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Mitochondria-Centric Review of Polyphenol Bioactivity in Cancer Models
Jan F Stevens1,2, Johana S Revel1,2,3, Claudia S Maier2,3
11 Department of Pharmaceutical Sciences, Oregon State University , Corvallis, Oregon.
Significance:
Humans are exposed daily to polyphenols in milligram-to-gram amounts through dietary consumption of fruits and vegetables. Polyphenols are also available as components of dietary supplements for improving general health. Although polyphenols are often advertised as antioxidants to explain health benefits, experimental evidence shows that their beneficial cancer preventing and controlling properties are more likely due to stimulation of pro-oxidant and proapoptotic pathways. Recent Advances: The understanding of the biological differences between cancer and normal cell, and especially the role that mitochondria play in carcinogenesis, has greatly advanced in recent years. These advances have resulted in a wealth of new information on polyphenol bioactivity in cell culture and animal models of cancer. Polyphenols appear to target oxidative phosphorylation and regulation of the mitochondrial membrane potential (MMP), glycolysis, pro-oxidant pathways, and antioxidant (adaptive) stress responses with greater selectivity in tumorigenic cells.
Critical Issues:
The ability of polyphenols to dissipate the MMP (Δψm) by a protonophore mechanism has been known for more than 50 years. However, researchers focus primarily on the downstream molecular effects of Δψm dissipation and mitochondrial uncoupling. We argue that the physicochemical properties of polyphenols are responsible for their anticancer properties by virtue of their protonophoric and pro-oxidant properties rather than their specific effects on downstream molecular targets.
Future Directions:
Polyphenol-induced dissipation of Δψm is a physicochemical process that cancer cells cannot develop resistance against by gene mutation. Therefore, polyphenols should receive more attention as agents for cotherapy with cancer drugs to gain synergistic activity. Antioxid. Redox Signal.
Insights
Polyphenols, found in fruits and vegetables, show anticancer properties by targeting cancer cell mitochondria. Their ability to disrupt mitochondrial membrane potential offers a unique therapeutic approach, potentially enhancing cancer treatments.
Area of Science:
- Mitochondrial biology and cancer research
- Natural product chemistry and pharmacology
Background:
- Dietary polyphenols are consumed in significant amounts and are available as supplements.
- While often promoted as antioxidants, their anticancer effects stem from pro-oxidant and pro-apoptotic pathways.
- Recent advances highlight mitochondria's role in carcinogenesis and polyphenol bioactivity.
Purpose of the Study:
- To investigate the anticancer properties of polyphenols, focusing on their interaction with mitochondria.
- To explore the physicochemical mechanisms underlying polyphenol's selective targeting of cancer cells.
Main Methods:
- Review of existing literature on polyphenol bioactivity in cancer cell and animal models.
- Analysis of polyphenol interaction with mitochondrial membrane potential (MMP) and oxidative phosphorylation.
Main Results:
- Polyphenols selectively target tumorigenic cells by affecting mitochondrial membrane potential (MMP), oxidative phosphorylation, and glycolysis.
- The protonophoric and pro-oxidant properties of polyphenols are key to their anticancer effects, rather than downstream molecular targets.
- Polyphenol-induced MMP dissipation is a physicochemical process resistant to cancer cell gene mutation.
Conclusions:
- Polyphenols possess significant anticancer potential due to their ability to disrupt mitochondrial function in cancer cells.
- Their physicochemical properties, particularly protonophoric and pro-oxidant actions, are crucial for their efficacy.
- Polyphenols warrant further investigation as adjuncts to conventional cancer therapies for synergistic effects.
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