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Updated: May 16, 2026

Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
Endogenously produced nitric oxide mitigates sensitivity of melanoma cells to cisplatin
Luiz C Godoy1, Chase T M Anderson, Rajdeep Chowdhury
1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Melanoma patients experience inferior survival after biochemotherapy when their tumors contain numerous cells expressing the inducible isoform of NO synthase (iNOS) and elevated levels of nitrotyrosine, a product derived from NO. Although several lines of evidence suggest that NO promotes tumor growth and increases resistance to chemotherapy, it is unclear how it shapes these outcomes. Here we demonstrate that modulation of NO-mediated S-nitrosation of cellular proteins is strongly associated with the pattern of response to the anticancer agent cisplatin in human melanoma cells in vitro. Cells were shown to express iNOS constitutively, and to generate sustained nanomolar levels of NO intracellularly. Inhibition of NO synthesis or scavenging of NO enhanced cisplatin-induced apoptotic cell death. Additionally, pharmacologic agents disrupting S-nitrosation markedly increased cisplatin toxicity, whereas treatments favoring stabilization of S-nitrosothiols (SNOs) decreased its cytotoxic potency. Activity of the proapoptotic enzyme caspase-3 was higher in cells treated with a combination of cisplatin and chemicals that decreased NO/SNOs, whereas lower activity resulted from cisplatin combined with stabilization of SNOs. Constitutive protein S-nitrosation in cells was detected by analysis with biotin switch and reduction/chemiluminescence techniques. Moreover, intracellular NO concentration increased significantly in cells that survived cisplatin treatment, resulting in augmented S-nitrosation of caspase-3 and prolyl-hydroxylase-2, the enzyme responsible for targeting the prosurvival transcription factor hypoxia-inducible factor-1α for proteasomal degradation. Because activities of these enzymes are inhibited by S-nitrosation, our data thus indicate that modulation of intrinsic intracellular NO levels substantially affects cisplatin toxicity in melanoma cells. The underlying mechanisms may thus represent potential targets for adjuvant strategies to improve the efficacy of chemotherapy.
Insights
Nitric oxide (NO) influences melanoma cell response to cisplatin chemotherapy. Modulating NO levels and protein S-nitrosation can enhance or reduce cisplatin
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Melanoma patients with high inducible nitric oxide synthase (iNOS) and nitrotyrosine show poor survival after biochemotherapy.
- Nitric oxide (NO) is implicated in tumor growth and chemotherapy resistance, but its precise role is unclear.
Purpose of the Study:
- To investigate the association between NO-mediated protein S-nitrosation and cisplatin response in human melanoma cells.
- To elucidate the mechanisms by which NO affects cisplatin-induced apoptosis and cell survival.
Main Methods:
- Human melanoma cells were analyzed for constitutive iNOS expression and intracellular NO levels.
- Pharmacological agents were used to inhibit NO synthesis, scavenge NO, disrupt S-nitrosation, or stabilize S-nitrosothiols (SNOs).
- Biotin switch and reduction/chemiluminescence techniques assessed protein S-nitrosation; caspase-3 activity was measured.
Main Results:
- Inhibition of NO synthesis or NO scavenging enhanced cisplatin-induced apoptosis.
- Disrupting S-nitrosation increased cisplatin toxicity, while stabilizing S-nitrosothiols decreased it.
- Caspase-3 activity was elevated with decreased NO/SNOs and reduced with stabilized SNOs during cisplatin treatment.
Conclusions:
- Modulation of intracellular NO levels significantly impacts cisplatin toxicity in melanoma cells.
- Increased intracellular NO post-cisplatin treatment augmented S-nitrosation of caspase-3 and prolyl-hydroxylase-2, inhibiting their activity.
- Targeting NO-mediated protein S-nitrosation may offer novel adjuvant strategies to improve melanoma chemotherapy efficacy.
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