Polyphenols as Antioxidant/Pro-Oxidant Compounds and Donors of Reducing Species: Relationship with Human Antioxidant Metabolism
Abstract
:1. Introduction
2. Chemical Structure of Polyphenols and Antioxidant Properties Based on Their Aromatic Resonant Structure
3. Oxidation of Polyphenolic Compounds to Quinones
4. Are Polyphenols Antioxidants, Pro-Oxidants, Or Both?
4.1. Polyphenols and Their Antioxidant Activity
- They can prevent the initiation of the chain of oxidation reactions by combining with initiator radicals, such as hydroxyl radicals, e.g., caffeic acid or hydroxytyrosol [70].
- They can decompose peroxides by converting them to non-radical species [71].
- They can act as free radical scavengers [72].
- They can act as chelating agents for transition metal ions and reduce the possibility of generating free radicals (as in the Fenton reaction) [73].
- They can bind to cell membranes or combine with other biomolecules, thus reducing the consumption of metabolic antioxidants [74].
- Polyphenolic compounds have the ability to induce, activate, inhibit, or protect enzymatic metabolism [75].
- The antioxidant activity of polyphenols is well-known and derives from a combination of their Fe-chelating and FR-scavenging properties, together with their inhibitory activity on oxidase enzymes, lipoxygenase (LO), cyclooxygenase (COX), myeloperoxidase (MPO), NADPH oxidase (NOX), and xanthine oxidase (XO), thus preventing the endogenous generation of ROS in vivo [76].
4.2. Polyphenols and Their Pro-Oxidant Activity
4.3. Polyphenols Are Both Antioxidants and Pro-Oxidants Due to the Way They Are Metabolized
4.4. Methods for the Determination of the Antioxidant Activity
5. Relationship of Polyphenols and Quinones with the Antioxidant Metabolism Pathway
6. Inhibitory Capacity of Polyphenols on Transcription Factors and on Enzymatic Mechanisms Involved in Several Diseases
6.1. Polyphenols Are Inhibitors of NF-κB Transcription Factor
6.2. Polyphenols Are Inhibitors of AP-1 Transcription Factor
- Phosphorylation of the transcription factors c-Jun and c-Fos, initially inactive, as they are bound to a protein called c-Jun-associated protein (JUN-AP). Phosphorylation of c-Jun and c-Fos by protein kinases separates them from JUN-AP and allows them to dimerize.
- Once phosphorylated, c-Jun and c-Fos can dimerize to form the active AP-1 complex, which can then bind to specific DNA sequences, called AP-1 binding sites, activating the transcription of genes involved in differentiation, proliferation, and apoptosis.
6.3. Polyphenols Are Inhibitors of NADPH Oxidases (NOX)
6.4. Polyphenols Are Inhibitors of the PI3K/AkT Axis
6.5. Polyphenols Are Inhibitors of Anti-Apoptotic BCL-2 Family
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Resveratrol | Hydroxytyrosol | Luteolin |
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Andrés, C.M.C.; Pérez de la Lastra, J.M.; Juan, C.A.; Plou, F.J.; Pérez-Lebeña, E. Polyphenols as Antioxidant/Pro-Oxidant Compounds and Donors of Reducing Species: Relationship with Human Antioxidant Metabolism. Processes 2023, 11, 2771. https://doi.org/10.3390/pr11092771
Andrés CMC, Pérez de la Lastra JM, Juan CA, Plou FJ, Pérez-Lebeña E. Polyphenols as Antioxidant/Pro-Oxidant Compounds and Donors of Reducing Species: Relationship with Human Antioxidant Metabolism. Processes. 2023; 11(9):2771. https://doi.org/10.3390/pr11092771
Chicago/Turabian StyleAndrés, Celia María Curieses, José Manuel Pérez de la Lastra, Celia Andrés Juan, Francisco J. Plou, and Eduardo Pérez-Lebeña. 2023. "Polyphenols as Antioxidant/Pro-Oxidant Compounds and Donors of Reducing Species: Relationship with Human Antioxidant Metabolism" Processes 11, no. 9: 2771. https://doi.org/10.3390/pr11092771
APA StyleAndrés, C. M. C., Pérez de la Lastra, J. M., Juan, C. A., Plou, F. J., & Pérez-Lebeña, E. (2023). Polyphenols as Antioxidant/Pro-Oxidant Compounds and Donors of Reducing Species: Relationship with Human Antioxidant Metabolism. Processes, 11(9), 2771. https://doi.org/10.3390/pr11092771