Gerometabolites: the pseudohypoxic aging side of cancer oncometabolites

Javier A Menendez1, Tomás Alarcón2, Jorge Joven3

  • 1Metabolism & Cancer Group; Translational Research Laboratory; Catalan Institute of Oncology; Girona, Spain; Molecular Oncology Group; Girona Biomedical Research Institute (IDIBGI); Girona, Spain.

Insights

Metabolites that accumulate cause cancer, while depleted metabolites drive aging. This study links aging, mitochondrial dysfunction, and cancer initiation through metabolic reprogramming.

Area of Science:

  • Metabolic reprogramming
  • Aging and carcinogenesis
  • Mitochondrial function

Background:

  • Oncometabolites, like R(-)-2-hydroxyglutarate (2-HG), fumarate, and succinate, accumulate due to mutations and promote cancer.
  • Gerometabolites are proposed as metabolic components whose depletion drives aging.
  • Nicotinamide adenine dinucleotide (NAD(+)) decline is linked to aging and disrupted nuclear-mitochondrial communication.

Purpose of the Study:

  • To propose the term 'gerometabolites' for age-driving depleted metabolites.
  • To investigate shared mechanisms between oncometabolite accumulation and gerometabolite depletion in aging and cancer.
  • To explore the link between metabolic pseudohypoxia, Warburg-like reprogramming, and the decline of NAD(+) in aging.

Main Methods:

  • Comparative analysis of oncometabolite (2-HG, fumarate, succinate) and gerometabolite (NAD(+)) roles in cellular signaling.
  • Investigation of metabolic pseudohypoxia and hypoxia-inducible factor (HIFα) in normoxic conditions.
  • Examination of Warburg-like metabolic reprogramming and its impact on glucose metabolism and mitochondrial function.

Main Results:

  • Metabolic pseudohypoxia and Warburg-like reprogramming are common mechanisms in both cancer and aging.
  • Decline in NAD(+) disrupts nuclear-mitochondrial communication, contributing to age-related mitochondrial dysfunction.
  • Aging-related decline of gerometabolites may promote oncometabolite accumulation, potentially initiating carcinogenesis.

Conclusions:

  • Aging and cancer share fundamental regulatory pathways driven by metabolic reprogramming.
  • Metabolic dysfunction during aging can create a milieu conducive to cancer development.
  • Understanding metabolic reprogramming is crucial for addressing aging and age-related diseases like cancer.

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