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Updated: May 28, 2026

Drug-Induced Senescence in Liver Cells Promotes M2 Macrophage Polarization: Implications for Tyrosine Kinase Inhibitor-Associated Hepatotoxicity
Published on: October 17, 2025
Human metabolism of lapatinib, a dual kinase inhibitor: implications for hepatotoxicity
Stephen Castellino1, Michael O'Mara, Kevin Koch
1Department of Drug Metabolism and Pharmacokinetics, GlaxoSmithKline, 5 Moore Dr., Research Triangle Park, NC 27709, USA. steve.x.castellino@gsk.com
Abstract:
Lapatinib (Tykerb, Tyverb) is an important orally active dual tyrosine kinase inhibitor efficacious in combination therapy for patients with progressive human epidermal receptor 2-overexpressing metastatic breast cancer. However, clinically significant liver injury, which may be associated with lapatinib metabolic activation, has been reported. We describe the metabolism and excretion of [(14)C]lapatinib in six healthy human volunteers after a single oral dose of 250 mg and the potential relationships between metabolism and clinical hepatotoxicity. Overall, elimination showed high intersubject variability, with fecal elimination being the predominant pathway, representing a median of 92% of the dose with lapatinib as the largest component (approximate median 27% of the dose). In plasma, approximately 50% of the observed radioactivity was attributed to metabolites. Analysis of a 4-h pooled plasma extract identified seven metabolites related by an N- and α-carbon oxidation cascade. Fecal metabolites derived from three prominent pathways: N- and α-carbon oxidation, fluorobenzyl oxidative cleavage, and hydroxypyridine formation. Several of the lapatinib metabolites can undoubtedly be linked to reactive species such as aldehydes or quinone imines. In addition to the contribution of these potentially reactive metabolites as suspects in clinical liver injury, the role of other disposition factors, including interaction with drug transporters, pharmacogenetics, or magnitude of the therapeutic dose, should not be discounted.
Insights
Lapatinib metabolism involves high variability, with most excretion via feces. Some metabolites may contribute to liver injury, alongside other factors like drug transporters and genetics.
Area of Science:
- Pharmacology
- Drug Metabolism
- Hepatotoxicity
Background:
- Lapatinib is an oral tyrosine kinase inhibitor used for HER2-overexpressing metastatic breast cancer.
- Clinically significant liver injury has been reported with lapatinib, potentially linked to its metabolism.
Purpose of the Study:
- To describe the metabolism and excretion of [(14)C]lapatinib in healthy volunteers.
- To explore potential relationships between lapatinib metabolism and clinical hepatotoxicity.
Main Methods:
- Single oral dose of 250 mg [(14)C]lapatinib administered to six healthy volunteers.
- Analysis of plasma and fecal samples to identify metabolites and excretion pathways.
Main Results:
- High intersubject variability in elimination; fecal elimination predominated (median 92%).
- Lapatinib was the largest component in feces (median ~27%); ~50% of plasma radioactivity was metabolites.
- Seven plasma metabolites identified via N- and α-carbon oxidation; fecal metabolites arose from oxidation, cleavage, and hydroxypyridine formation.
Conclusions:
- Lapatinib metabolism generates potentially reactive species like aldehydes and quinone imines.
- These reactive metabolites may contribute to lapatinib-induced liver injury.
- Other factors such as drug transporters, pharmacogenetics, and dose magnitude also warrant consideration.
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