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Disulfiram induces apoptosis in human melanoma cells: a redox-related process
Dazhi Cen1, Rachel I Gonzalez, Julie A Buckmeier
1Department of Medicine, Chao Family Comprehensive Cancer Center, College of Medicine, University of California, Irvine, 101 City Drive South, Building 23, Suite 403, Orange, CA 92868, USA.
Abstract:
Melanoma is highly resistant to conventional chemotherapy. We have demonstrated that redox regulation in melanoma cells is aberrant, and redox-modulating agents can induce cell apoptosis. We have currently explored the effect of disulfiram (DSF), a member of the dithiocarbamate family, on apoptosis of melanoma cells in vitro. Human metastatic melanoma cells c81-46A, c81-61, and c83-2C were treated with DSF and apoptosis measured. DSF, at a dose of 25-50 ng/ml, consistently caused a 4-6-fold increase in apoptosis. The same dose of DSF did not significantly affect apoptosis in melanocytes. Coincubation of N-acetyl-cysteine reversed the DSF-induced apoptosis. Buthionine sulfoximine (BSO), an inhibitor of gamma-glutamyl-cysteine synthetase, as a single agent caused a approximately 2-fold increase in apoptosis when incubated with melanoma cells for 4 days. BSO slightly enhanced the level of apoptosis induced by DSF (4-10% higher than DSF alone). Intracellular glutathione was remarkably depleted with BSO treatment. DSF did not cause glutathione depletion; however, the ratio of reduced and oxidized glutathione was significantly decreased (14% of control), and N-acetyl-cysteine partially restored the ratio to 30% of control. There was a transient (2-fold) elevation of intracellular superoxide level after 24 h of DSF treatment (before the overt apoptosis). The intracellular H2O2 level progressively decreased with time. DSF decreased the mitochondrial membrane polarization in a time-dependent manner, and there was a significant inverse correlation between apoptosis and mitochondrial membrane polarization. We propose that DSF-induced apoptosis is redox related but involves a different mechanism from BSO-induced apoptosis in tumor cells. Our findings have provided new data for additional understanding of drug-induced apoptosis in melanoma cells and suggests an alternative therapeutic approach to melanoma.
Insights
Disulfiram (DSF) effectively induces apoptosis in melanoma cells by altering redox balance, offering a potential new therapy. N-acetyl-cysteine partially reverses this effect, highlighting the role of redox modulation in melanoma treatment.
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Melanoma exhibits resistance to conventional chemotherapy.
- Aberrant redox regulation in melanoma cells suggests susceptibility to redox-modulating agents.
- Disulfiram (DSF) is a dithiocarbamate with potential anti-cancer properties.
Purpose of the Study:
- To investigate the in vitro effect of disulfiram (DSF) on apoptosis in human metastatic melanoma cells.
- To explore the redox mechanisms underlying DSF-induced apoptosis in melanoma.
- To compare DSF's mechanism with buthionine sulfoximine (BSO)-induced apoptosis.
Main Methods:
- Treatment of human metastatic melanoma cell lines (c81-46A, c81-61, c83-2C) with DSF and BSO.
- Measurement of apoptosis, intracellular glutathione levels, and mitochondrial membrane potential.
- Assessment of reduced/oxidized glutathione ratio and intracellular superoxide/H2O2 levels.
Main Results:
- DSF (25-50 ng/ml) significantly increased melanoma cell apoptosis (4-6 fold) without affecting melanocytes.
- DSF decreased the reduced/oxidized glutathione ratio and mitochondrial membrane polarization, with N-acetyl-cysteine partially reversing these effects.
- BSO depleted glutathione and caused a modest increase in apoptosis, slightly enhancing DSF's effect.
Conclusions:
- DSF induces apoptosis in melanoma cells through redox-related mechanisms distinct from BSO.
- DSF's effect on redox balance and mitochondrial function suggests a novel therapeutic approach for melanoma.
- Further understanding of drug-induced apoptosis in melanoma may lead to alternative treatment strategies.