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Melatonin Protects Methamphetamine-Induced Neuroinflammation Through NF-κB and Nrf2 Pathways in Glioma Cell Line
Pichaya Jumnongprakhon1, Piyarat Govitrapong, Chainarong Tocharus
1Department of Anatomy, Faculty of Medicine, Chiang Mai University, Chiang Mai, 50200, Thailand.
Abstract:
Methamphetamine (METH) is known as a toxin for neuronal and glial cells. Previous studies have found that METH-induced glial cell death and inflammation is mediated by oxidative stress. However, the exact mechanisms of the inflammatory response remain unclear. Therefore, we hypothesized that the activation of nuclear factor-κB (NF-κB) signaling, a key mediator of inflammation, and the inhibition of nuclear factor erythroid 2-related factor-2 (Nrf2) signaling, a regulator of the antioxidant response, would be significant events occurring in response to METH-induced inflammation in a rat glioma cell line (C6 cells). Our results show that METH increased the production of nitric oxide (NO) and up-regulated the expression of its main regulatory protein, inducible nitric oxide synthase (iNOS). METH also induced NF-κB activation by increasing inhibitory κBα (IκBα) degradation and translocation of the NF-κB (p65) subunit into the nucleus. Additionally, METH inhibited the activation of the Nrf2 pathway by decreasing the translocation of Nrf2 into the nucleus and also by suppressing the expression of heme oxygenase-1 (HO-1), NAD(P)H quinone oxidoreductase-1 (NQO-1), and glutamate-cysteine ligase catalytic subunit (γ-GCLC), resulting in the suppression of superoxide dismutase (SOD) activity. Pretreatment with melatonin effectively promoted Nrf2 activation and reversed the METH-induced NF-κB response. Melatonin increased the expression of HO-1, NQO-1, and γ-GCLC, resulting in increased SOD activity. In addition, melatonin also decreased IκBα degradation, translocation of the p65 subunit, and expression of iNOS, resulting in decreased NO production. Taken together, our results indicate that melatonin diminishes the proinflammatory mediator in METH-stimulated C6 cells by inhibiting NF-κB activation and inducing Nrf2-mediated HO-1, NQO-1, and γ-GCLC expression.
Insights
Methamphetamine (METH) triggers inflammation and oxidative stress in C6 cells by activating NF-κB and inhibiting Nrf2 pathways. Melatonin treatment counteracts these effects, reducing inflammation and oxidative damage.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Methamphetamine (METH) is a neurotoxin causing glial cell death and inflammation via oxidative stress.
- The precise molecular mechanisms underlying METH-induced glial inflammation are not fully understood.
Purpose of the Study:
- To investigate the roles of nuclear factor-κB (NF-κB) and nuclear factor erythroid 2-related factor-2 (Nrf2) signaling pathways in METH-induced inflammation in rat C6 glioma cells.
- To evaluate the protective effects of melatonin on METH-induced cellular damage.
Main Methods:
- Cultured rat C6 glioma cells were treated with METH.
- Key signaling proteins (NF-κB, Nrf2, IκBα, p65) and inflammatory markers (iNOS, NO) were assessed.
- Antioxidant enzyme expression (HO-1, NQO-1, γ-GCLC, SOD) and activity were measured.
- Cells were pretreated with melatonin before METH exposure.
Main Results:
- METH increased nitric oxide (NO) and inducible nitric oxide synthase (iNOS) expression.
- METH activated NF-κB signaling via IκBα degradation and p65 nuclear translocation.
- METH inhibited Nrf2 activation, decreasing nuclear Nrf2 and downstream antioxidant enzymes (HO-1, NQO-1, γ-GCLC), leading to reduced SOD activity.
- Melatonin pretreatment reversed METH-induced NF-κB activation and NO production.
- Melatonin enhanced Nrf2 activation, increasing antioxidant enzyme expression and SOD activity.
Conclusions:
- METH induces inflammation in C6 cells by activating NF-κB and suppressing Nrf2-mediated antioxidant responses.
- Melatonin mitigates METH-induced inflammation and oxidative stress by inhibiting NF-κB and promoting Nrf2 signaling.
- Melatonin's protective effects involve upregulating HO-1, NQO-1, and γ-GCLC, thereby enhancing antioxidant capacity.

