Crosstalk between mitochondrial metabolism and oxidoreductive homeostasis: a new perspective for understanding the effects of bioactive dietary compounds

Nutr Res Rev. 2020 Jun;33(1):90-101. doi: 10.1017/S0954422419000210. Epub 2019 Oct 16.

Abstract

Mitochondria play an important role in a number of fundamental cellular processes, including energy production, biosynthetic pathways and cellular oxidoreductive homeostasis (redox status), and their dysfunction can lead to numerous pathophysiological consequences. As the biochemical mechanisms orchestrating mitochondrial metabolism and redox homeostasis are functionally linked, mitochondria have been identified as a potential therapeutic target. Consequently, considerable effort has been made to evaluate the efficacy of natural compounds that modulate mitochondrial function. Molecules produced by plants (for example, polyphenols and isothiocyanates) have been shown to modulate mitochondrial metabolism/biogenesis and redox status; however, despite the existence of a functional link, few studies have considered the combined efficacy of these mitochondrial functions. The present review provides a complete overview of the molecular pathways involved in modulating mitochondrial metabolism/biogenesis and redox status. Crosstalk between these critical mechanisms is also discussed, whilst major data from the literature regarding their antioxidant abilities are described and critically analysed. We also provide a summary of recent evidence regarding the ability of several plant-derived compounds to target these mitochondrial functions. An in-depth understanding of the functional link between mitochondrial metabolism/biogenesis and redox status could facilitate the analysis of the biological effects of natural compounds as well as the development of new therapeutic approaches.

Keywords: Antioxidant mechanisms; Bioactive molecules; Mitochondrial dysfunction; Oxidative stress; Reactive oxygen species.

Publication types

  • Review

MeSH terms

  • Homeostasis
  • Humans
  • Mitochondria* / metabolism
  • Oxidation-Reduction
  • Oxidative Stress
  • Polyphenols* / metabolism
  • Polyphenols* / pharmacology
  • Reactive Oxygen Species / metabolism

Substances

  • Polyphenols
  • Reactive Oxygen Species