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Published on: July 10, 2017
MRE11 inhibition highlights a replication stress-dependent vulnerability of MYCN-driven tumors
Marialaura Petroni1, Francesca Sardina2,3, Paola Infante1
1Center for Life Nano Science@Sapienza, Istituto Italiano di Tecnologia, 00161, Rome, Italy.
Abstract:
MRE11 is a component of the MRE11/RAD50/NBS1 (MRN) complex, whose activity is essential to control faithful DNA replication and to prevent accumulation of deleterious DNA double-strand breaks. In humans, hypomorphic mutations in these genes lead to DNA damage response (DDR)-defective and cancer-prone syndromes. Moreover, MRN complex dysfunction dramatically affects the nervous system, where MRE11 is required to restrain MYCN-dependent replication stress, during the rapid expansion of progenitor cells. MYCN activation, often due to genetic amplification, represents the driving oncogenic event for a number of human tumors, conferring bad prognosis and predicting very poor responses even to the most aggressive therapeutic protocols. This is prototypically exemplified by neuroblastoma, where MYCN amplification occurs in about 25% of the cases. Intriguingly, MRE11 is highly expressed and predicts bad prognosis in MYCN-amplified neuroblastoma. Due to the lack of direct means to target MYCN, we explored the possibility to trigger intolerable levels of replication stress-dependent DNA damage, by inhibiting MRE11 in MYCN-amplified preclinical models. Indeed, either MRE11 knockdown or its pharmacological inhibitor mirin induce accumulation of replication stress and DNA damage biomarkers in MYCN-amplified cells. The consequent DDR recruits p53 and promotes a p53-dependent cell death, as indicated by p53 loss- and gain-of-function experiments. Encapsulation of mirin in nanoparticles allowed its use on MYCN-amplified neuroblastoma xenografts in vivo, which resulted in a sharp impairment of tumor growth, associated with DDR activation, p53 accumulation, and cell death. Therefore, we propose that MRE11 inhibition might be an effective strategy to treat MYCN-amplified and p53 wild-type neuroblastoma, and suggest that targeting replication stress with appropriate tools should be further exploited to tackle MYCN-driven tumors.
Insights
Inhibiting MRE11 (a DNA repair protein) triggers DNA damage in MYCN-amplified neuroblastoma cells. This strategy, using the drug mirin, shows promise for treating these aggressive tumors by inducing cell death.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- The MRE11/RAD50/NBS1 (MRN) complex is crucial for DNA replication and preventing double-strand breaks.
- Dysfunction of the MRN complex impacts the nervous system and is linked to cancer-prone syndromes.
- MYCN amplification drives aggressive tumors like neuroblastoma, often leading to poor prognosis.
Purpose of the Study:
- To investigate MRE11 inhibition as a therapeutic strategy against MYCN-amplified tumors.
- To explore the role of MRE11 in restraining MYCN-dependent replication stress.
- To assess the efficacy of targeting MRE11 in preclinical models of neuroblastoma.
Main Methods:
- Utilized MRE11 knockdown and the pharmacological inhibitor mirin in MYCN-amplified cell lines.
- Assessed replication stress and DNA damage biomarkers.
- Employed p53 loss- and gain-of-function experiments.
- Evaluated nanoparticle-encapsulated mirin in vivo using neuroblastoma xenografts.
Main Results:
- MRE11 inhibition (knockdown or mirin) induced replication stress and DNA damage in MYCN-amplified cells.
- The DNA damage response (DDR) recruited p53, leading to p53-dependent cell death.
- In vivo treatment with nanoparticle-encapsulated mirin significantly impaired tumor growth in neuroblastoma xenografts.
- Tumor growth inhibition was associated with DDR activation, p53 accumulation, and cell death.
Conclusions:
- MRE11 inhibition is a potential therapeutic strategy for MYCN-amplified and p53 wild-type neuroblastoma.
- Targeting replication stress is a promising approach for treating MYCN-driven tumors.
- Further exploitation of tools targeting replication stress is warranted for MYCN-driven cancers.
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