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NBS1 prevents chromatid-type aberrations through ATM-dependent interactions with SMC1
A Antoccia1, S Sakamoto, S Matsuura
1Department of Biology, University Roma Tre, Roma, Italy. antoccia@uniroma3.it
Abstract:
Nijmegen breakage syndrome shares several common cellular features with ataxia telangiectasia, including chromosomal instability and aberrant S- and G2-phase checkpoint regulation. We show here that after irradiation, NBS1 interacts physically with both BRCA1 and SMC1, a component of the cohesin complex, and that their interactions are completely abolished in AT cells. It is noted that BRCA1 is required for the interaction of NBS1 with SMC1, whereas the reverse is not the case, since BRCA1 is able to bind to NBS1 in the absence of an NBS1/SMC1 interaction as observed in MRE11- or RAD50-deficient cells. This indicates that ATM and BRCA1 are upstream of the NBS1/SMC1 interaction. Furthermore, the interaction of NBS1 with SMC1 requires both conserved domains of NBS in the N-terminus and the C-terminus, since they are indispensable for binding of NBS1 to BRCA1 and to MRE11/ATM, respectively. The interaction of NBS1 with SMC1 and the resulting phosphorylation are compromised in the clones lacking either the N- or C-terminus of NBS1, and as a consequence, chromatid-type aberrations are enhanced after irradiation. Our results reveal that ATM plays a fundamental role in promoting the radiation-induced interaction of NBS1 with SMC1 in the presence of BRCA1, leading to the maintenance of chromosomal integrity.
Insights
Nijmegen breakage syndrome (NBS) and ataxia telangiectasia (AT) share cellular defects. This study reveals ATM and BRCA1 are crucial for NBS1
Area of Science:
- Molecular Biology
- Genetics
- Cellular Biology
Background:
- Nijmegen breakage syndrome (NBS) and ataxia telangiectasia (AT) exhibit similar cellular characteristics, including chromosomal instability and impaired cell cycle checkpoints.
- Both NBS and AT are associated with DNA repair pathway deficiencies.
Purpose of the Study:
- To elucidate the molecular interactions involving NBS1 protein in response to DNA damage.
- To investigate the roles of ATM and BRCA1 in the NBS1-SMC1 interaction pathway.
- To understand how NBS1 domains contribute to its interactions and chromosomal integrity maintenance.
Main Methods:
- Investigated physical interactions between NBS1, BRCA1, and SMC1 after irradiation using cellular assays.
- Utilized MRE11- or RAD50-deficient cells and NBS1 mutants (lacking N- or C-terminus) to dissect interaction pathways.
- Assessed chromosomal aberrations following irradiation in cells with compromised NBS1 interactions.
Main Results:
- NBS1 physically interacts with BRCA1 and SMC1 post-irradiation; these interactions are abolished in AT cells.
- BRCA1 is essential for NBS1-SMC1 binding, and ATM and BRCA1 act upstream of this interaction.
- Specific NBS1 domains are required for binding to BRCA1 and MRE11/ATM, and their absence enhances chromatid aberrations.
Conclusions:
- ATM plays a critical role in facilitating the radiation-induced NBS1-SMC1 interaction in the presence of BRCA1.
- The NBS1-SMC1 interaction, promoted by ATM and BRCA1, is vital for maintaining chromosomal integrity after irradiation.
- Defects in NBS1 interactions lead to increased chromosomal instability, highlighting their importance in DNA repair.
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