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Published on: September 20, 2018
The MRN complex is transcriptionally regulated by MYCN during neural cell proliferation to control replication stress
M Petroni1, F Sardina1, C Heil1
1Department Molecular Medicine, University La Sapienza, 00161 Rome, Italy.
Abstract:
The MRE11/RAD50/NBS1 (MRN) complex is a major sensor of DNA double strand breaks, whose role in controlling faithful DNA replication and preventing replication stress is also emerging. Inactivation of the MRN complex invariably leads to developmental and/or degenerative neuronal defects, the pathogenesis of which still remains poorly understood. In particular, NBS1 gene mutations are associated with microcephaly and strongly impaired cerebellar development, both in humans and in the mouse model. These phenotypes strikingly overlap those induced by inactivation of MYCN, an essential promoter of the expansion of neuronal stem and progenitor cells, suggesting that MYCN and the MRN complex might be connected on a unique pathway essential for the safe expansion of neuronal cells. Here, we show that MYCN transcriptionally controls the expression of each component of the MRN complex. By genetic and pharmacological inhibition of the MRN complex in a MYCN overexpression model and in the more physiological context of the Hedgehog-dependent expansion of primary cerebellar granule progenitor cells, we also show that the MRN complex is required for MYCN-dependent proliferation. Indeed, its inhibition resulted in DNA damage, activation of a DNA damage response, and cell death in a MYCN- and replication-dependent manner. Our data indicate the MRN complex is essential to restrain MYCN-induced replication stress during neural cell proliferation and support the hypothesis that replication-born DNA damage is responsible for the neuronal defects associated with MRN dysfunctions.
Insights
The MRE11/RAD50/NBS1 (MRN) complex is vital for neural cell expansion, restraining MYCN-induced replication stress. Its dysfunction causes DNA damage, leading to developmental defects.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- The MRE11/RAD50/NBS1 (MRN) complex senses DNA double-strand breaks and is crucial for DNA replication fidelity.
- MRN complex inactivation causes severe neuronal developmental defects, overlapping with MYCN inactivation phenotypes.
- MYCN is essential for neuronal stem and progenitor cell expansion, suggesting a link with the MRN complex.
Purpose of the Study:
- To investigate the functional relationship between the MRN complex and MYCN in neural cell proliferation.
- To elucidate the role of the MRN complex in preventing MYCN-driven replication stress and DNA damage.
Main Methods:
- Investigated MYCN's transcriptional control over MRN complex components.
- Utilized genetic and pharmacological inhibition of the MRN complex in MYCN overexpression and primary cerebellar progenitor cell models.
- Assessed DNA damage, DNA damage response activation, and cell death.
Main Results:
- MYCN was found to transcriptionally regulate the expression of MRN complex components.
- MRN complex inhibition impaired MYCN-dependent proliferation, causing DNA damage and cell death.
- The MRN complex is required to mitigate MYCN-induced replication stress in proliferating neural cells.
Conclusions:
- The MRN complex is essential for restraining MYCN-induced replication stress during neural cell proliferation.
- Replication-born DNA damage likely underlies the neuronal defects observed in MRN complex dysfunctions.
- This study reveals a critical pathway linking MYCN and MRN complex function for safe neural cell expansion.
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