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Updated: May 20, 2026

Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
PGC-1β mediates adaptive chemoresistance associated with mitochondrial DNA mutations
Z Yao1, A W E Jones, E Fassone
1Department of Cell and Developmental Biology, Consortium for Mitochondrial Research, University College London, London, UK.
Abstract:
Primary mitochondrial dysfunction commonly leads to failure in cellular adaptation to stress. Paradoxically, however, nonsynonymous mutations of mitochondrial DNA (mtDNA) are frequently found in cancer cells and may have a causal role in the development of resistance to genotoxic stress induced by common chemotherapeutic agents, such as cis-diammine-dichloroplatinum(II) (cisplatin, CDDP). Little is known about how these mutations arise and the associated mechanisms leading to chemoresistance. Here, we show that the development of adaptive chemoresistance in the A549 non-small-cell lung cancer cell line to CDDP is associated with the hetero- to homoplasmic shift of a nonsynonymous mutation in MT-ND2, encoding the mitochondrial Complex-I subunit ND2. The mutation resulted in a 50% reduction of the NADH:ubiquinone oxidoreductase activity of the complex, which was compensated by increased biogenesis of respiratory chain complexes. The compensatory mitochondrial biogenesis was most likely mediated by the nuclear co-activators peroxisome proliferator-activated receptor gamma co-activator-1α (PGC-1α) and PGC-1β, both of which were significantly upregulated in the CDDP-resistant cells. Importantly, both transient and stable silencing of PGC-1β re-established the sensitivity of these cells to CDDP-induced apoptosis. Remarkably, the PGC-1β-mediated CDDP resistance was independent of the mitochondrial effects of the co-activator. Altogether, our results suggest that partial respiratory chain defects because of mtDNA mutations can lead to compensatory upregulation of nuclear transcriptional co-regulators, in turn mediating resistance to genotoxic stress.
Insights
Mitochondrial DNA mutations can cause cancer cells to resist chemotherapy. Upregulation of PGC-1β, a nuclear co-activator, mediates this cisplatin resistance, independent of mitochondrial function.
Area of Science:
- Mitochondrial biology
- Cancer research
- Molecular genetics
Background:
- Mitochondrial dysfunction impairs cellular stress adaptation.
- Nonsynonymous mitochondrial DNA (mtDNA) mutations are prevalent in cancer, potentially conferring chemoresistance.
- Mechanisms linking mtDNA mutations to chemoresistance remain largely unknown.
Purpose of the Study:
- Investigate the role of mtDNA mutations in adaptive chemoresistance to cisplatin (CDDP).
- Elucidate the molecular mechanisms underlying CDDP resistance in non-small-cell lung cancer (NSCLC).
Main Methods:
- Utilized the A549 NSCLC cell line.
- Analyzed hetero- to homoplasmic shifts in mtDNA mutations, specifically in MT-ND2.
- Assessed NADH:ubiquinone oxidoreductase activity and respiratory chain biogenesis.
- Quantified peroxisome proliferator-activated receptor gamma co-activator-1α (PGC-1α) and PGC-1β expression.
- Employed transient and stable silencing of PGC-1β.
Main Results:
- CDDP resistance correlated with a shift to homoplasmic MT-ND2 mutation, reducing Complex-I activity by 50%.
- Compensatory upregulation of nuclear co-activators PGC-1α and PGC-1β was observed.
- PGC-1β silencing restored CDDP sensitivity, independent of mitochondrial effects.
- mtDNA mutations can trigger compensatory nuclear responses conferring chemoresistance.
Conclusions:
- Partial mitochondrial Complex-I defects due to mtDNA mutations can induce adaptive chemoresistance.
- Nuclear co-regulators, particularly PGC-1β, play a critical role in mediating this resistance.
- PGC-1β-mediated resistance is independent of direct mitochondrial impact, suggesting novel therapeutic targets.
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