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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.
Abstract:
Oncometabolites are defined as small-molecule components (or enantiomers) of normal metabolism whose accumulation causes signaling dysregulation to establish a milieu that initiates carcinogenesis. In a similar manner, we propose the term "gerometabolites" to refer to small-molecule components of normal metabolism whose depletion causes signaling dysregulation to establish a milieu that drives aging. In an investigation of the pathogenic activities of the currently recognized oncometabolites R(-)-2-hydroxyglutarate (2-HG), fumarate, and succinate, which accumulate due to mutations in isocitrate dehydrogenases (IDH), fumarate hydratase (FH), and succinate dehydrogenase (SDH), respectively, we illustrate the fact that metabolic pseudohypoxia, the accumulation of hypoxia-inducible factor (HIFα) under normoxic conditions, and the subsequent Warburg-like reprogramming that shifts glucose metabolism from the oxidative pathway to aerobic glycolysis are the same mechanisms through which the decline of the "gerometabolite" nicotinamide adenine dinucleotide (NAD)(+) reversibly disrupts nuclear-mitochondrial communication and contributes to the decline in mitochondrial function with age. From an evolutionary perspective, it is reasonable to view NAD(+)-driven mitochondrial homeostasis as a conserved response to changes in energy supplies and oxygen levels. Similarly, the natural ability of 2-HG to significantly alter epigenetics might reflect an evolutionarily ancient role of certain metabolites to signal for elevated glutamine/glutamate metabolism and/or oxygen deficiency. However, when chronically altered, these responses become conserved causes of aging and cancer. Because HIFα-driven pseudohypoxia might drive the overproduction of 2-HG, the intriguing possibility exists that the decline of gerometabolites such as NAD(+) could promote the chronic accumulation of oncometabolites in normal cells during aging. If the sole activation of a Warburg-like metabolic reprogramming in normal tissues might be able to significantly increase the endogenous production of bona fide etiological determinants in cancer, such as oncometabolites, this undesirable trade-off between mitochondrial dysfunction and activation of oncometabolites production might then pave the way for the epigenetic initiation of carcinogenesis in a strictly metabolic-dependent manner. Perhaps it is time to definitely adopt the view that aging and aging diseases including cancer are governed by a pivotal regulatory role of metabolic reprogramming in cell fate decisions.
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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