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Published on: July 21, 2018
Tumor metabolic plasticity in therapy resistance: from the Warburg effect to mitochondrial hijacking
Yen-Dun Tony Tzeng1, Emmanuel Naveen Raj2, Shih-Hsuan Cheng2
1Department of Surgery, Kaohsiung Veterans General Hospital, Kaohsiung 813, Taiwan.
Abstract:
The clinical efficacy of targeted cancer therapies is persistently undermined by the emergence of acquired resistance. While secondary genetic mutations are well-characterized, increasing evidence implicates non-genetic metabolic reprogramming as a primary driver of survival during the initial phase of treatment. This review elucidates the concept of "Metabolic Shapeshifters"-specifically, drug-tolerant persister cells (DTPs) that dynamically adapt their bioenergetic machinery to evade therapeutic stress. We examine the plasticity between the classical Warburg Effect and the Reverse Warburg Effect, describing how DTPs shift from a glucose-addicted proliferative state to a quiescent phenotype strictly reliant on mitochondrial oxidative phosphorylation (OXPHOS) and fatty acid oxidation. Crucially, we highlight a paradigm shift from intracellular reprogramming to intercellular "organelle parasitism." Recent breakthroughs demonstrate that DTPs actively hijack functional mitochondria from infiltrating immune cells and the stromal network via tunneling nanotubes (TNTs). This predatory behavior not only restores the tumor's respiratory capacity but also induces metabolic exhaustion in T cells, thereby orchestrating immune evasion. Finally, we delineate emerging therapeutic strategies designed to dismantle this metabolic fortress. By targeting the "Achilles' heel" of mitochondrial dependency, disrupting the physical infrastructure of organelle hijacking, and revitalizing immunometabolism, we propose a multi-pronged framework to eradicate DTPs and prevent clinical relapse.
Insights
Cancer drug resistance is driven by "Metabolic Shapeshifters" (drug-tolerant persister cells) that hijack mitochondria. Targeting their metabolic dependency and intercellular organelle transfer offers new therapeutic strategies to prevent relapse.
Area of Science:
- Oncology
- Cancer Metabolism
- Cellular Respiration
Background:
- Acquired resistance to targeted cancer therapies is a major clinical challenge.
- Non-genetic metabolic reprogramming, not just mutations, drives cancer cell survival during treatment.
- Drug-tolerant persister cells (DTPs) exhibit metabolic plasticity to evade therapy.
Purpose of the Study:
- To elucidate the concept of "Metabolic Shapeshifters" (DTPs) and their role in acquired resistance.
- To review the metabolic adaptations, including Warburg and Reverse Warburg effects, employed by DTPs.
- To highlight novel mechanisms of intercellular organelle transfer and their impact on tumor immunity.
Main Methods:
- Review of current literature on cancer cell metabolism and drug resistance.
- Analysis of DTP metabolic reprogramming, including shifts in glucose and fatty acid oxidation.
- Examination of "organelle parasitism" via tunneling nanotubes (TNTs) and mitochondrial hijacking.
Main Results:
- DTPs dynamically switch metabolic phenotypes, shifting from glycolysis to oxidative phosphorylation (OXPHOS).
- DTPs hijack functional mitochondria from immune and stromal cells using TNTs.
- This predatory behavior impairs T cell function and promotes immune evasion, restoring tumor respiratory capacity.
Conclusions:
- Metabolic reprogramming and organelle parasitism are critical mechanisms of cancer drug resistance.
- Targeting DTP mitochondrial dependency and intercellular organelle transfer is a promising therapeutic strategy.
- Revitalizing immunometabolism alongside metabolic targeting may eradicate DTPs and prevent relapse.
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