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The Antioxidant Effects of Thymoquinone in Activated BV-2 Murine Microglial Cells
Makini K Cobourne-Duval1, Equar Taka1, Patricia Mendonca1
1College of Pharmacy and Pharmaceutical Sciences, Florida A&M University, Room 104 Dyson Pharmacy Building, 1520 ML King Blvd, Tallahassee, FL, 32307, USA.
Abstract:
Both neuroinflammation and microglial activation are pathological markers of a number of central nervous system (CNS) diseases. During chronic activation of the microglial cells, the induced release of excessive amounts of reactive oxygen species (ROS) and pro-inflammatory cytokines have been implicated in several neurodegenerative diseases such as Alzheimer's disease. Thymoquinone (TQ), a major bioactive compound of the natural product Nigella sativa seed, has been shown to be effective against numerous oxidative stress-induced and inflammatory disorders as well as possess neuroprotective properties. In this study, we investigated the antioxidant effects of TQ on LPS/IFNγ or H2O2-activated BV-2 microglia by assessing the levels of specific oxidative stress markers, the activities of selected antioxidant enzymes, as well as profiling 84 key genes related to oxidative stress via real-time reverse transcription (RT2) PCR array. Our results showed that in the LPS/IFNγ-activated microglia TQ significantly decreased the cellular production of both superoxide and nitric oxide fourfold (p < 0.0001) and sixfold (p < 0.0001), respectfully. In the H2O2-activated microglia, TQ also significantly decreased the cellular production of superoxide threefold (p < 0.0001) and significantly decreased hydrogen peroxide levels ~20 % (p < 0.05). Moreover, ΤQ treatment significantly decreased the levels oxidative stress in the activated BV-2 as evidenced by the assessed levels of lipid hydroperoxides and glutathione. TQ significantly decreased the levels of lipid hydroperoxides twofold (p < 0.0001) and significantly increased the levels of antioxidant glutathione 2.5-fold (p < 0.0001) in the LPS/IFNγ-activated BV-2 cells. In the H2O2-activated microglia, TQ significantly decreased lipid hydroperoxides eightfold (p < 0.0001) and significantly increased glutathione 15 % (p < 0.05). Activities of antioxidant enzymes, superoxide dismutase (SOD) and catalase (CAT), in the TQ-treated microglial cells also reflected a reduced oxidative stress status in the cellular environment. SOD and CAT activities were sixfold (p < 0.0001) and fivefold (p < 0.0001) lower, respectfully, for the LPS/INFγ-activated microglia treated with TQ in comparison to those that were not. For the H2O2-activated microglia treated with TQ, SOD and CAT activities were fivefold (p < 0.0001) and threefold (p < 0.01) lower, respectfully, compared to the untreated. Furthermore, RT2 PCR array profiling of the selected 84 genes related to oxidative stress confirmed that TQ treatment in the LPS/IFNγ-activated microglia downregulates specific pro-oxidant genes, upregulates specific anti-oxidant genes, and enhances the up- or downregulation of specific genes related to the cells' natural antioxidant defense against LPS/IFNγ activation. These findings suggest that TQ may be utilized as an effective therapeutic agent for delaying the onset and/or slowing/preventing the progression of microglia-derived neurodegeneration propagated by excessive oxidative stress in the CNS.
Insights
Thymoquinone (TQ) from Nigella sativa seeds reduces oxidative stress in activated microglia. This natural compound shows potential for treating neurodegenerative diseases linked to inflammation and oxidative damage.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Neuroinflammation and microglial activation are key in CNS diseases like Alzheimer's.
- Chronic microglial activation releases reactive oxygen species (ROS) and pro-inflammatory cytokines, contributing to neurodegeneration.
- Thymoquinone (TQ), from Nigella sativa, exhibits antioxidant, anti-inflammatory, and neuroprotective properties.
Purpose of the Study:
- To investigate the antioxidant effects of Thymoquinone (TQ) on activated BV-2 microglia.
- To assess TQ's impact on oxidative stress markers, antioxidant enzyme activities, and gene expression in microglia.
Main Methods:
- BV-2 microglia were activated using LPS/IFNγ or H₂O₂.
- Oxidative stress markers (superoxide, nitric oxide, hydrogen peroxide, lipid hydroperoxides, glutathione) were measured.
- Activities of antioxidant enzymes (SOD, CAT) were assessed.
- Gene expression profiling of 84 oxidative stress-related genes was performed using RT² PCR array.
Main Results:
- TQ significantly reduced superoxide and nitric oxide production in LPS/IFNγ-activated microglia.
- TQ decreased superoxide and hydrogen peroxide levels in H₂O₂-activated microglia.
- TQ treatment lowered lipid hydroperoxides and increased glutathione levels in both activation models.
- TQ modulated the activities of superoxide dismutase (SOD) and catalase (CAT) enzymes.
- Gene expression analysis revealed TQ's role in downregulating pro-oxidant and upregulating antioxidant genes.
Conclusions:
- Thymoquinone demonstrates significant antioxidant effects in activated microglia.
- TQ mitigates oxidative stress by reducing ROS production and enhancing antioxidant defenses.
- These findings suggest TQ's therapeutic potential for neurodegenerative conditions associated with oxidative stress and neuroinflammation.

