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NO-mediated chemoresistance in C6 glioma cells
Ding-I Yang1, Jiu-Haw Yin, Snigdha Mishra
1Department of Neurology and Center for the Study of Nervous System Injury, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Abstract:
Expression of inducible nitric oxide synthase (iNOS) in malignant glioma and other tumors has been extensively documented. Massive production of NO by iNOS has been shown to exert tumoricidal effects. However, NO may enhance vasodilation and promote neovascularization, thereby facilitating tumor growth. Compared to the effects of NO on tumor cell death and survival, correlation between NO and cytotoxicity of chemotherapeutic reagents in glioma have been less well characterized. Another gene product often linked to tumor malignancy is hypoxia-inducible factor-1 (HIF-1). HIF-1 is a transcription factor that renders malignant tumors adaptive to hypoxic stress during massive vascularization and tumor invasion. Interestingly, HIF-1 also contributes to iNOS induction under hypoxia. We have characterized the interrelationship between iNOS, HIF-1 and chemoresistance. We note that increased NO synthesis by cytokine exposure or iNOS overexpression neutralized the cytotoxicity of 1,3-bis(2-chloroethyl)-1-nitrosourea (BCNU) and 1-(2-chloroethyl)-3-cyclohexyl-1-nitrosourea (CCNU), but not cisplatin, in rat C6 glioma cells. Both BCNU and CCNU are chloroethylnitrosoureas that kill tumor cells via carbamoylating and alkylating actions. Further studies indicated that iNOS only neutralized carbamoylating action of chloroethylnitrosoureas. Expression of iNOS may inhibit HIF-1 activity under hypoxia in C6 glioma cells transfected with a VEGF promoter-driven luciferase gene. Pretreatment of C6 cells with N-acetyl-l-cysteine (NAC), an antioxidant, nullified the inhibitory effect of iNOS on HIF-1 binding. That NO generated by iNOS expression inhibits HIF-1 activity in hypoxic C6 cells reveals a negative feedback loop in the HIF-1 --> iNOS cascade. Together these results suggest a complicated role of NO in malignant tumor growth, survival and invasion.
Insights
Inducible nitric oxide synthase (iNOS) affects glioma chemoresistance, neutralizing certain drugs while inhibiting hypoxia-inducible factor-1 (HIF-1) activity. This complex role of nitric oxide (NO) impacts tumor growth and invasion.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Research
Background:
- Inducible nitric oxide synthase (iNOS) produces nitric oxide (NO), which has complex roles in cancer, including potential tumoricidal effects and promotion of tumor growth via neovascularization.
- Hypoxia-inducible factor-1 (HIF-1) is crucial for tumor adaptation to hypoxia, promoting vascularization and invasion, and can induce iNOS expression.
Purpose of the Study:
- To investigate the interrelationship between iNOS, HIF-1, and chemoresistance in malignant glioma.
- To elucidate the specific mechanisms by which NO influences the cytotoxicity of chemotherapeutic agents in glioma cells.
Main Methods:
- Utilized rat C6 glioma cells.
- Assessed the effects of iNOS expression and NO synthesis on the cytotoxicity of BCNU, CCNU, and cisplatin.
- Investigated the impact of iNOS on HIF-1 activity under hypoxia using a VEGF promoter-driven luciferase reporter assay.
- Examined the role of N-acetyl-l-cysteine (NAC) as an antioxidant.
Main Results:
- Increased NO synthesis via iNOS or cytokine exposure neutralized the cytotoxicity of chloroethylnitrosoureas (BCNU, CCNU) but not cisplatin in C6 glioma cells.
- iNOS specifically inhibited the carbamoylating action of chloroethylnitrosoureas.
- iNOS expression inhibited HIF-1 activity in hypoxic C6 cells, suggesting a negative feedback loop.
- N-acetyl-l-cysteine (NAC) pretreatment nullified the inhibitory effect of iNOS on HIF-1 binding.
Conclusions:
- Nitric oxide (NO) produced by iNOS has a complex and context-dependent role in malignant glioma, influencing chemoresistance and tumor adaptation.
- The findings reveal a negative feedback mechanism where NO inhibits HIF-1 activity under hypoxia.
- Understanding these interactions is crucial for developing effective glioma therapies.