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.

Molecular Pharmaceutics
|September 23, 2024
PubMed

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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