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Monitoring Stub1-Mediated Pexophagy
Published on: May 12, 2023
Peroxiredoxin 3 is a redox-dependent target of thiostrepton in malignant mesothelioma cells
Kheng Newick1, Brian Cunniff, Kelsey Preston
1Department of Pathology, University of Vermont College of Medicine, Burlington, Vermont, United States of America.
Abstract:
Thiostrepton (TS) is a thiazole antibiotic that inhibits expression of FOXM1, an oncogenic transcription factor required for cell cycle progression and resistance to oncogene-induced oxidative stress. The mechanism of action of TS is unclear and strategies that enhance TS activity will improve its therapeutic potential. Analysis of human tumor specimens showed FOXM1 is broadly expressed in malignant mesothelioma (MM), an intractable tumor associated with asbestos exposure. The mechanism of action of TS was investigated in a cell culture model of human MM. As for other tumor cell types, TS inhibited expression of FOXM1 in MM cells in a dose-dependent manner. Suppression of FOXM1 expression and coincidental activation of ERK1/2 by TS were abrogated by pre-incubation of cells with the antioxidant N-acetyl-L-cysteine (NAC), indicating its mechanism of action in MM cells is redox-dependent. Examination of the mitochondrial thioredoxin reductase 2 (TR2)-thioredoxin 2 (TRX2)-peroxiredoxin 3 (PRX3) antioxidant network revealed that TS modifies the electrophoretic mobility of PRX3. Incubation of recombinant human PRX3 with TS in vitro also resulted in PRX3 with altered electrophoretic mobility. The cellular and recombinant species of modified PRX3 were resistant to dithiothreitol and SDS and suppressed by NAC, indicating that TS covalently adducts cysteine residues in PRX3. Reduction of endogenous mitochondrial TRX2 levels by the cationic triphenylmethane gentian violet (GV) promoted modification of PRX3 by TS and significantly enhanced its cytotoxic activity. Our results indicate TS covalently adducts PRX3, thereby disabling a major mitochondrial antioxidant network that counters chronic mitochondrial oxidative stress. Redox-active compounds like GV that modify the TR2/TRX2 network may significantly enhance the efficacy of TS, thereby providing a combinatorial approach for exploiting redox-dependent perturbations in mitochondrial function as a therapeutic approach in mesothelioma.
Insights
Thiostrepton (TS) antibiotic targets FOXM1 in mesothelioma cells. It works by covalently adducting mitochondrial peroxiredoxin 3 (PRX3), disrupting antioxidant networks. Gentian violet enhances TS efficacy by targeting this pathway.
Area of Science:
- Biochemistry
- Cell Biology
- Medical Oncology
Background:
- Thiostrepton (TS) is a thiazole antibiotic that inhibits FOXM1, a transcription factor crucial for cell cycle progression and oxidative stress resistance.
- FOXM1 is broadly expressed in malignant mesothelioma (MM), an aggressive cancer linked to asbestos exposure.
- The precise mechanism of action for TS and strategies to enhance its therapeutic potential remain unclear.
Purpose of the Study:
- To investigate the mechanism of action of Thiostrepton (TS) in a human malignant mesothelioma (MM) cell culture model.
- To explore strategies for enhancing the therapeutic efficacy of TS in MM treatment.
Main Methods:
- Investigated TS effects on FOXM1 expression and ERK1/2 activation in MM cells.
- Utilized N-acetyl-L-cysteine (NAC) to assess the redox-dependence of TS action.
- Examined the interaction of TS with the mitochondrial thioredoxin reductase 2 (TR2)-thioredoxin 2 (TRX2)-peroxiredoxin 3 (PRX3) antioxidant network.
- Assessed the impact of gentian violet (GV) on TS modification of PRX3 and its cytotoxic activity.
Main Results:
- TS inhibited FOXM1 expression and activated ERK1/2 in MM cells in a dose-dependent and redox-dependent manner.
- TS was found to covalently adduct cysteine residues in peroxiredoxin 3 (PRX3), altering its electrophoretic mobility.
- Reduction of mitochondrial TRX2 levels by gentian violet (GV) enhanced PRX3 modification by TS and significantly increased its cytotoxicity.
Conclusions:
- Thiostrepton (TS) exerts its effects by covalently adducting PRX3, thereby disrupting a key mitochondrial antioxidant network.
- This disruption of the TR2/TRX2/PRX3 antioxidant system counters chronic mitochondrial oxidative stress.
- Redox-active compounds like GV can enhance TS efficacy, suggesting a combinatorial therapeutic approach for mesothelioma targeting mitochondrial redox balance.
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