Metabolic intermediate complex formation of human cytochrome P450 3A4 by lapatinib

Hideo Takakusa1, Michelle D Wahlin, Chunsheng Zhao

  • 1Department of Medicinal Chemistry, University of Washington, Seattle, WA, USA.

Insights

Lapatinib

Area of Science:

  • Pharmacology
  • Drug Metabolism
  • Biochemistry

Background:

  • Lapatinib, an oral breast cancer drug, is known to inhibit cytochrome P450 (P450) 3A4.
  • This inhibition may be linked to its potential for idiosyncratic hepatotoxicity.
  • A quinoneimine metabolite was previously suspected in lapatinib's mechanism-based inactivation (MBI) and hepatotoxicity.

Purpose of the Study:

  • To investigate the precise mechanism of P450 3A4 inactivation by lapatinib.
  • To determine if lapatinib forms a quasi-irreversible metabolic intermediate (MI) complex.
  • To compare the susceptibility of P450 3A4 and P450 3A5 to lapatinib-induced MBI.

Main Methods:

  • Incubation of P450 3A4 with lapatinib.
  • Liquid chromatography-mass spectrometry (LC-MS) analysis.
  • Enzymatic activity restoration assays with potassium ferricyanide.
  • Spectrophotometric analysis of Soret absorbance.
  • Characterization of lapatinib metabolites (M2 and M3).

Main Results:

  • Lapatinib's inactivation of P450 3A4 was reversible with potassium ferricyanide, indicating quasi-irreversible MBI via MI complex formation, not irreversible modification.
  • A characteristic Soret absorbance increase at ~455 nm confirmed MI complex formation.
  • Metabolites N-hydroxy lapatinib (M3) and oxime lapatinib (M2) were identified, suggesting amine oxidation is key.
  • P450 3A5 showed significantly lower susceptibility to MBI and M3 formation compared to P450 3A4.

Conclusions:

  • Lapatinib primarily causes quasi-irreversible P450 3A4 inactivation through MI complex formation, not via a quinoneimine metabolite.
  • Oxidation of lapatinib's secondary amine group initiates the pathway leading to MI complex formation.
  • P450 3A4 is more susceptible to lapatinib-induced MBI than P450 3A5 due to differences in N-hydroxylation activity.

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