The known unknowns of mitochondrial carcinogenesis: de novo NUMTs and intercellular mitochondrial transfer

Tigran Harutyunyan1

  • 1Department of Genetics and Cytology, Yerevan State University, 1 Alex Manoogian, 0025 Yerevan, Armenia.

Mutagenesis
|October 7, 2023
PubMed

Insights

Mitochondrial DNA (mtDNA) insertions into the nuclear genome can drive cancer. Mitochondria transfer between cells also fuels cancer progression, metastasis, and treatment resistance.

Area of Science:

  • Mitochondrial biology
  • Cancer genomics
  • Molecular oncology

Background:

  • Nuclear sequences of mitochondrial origin (NUMTs) arise from mitochondrial DNA (mtDNA) translocations into the nuclear genome, common in eukaryotes.
  • De novo mtDNA insertions and genotoxic stress-induced double-strand breaks are linked to cancer development.
  • Mitochondria transfer between cells, enhancing cancer cell respiration, progression, and metastasis.

Approach:

  • This review synthesizes current research on the role of mtDNA in cancer.
  • It examines the mechanisms of mtDNA insertion and mitochondrial exchange.
  • Potential therapeutic targets for mtDNA-related cancer pathologies are discussed.

Key Points:

  • Mitochondrial DNA insertions into the nucleus can promote tumorigenesis.
  • Mitochondrial transfer to cancer cells supports disease progression and metastasis.
  • Genome instability and environmental mutagens influence de novo mtDNA translocation.
  • Mitochondrial escape and exchange are critical factors in cancer treatment resistance.

Conclusions:

  • Understanding mtDNA's role in cancer offers avenues for novel diagnostic and therapeutic strategies.
  • Targeting mtDNA escape and mitochondrial transfer could improve cancer treatment outcomes.
  • Further research into the mitochondria-nuclear DNA interplay is crucial for cancer biology insights.

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