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Updated: Jul 14, 2025

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
The known unknowns of mitochondrial carcinogenesis: de novo NUMTs and intercellular mitochondrial transfer
1Department of Genetics and Cytology, Yerevan State University, 1 Alex Manoogian, 0025 Yerevan, Armenia.
Abstract:
The translocation of mitochondrial DNA (mtDNA) sequences into the nuclear genome, resulted in the occurrence of nuclear sequences of mitochondrial origin (NUMTs) which can be detected in nearly all sequenced eukaryotes. However, de novo mtDNA insertions can contribute to the development of pathological conditions including cancer. Recent data indicate that de novo mtDNA translocation into chromosomes can occur due to genotoxic influence of DNA double-strand break-inducing environmental mutagens. This confirms the hypothesis of the involvement of genome instability in the occurrence of mtDNA fragments in chromosomes. Mounting evidence indicates that mitochondria can be transferred from normal cells to cancer cells and recover cellular respiration. These exchanged mitochondria can facilitate cancer progression and metastasis. This review article provides a comprehensive overview of the potential carcinogenicity of mtDNA insertions, and the relevance of mtDNA escape in cancer progression, metastasis, and treatment resistance in humans. Potential molecular targets involved in mtDNA escape and exchange of mitochondria that can be of possible clinical benefits are presented and discussed. Understanding these processes could lead to improved diagnostic approaches, novel therapeutic strategies, and a deeper understanding of the intricate relationship between mitochondria, nuclear DNA, and cancer biology.
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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