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Published on: June 17, 2022
Mitoribosomal synthetic lethality overcomes multidrug resistance in MYC-driven neuroblastoma
Karolina Borankova1,2, Maria Krchniakova1,2, Lionel Y W Leck3,4
1Department of Experimental Biology, Faculty of Science, Masaryk University, 62500, Brno, Czech Republic.
Abstract:
Mitochondria are central for cancer responses to therapy-induced stress signals. Refractory tumors often show attenuated sensitivity to apoptotic signaling, yet clinically relevant molecular actors to target mitochondria-mediated resistance remain elusive. Here, we show that MYC-driven neuroblastoma cells rely on intact mitochondrial ribosome (mitoribosome) processivity and undergo cell death following pharmacological inhibition of mitochondrial translation, regardless of their multidrug/mitochondrial resistance and stem-like phenotypes. Mechanistically, inhibiting mitoribosomes induced the mitochondrial stress-activated integrated stress response (ISR), leading to downregulation of c-MYC/N-MYC proteins prior to neuroblastoma cell death, which could be both rescued by the ISR inhibitor ISRIB. The ISR blocks global protein synthesis and shifted the c-MYC/N-MYC turnover toward proteasomal degradation. Comparing models of various neuroectodermal tumors and normal fibroblasts revealed overexpression of MYC proteins phosphorylated at the degradation-promoting site T58 as a factor that predetermines vulnerability of MYC-driven neuroblastoma to mitoribosome inhibition. Reducing N-MYC levels in a neuroblastoma model with tunable MYCN expression mitigated cell death induction upon inhibition of mitochondrial translation and functionally validated the propensity of neuroblastoma cells for MYC-dependent cell death in response to the mitochondrial ISR. Notably, neuroblastoma cells failed to develop significant resistance to the mitoribosomal inhibitor doxycycline over a long-term repeated (pulsed) selection. Collectively, we identify mitochondrial translation machinery as a novel synthetic lethality target for multidrug-resistant MYC-driven tumors.
Insights
Targeting mitochondrial translation offers a new strategy against MYC-driven neuroblastoma. Inhibiting mitochondrial ribosomes triggers cell death, even in resistant tumors, by activating the integrated stress response and degrading MYC proteins.
Area of Science:
- Cancer Biology
- Mitochondrial Biology
- Neuro-oncology
Background:
- Mitochondria play a key role in cancer cell response to therapy.
- Drug-resistant tumors often exhibit reduced sensitivity to apoptosis.
- Molecular targets for mitochondria-mediated therapy resistance are needed.
Purpose of the Study:
- To investigate the role of mitochondrial translation in MYC-driven neuroblastoma.
- To identify novel therapeutic targets for refractory neuroblastoma.
Main Methods:
- Pharmacological inhibition of mitochondrial translation using mitoribosome inhibitors.
- Analysis of the integrated stress response (ISR) pathway.
- Assessment of MYC/N-MYC protein levels and turnover.
- Evaluation of drug resistance and tumor cell vulnerability.
Main Results:
- Inhibition of mitochondrial translation induces cell death in MYC-driven neuroblastoma, irrespective of resistance.
- Mitoribosome inhibition activates the ISR, leading to MYC/N-MYC downregulation and proteasomal degradation.
- Phosphorylation of MYC at T58 predicts sensitivity to mitoribosome inhibition.
- Neuroblastoma cells showed no significant resistance development to doxycycline after long-term pulsed selection.
Conclusions:
- Mitochondrial translation is a critical vulnerability in MYC-driven neuroblastoma.
- Targeting mitochondrial translation machinery represents a novel synthetic lethality approach for multidrug-resistant neuroblastoma.
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