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Brain Exposure to the Macrocyclic ALK Inhibitor Zotizalkib is Restricted by ABCB1, and Its Plasma Disposition is
Jamie Rijmers1, Rolf W Sparidans2, Manon Acda3
1Division of Pharmacology, The Netherlands Cancer Institute, Amsterdam 1066 CX, The Netherlands.
Abstract:
Zotizalkib (TPX-0131), a fourth-generation macrocyclic anaplastic lymphoma kinase (ALK) inhibitor, is designed to overcome resistance due to secondary ALK mutations in non-small cell lung cancer (NSCLC). We here evaluated the pharmacokinetic roles of the ABCB1 (P-gp/MDR1) and ABCG2 (BCRP) efflux transporters, OATP1 influx transporters and the metabolizing enzymes CES1 and CYP3A in plasma and tissue disposition of zotizalkib after oral administration in relevant mouse models. Zotizalkib was efficiently transported by hABCB1 in vitro. In vivo, a significant ∼9-fold higher brain-to-plasma ratio was observed in Abcb1a/b-/- and Abcb1a/b;Abcg2-/- compared to wild-type mice. No change in brain disposition was observed in Abcg2-/- mice, suggesting that mAbcb1a/b markedly restricts the brain accumulation of zotizalkib. ABCB1-mediated efflux of zotizalkib was completely inhibited by elacridar, a dual ABCB1/ABCG2 inhibitor, increasing brain exposure without any signs of acute CNS-related toxicities. In Oatp1a/b-/- mice, no marked changes in plasma exposure or tissue-to-plasma ratios were observed, indicating that zotizalkib is not a substantial in vivo substrate for mOatp1a/b. Zotizalkib may further be metabolized by CYP3A4 but only noticeably at low plasma concentrations. In Ces1-/- mice, a 2.5-fold lower plasma exposure was seen compared to wild-type, without alterations in tissue distribution. This suggests increased plasma retention of zotizalkib by binding to the abundant mouse plasma Ces1c. Notably, the hepatic expression of human CES1 did not affect zotizalkib plasma exposure or tissue distribution. The obtained pharmacokinetic insights may be useful for the further development and optimization of therapeutic efficacy and safety of zotizalkib and related compact macrocyclic ALK inhibitors.
Insights
Zotizalkib brain accumulation is limited by the ABCB1 transporter. Inhibiting ABCB1 increases brain exposure without toxicity, suggesting a strategy for enhanced efficacy in non-small cell lung cancer treatment.
Area of Science:
- Pharmacology
- Oncology
- Drug Metabolism and Pharmacokinetics
Background:
- Zotizalkib is a novel anaplastic lymphoma kinase (ALK) inhibitor for non-small cell lung cancer (NSCLC).
- Understanding its disposition is crucial for optimizing therapeutic strategies.
- Resistance to ALK inhibitors often involves secondary mutations and transporter-mediated efflux.
Purpose of the Study:
- To elucidate the pharmacokinetic roles of key transporters and metabolizing enzymes on zotizalkib disposition.
- To evaluate the impact of ABCB1, ABCG2, OATP1, CES1, and CYP3A on zotizalkib's plasma and tissue distribution.
- To assess the potential for drug-drug interactions and inform clinical development.
Main Methods:
- In vitro transport assays using human ABCB1.
- In vivo pharmacokinetic studies in knockout mouse models (Abcb1a/b-/-, Abcg2-/-, Oatp1a/b-/-, Ces1-/-).
- Administration of zotizalkib via oral gavage and analysis of plasma and tissue concentrations.
Main Results:
- Zotizalkib is an efficient substrate of ABCB1, with brain accumulation significantly restricted by this transporter in vivo.
- ABCB1 inhibition increased brain exposure without acute central nervous system toxicities.
- Zotizalkib is not a significant substrate of OATP1, and its metabolism by CYP3A4 is concentration-dependent.
- CES1 influences plasma exposure by potentially increasing plasma retention, but human CES1 expression had no effect.
Conclusions:
- ABCB1 is a major determinant of zotizalkib brain disposition, offering a potential target for enhancing central nervous system exposure.
- Pharmacokinetic insights guide the development of zotizalkib and related macrocyclic ALK inhibitors for improved efficacy and safety.
- Further studies should explore therapeutic strategies involving ABCB1 modulation in ALK-mutant NSCLC.
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