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.

Theranostics
|March 9, 2026
PubMed

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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