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Identification of the Additional Mitochondrial Liabilities of 2-Hydroxyflutamide When Compared With its Parent
Amy L Ball1, Laleh Kamalian2, Ana Alfirevic3
1*Department of Molecular and Clinical Pharmacology, MRC Centre for Drug Safety Science, University of Liverpool, Liverpool L69 3GE, UK a.ball3@liverpool.ac.uk.
Abstract:
The androgen receptor antagonist, flutamide, is strongly associated with idiosyncratic drug-induced liver injury (DILI). Following administration, flutamide undergoes extensive first-pass metabolism to its primary metabolite, 2-hydroxyflutamide. Flutamide is a known mitochondrial toxicant; however there has been limited investigation into the potential mitochondrial toxicity of 2-hydroxyflutamide and its contribution to flutamide-induced liver injury. In this study we have used the acute glucose or galactose-conditioning of HepG2 cells to compare the mitochondrial toxicity of flutamide, 2-hydroxyflutamide and the structurally-related, non-hepatotoxic androgen receptor antagonist, bicalutamide. Compound-induced changes in mitochondrial oxygen consumption rate were assessed using Seahorse technology. Permeabilization of cells and delivery of specific substrates and inhibitors of the various respiratory complexes provided more detailed information on the origin of mitochondrial perturbations. These analyses were supported by assessment of downstream impacts including changes in cellular NAD(+)/NADH ratio. Bicalutamide was not found to be a mitochondrial toxicant, yet flutamide and 2-hydroxyflutamide significantly reduced basal and maximal respiration. Both flutamide and 2-hydroxyflutamide significantly reduced respiratory complex I-linked respiration, though 2-hydroxyflutamide also significantly decreased complex II and V-linked respiration; liabilities not demonstrated by the parent compound. This study has identified for the first time, the additional mitochondrial liabilities of the major metabolite, 2-hydroxyflutamide compared with its parent drug, flutamide. Given the rapid production of this metabolite upon administration of flutamide, but not bicalutamide, we propose that the additional mitochondrial toxicity of 2-hydroxyflutamide may fundamentally contribute to the idiosyncratic DILI seen in flutamide-treated, but not bicalutamide-treated patients.
Insights
Flutamide's metabolite, 2-hydroxyflutamide, exhibits greater mitochondrial toxicity than the parent drug. This enhanced mitochondrial damage by 2-hydroxyflutamide may explain flutamide-induced liver injury.
Area of Science:
- Hepatology
- Mitochondrial Toxicology
- Pharmacology
Background:
- Flutamide, an androgen receptor antagonist, is linked to drug-induced liver injury (DILI).
- Flutamide is metabolized to 2-hydroxyflutamide, a potential contributor to DILI.
- Mitochondrial toxicity of 2-hydroxyflutamide remains under-investigated.
Purpose of the Study:
- To compare the mitochondrial toxicity of flutamide and its metabolite 2-hydroxyflutamide.
- To investigate the role of 2-hydroxyflutamide in flutamide-induced DILI.
- To assess the mitochondrial effects of bicalutamide as a control.
Main Methods:
- Utilized HepG2 cells conditioned with glucose or galactose.
- Assessed mitochondrial oxygen consumption using Seahorse technology.
- Analyzed respiratory complex function, NAD+/NADH ratio, and cellular permeability.
Main Results:
- Flutamide and 2-hydroxyflutamide reduced basal and maximal respiration.
- Both compounds impaired Complex I-linked respiration.
- 2-hydroxyflutamide uniquely inhibited Complex II and V respiration, unlike flutamide.
Conclusions:
- 2-hydroxyflutamide demonstrates greater mitochondrial toxicity than flutamide.
- The enhanced mitochondrial liabilities of 2-hydroxyflutamide likely contribute to flutamide-induced DILI.
- Bicalutamide, lacking these liabilities, serves as a non-hepatotoxic comparator.
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