Pexidartinib impairs liver mitochondrial functions causing cell death in primary human hepatocytes at clinically
Qiang Shi1, Lijun Ren1, Katy Papineau1
1National Center for Toxicological Research, U.S. Food and Drug Administration, Jefferson, AR, USA.
Abstract:
Pexidartinib is a regulatory agency approved small molecule kinase inhibitor (KI) with a boxed warning for hepatotoxicity, and FDA requires a Risk Evaluation and Mitigation Strategy (REMS) to mitigate such risk. The mechanism of pexidartinib hepatotoxicity is poorly understood. As mitochondrial injury and hepatocyte toxicity have been proposed to be a shared mechanism for the hepatotoxicity induced by many KIs, here we examined pexidartinib for such liabilities. Freshly isolated rat liver mitochondria, submitochondrial fractions, and cryopreserved primary human hepatocytes (PHHs) - the gold standard in vitro model for drug hepatotoxicity - were treated with pexidartinib at clinically relevant concentrations, and mitochondrial functions and cytotoxicity were assessed. In isolated mitochondria, the state 3 oxygen consumption rates of glutamate/malate- and succinate-driven respiration were both decreased by pexidartinib, while the state 4 oxygen consumption rates were unaffected. In submitochondrial fractions, the activities of respiratory chain complex (RCC) I and V, but not II, III, IV, were significantly inhibited by pexidartinib. In PHHs, as measured by a Seahorse system, pexidartinib decreased basal, spare, maximal, and adenosine triphosphate (ATP)-linked respirations at 2 h in the absence of cell death. Pexidartinib also inhibited cellular ATP level, increased reactive oxygen species, and caused cell death after 24 h. However, activities of caspases were unaffected. Importantly, the detrimental effects noted above occurred at pexidartinib concentrations of 0.5- to 2.5-fold of the human peak blood concentration (Cmax) achieved with the recommended therapeutic dose. These data suggest that mitochondrial injury and hepatocyte toxicity are involved in the mechanism of pexidartinib-induced hepatotoxicity.
Insights
Pexidartinib causes liver injury by damaging mitochondria and liver cells. This study investigated its effects on mitochondrial function and cell viability at relevant concentrations.
Area of Science:
- Biochemistry
- Toxicology
- Pharmacology
Background:
- Pexidartinib is a kinase inhibitor with a boxed warning for hepatotoxicity.
- The exact mechanism of pexidartinib-induced liver injury remains unclear.
- Mitochondrial dysfunction is a potential mechanism for kinase inhibitor hepatotoxicity.
Purpose of the Study:
- To investigate the potential of pexidartinib to induce mitochondrial injury and hepatocyte toxicity.
- To assess the effects of pexidartinib on mitochondrial respiration and cellular ATP levels.
- To evaluate pexidartinib's cytotoxicity in primary human hepatocytes.
Main Methods:
- Isolated rat liver mitochondria and submitochondrial fractions were used to assess mitochondrial function.
- Primary human hepatocytes (PHHs) were treated with pexidartinib at clinically relevant concentrations.
- Mitochondrial respiration, ATP levels, reactive oxygen species (ROS), and cell death were measured.
Main Results:
- Pexidartinib decreased oxygen consumption in isolated mitochondria and inhibited respiratory chain complexes I and V.
- In PHHs, pexidartinib reduced cellular respiration and ATP levels within 2 hours, preceding cell death.
- Increased ROS production and cell death were observed after 24 hours, independent of caspase activation.
Conclusions:
- Pexidartinib induces mitochondrial dysfunction and hepatocyte toxicity at clinically relevant concentrations.
- Mitochondrial injury and cellular toxicity are likely mechanisms underlying pexidartinib-induced hepatotoxicity.
- These findings highlight the importance of monitoring liver function in patients treated with pexidartinib.
Related Concept Videos
Effect of Hepatic Disease on Pharmacokinetics: Pathophysiologic Assessment and Liver Function Test
Effect of Hepatic Disease on Pharmacokinetics: Drug Dosing and Hepatic Blood Flow
Effect of Hepatic Disease on Pharmacokinetics: Active Drug, Metabolite and Fraction of Metabolized Drug
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...


