main Results:
- TL-895 potently inhibits both Bruton's tyrosine kinase (BTK) and Bmx, with greater potency against Bmx (IC50: 0.53 nM).
- TL-895 is identified as a substrate for the hepatic transporter OATP1B1 and the enzyme CYP3A4.
- TL-895 did not increase plasma concentrations of OATP1B1 substrates, indicating it's an unlikely DDI perpetrator via this transporter.
- CYP3A4 inhibition led to increased TL-895 plasma concentrations in CYP3A-null mice, confirming CYP3A4's role in its metabolism.
Conclusions:
- TL-895 is a dual BTK/BMX inhibitor with a defined kinase interaction profile.
- OATP1B1 and CYP3A4 significantly contribute to the in vivo disposition of TL-895.
- TL-895 is unlikely to be a perpetrator of clinically significant OATP1B1-mediated DDIs, supporting its potential use in polypharmacy regimens.
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