Tumour mitochondrial DNA mutations drive aerobic glycolysis to enhance checkpoint blockade

Mahnoor Mahmood1, Eric Minwei Liu2, Amy L Shergold1

  • 1Cancer Research UK Beatson Institute, Glasgow, UK.

Insights

Mitochondrial DNA mutations remodel the tumor immune landscape and resistance to cancer therapies. These mutations can be exploited for improved treatment strategies and patient stratification.

Area of Science:

  • Oncology
  • Cancer Metabolism
  • Immunology

Background:

  • Mitochondrial DNA (mtDNA) mutations are common in cancer but their functional role is debated.
  • Truncating mutations in respiratory complex I genes are particularly prevalent.
  • The impact of mtDNA mutations on tumor biology and therapeutic response remains unclear.

Approach:

  • Engineered recurrent truncating mutations in the mtDNA-encoded complex I gene, Mt-Nd5, in murine melanoma models using mtDNA base editing.
  • Investigated metabolic shifts, tumor microenvironment changes, and response to immune checkpoint blockade.
  • Analyzed patient data correlating mtDNA mutation heteroplasmy with treatment response.

Key Points:

  • mtDNA mutations promote pyruvate utilization and increase glycolytic flux, mimicking a Warburg-like metabolic shift.
  • Altered cancer cell metabolism reshapes the tumor microenvironment, promoting an anti-tumor immune response.
  • Tumors with high mtDNA mutation heteroplasmy show increased sensitivity to immune checkpoint blockade.

Conclusions:

  • mtDNA mutations functionally regulate cancer metabolism and tumor immunity.
  • These mutations are sufficient to remodel the tumor immune landscape and overcome therapeutic resistance.
  • mtDNA mutations represent a potential target for cancer therapy and patient stratification.

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