Anti-Inflammatory Action and Mechanisms of Resveratrol
Abstract
:1. Introduction
2. Absorption and Metabolism of Resveratrol
3. The Anti-Inflammatory Activity of Resveratrol
4. Potential Anti-Inflammatory Pathways of Resveratrol
4.1. Arachidonic Acid (AA) Pathway
4.2. NF-κB Pathway
4.3. MAPK Pathway
4.4. AP-1 Pathway
4.5. Antioxidant Defense Pathways
5. Summary and Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Plants | Content |
---|---|
Mulberries | 5 mg of resveratrol per 100 g |
Lingonberries | 3 mg per 100 g |
Cranberries | 1.92 mg of resveratrol per 100 g |
Red currants | 1.57 mg of resveratrol per 100 g |
Bilberries | 0.67 mg of resveratrol per 100 g |
Blueberries | 0.383 mg per 100 g |
Peanuts | 1.12 mg of resveratrol per 100 g |
Pistachios | 0.11 mg of resveratrol per 100 g |
Fresh grapes | 0.24 to 1.25 mg per cup (160 g) |
Red grape juice | 0.5 mg per liter |
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Meng, T.; Xiao, D.; Muhammed, A.; Deng, J.; Chen, L.; He, J. Anti-Inflammatory Action and Mechanisms of Resveratrol. Molecules 2021, 26, 229. https://doi.org/10.3390/molecules26010229
Meng T, Xiao D, Muhammed A, Deng J, Chen L, He J. Anti-Inflammatory Action and Mechanisms of Resveratrol. Molecules. 2021; 26(1):229. https://doi.org/10.3390/molecules26010229
Chicago/Turabian StyleMeng, Tiantian, Dingfu Xiao, Arowolo Muhammed, Juying Deng, Liang Chen, and Jianhua He. 2021. "Anti-Inflammatory Action and Mechanisms of Resveratrol" Molecules 26, no. 1: 229. https://doi.org/10.3390/molecules26010229
APA StyleMeng, T., Xiao, D., Muhammed, A., Deng, J., Chen, L., & He, J. (2021). Anti-Inflammatory Action and Mechanisms of Resveratrol. Molecules, 26(1), 229. https://doi.org/10.3390/molecules26010229