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Published on: October 29, 2020
Natural Product Driven Activation of UCP1 and Tumor Metabolic Suppression: Integrating Thermogenic Nutrient
1Department of Biology Education, Daegu University, 201, Daegudae-ro, Gyeongsan-si 38453, Gyeongsangbuk-do, Republic of Korea.
Abstract:
Metabolic reprogramming allows cancer cells to proliferate rapidly, survive nutrient limitation, and resist stress, making tumor metabolism an important therapeutic target. However, pharmacological inhibition of metabolic enzymes often causes systemic toxicity and compensatory pathway activation. To overcome these limitations, recent studies have highlighted an alternative host-centered strategy based on increasing systemic energy expenditure. Recent studies highlight an alternative strategy in which the host increases energy expenditure through uncoupling protein 1 (UCP1) dependent thermogenesis, thereby lowering systemic glucose, fatty acid, and nucleotide availability for tumors. Engineered beige adipocytes overexpressing UCP1, PR domain-containing protein 16 (PRDM16), or peroxisome proliferator-activated receptor gamma coactivator 1 alpha (PPARGC1A/PGC1A) suppress tumor growth through nutrient competition, suggesting that activating endogenous UCP1 may provide a non-genetic and physiologically aligned anticancer approach. Building on this concept, natural products such as polyphenols, terpenoids, alkaloids, and carotenoids have emerged as promising UCP1 activators that stimulate beige and brown adipocyte thermogenesis through pathways involving AMP-activated protein kinase (AMPK), sirtuin 1 (SIRT1), PGC1A, PRDM16, and mitochondrial biogenesis. In parallel, computational studies further indicate that several plant-derived compounds bind directly to the central cavity of UCP1 with high affinity, offering structural support for their thermogenic action. Importantly, many of these compounds also inhibit cancer cell intrinsic metabolism by reducing glycolysis, oxidative phosphorylation, lipid synthesis, and amino acid dependent anaplerosis. This review integrates UCP1 biology, natural product mediated thermogenesis, molecular docking evidence, and tumor metabolic suppression, proposing a unified framework in which natural compounds impose coordinated metabolic pressure on cancer through both adipocyte-driven nutrient competition and direct inhibition of tumor metabolism.
Insights
Natural compounds activate uncoupling protein 1 (UCP1) thermogenesis to reduce tumor nutrient availability. These compounds also directly inhibit cancer cell metabolism, offering a dual-action anticancer strategy.
Area of Science:
- Metabolic reprogramming in cancer
- Host-centered therapeutic strategies
- Thermogenesis and cancer metabolism
Background:
- Tumor metabolism is a key therapeutic target, but direct inhibition causes toxicity.
- Host-centered strategies increasing energy expenditure offer an alternative approach.
- Uncoupling protein 1 (UCP1) dependent thermogenesis lowers systemic nutrient availability for tumors.
Purpose of the Study:
- To review the role of UCP1 activation by natural products in cancer therapy.
- To explore the mechanisms of UCP1-mediated thermogenesis and tumor metabolic suppression.
- To propose a unified framework for natural compound-based anticancer strategies.
Main Methods:
- Review of UCP1 biology and its role in thermogenesis.
- Analysis of natural products as UCP1 activators (polyphenols, terpenoids, alkaloids, carotenoids).
- Integration of computational studies (molecular docking) and evidence of tumor metabolic inhibition.
Main Results:
- Natural products activate UCP1 thermogenesis via AMPK, SIRT1, PGC1A, PRDM16 pathways.
- Plant-derived compounds show high affinity binding to UCP1, supporting thermogenic action.
- These compounds inhibit cancer cell metabolism by reducing glycolysis, oxidative phosphorylation, and synthesis pathways.
Conclusions:
- Activating endogenous UCP1 through natural products is a promising anticancer approach.
- Natural compounds exert dual action: adipocyte-driven nutrient competition and direct tumor metabolic inhibition.
- This integrated strategy offers a non-genetic, physiologically aligned method to impose metabolic pressure on cancer.
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