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.

Abstract

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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