Mre11–Rad50–Nbs1 is a keystone complex connecting DNA repair machinery, double-strand break signaling, and the chromatin templateThis paper is one of a selection of papers published in this Special Issue, entitled 28th International West Coast Chromatin and Chromosome Conference, and has undergone the Journal's usual peer review process.
- 1 August 2007
- journal article
- review article
- Published by Canadian Science Publishing in Biochemistry and Cell Biology
- Vol. 85 (4), 509-520
- https://doi.org/10.1139/o07-069
Abstract
The Mre11–Rad50–Nbs1 (MRN) complex is providing paradigm-shifting results of exceptional biomedical interest. MRN is among the earliest respondents to DNA double-strand breaks (DSBs), and MRN mutations cause the human cancer predisposition diseases Nijmegen breakage syndrome and ataxia telangiectasia-like disorder (ATLD). MRN’s 3-protein multidomain composition promotes its central architectural, structural, enzymatic, sensing, and signaling functions in DSB responses. To organize the MRN complex, the Mre11 exonuclease directly binds Nbs1, DNA, and Rad50. Rad50, a structural maintenance of chromosome (SMC) related protein, employs its ATP-binding cassette (ABC) ATPase, Zn hook, and coiled coils to bridge DSBs and facilitate DNA end processing by Mre11. Contributing to MRN regulatory roles, Nbs1 harbors N-terminal phosphopeptide interacting FHA and BRCT domains, as well as C-terminal ataxia telangiectasia mutated (ATM) kinase and Mre11 interaction domains. Current emerging structural and biological evidence suggests that MRN has 3 coupled critical roles in DSB sensing, stabilization, signaling, and effector scaffolding: (1) expeditious establishment of protein – nucleic acid tethering scaffolds for the recognition and stabilization of DSBs; (2) initiation of DSB sensing, cell-cycle checkpoint signaling cascades, and establishment of epigenetic marks via the ATM kinase; and (3) functional regulation of chromatin remodeling in the vicinity of a DSB.Keywords
This publication has 119 references indexed in Scilit:
- The carboxy terminus of NBS1 is required for induction of apoptosis by the MRE11 complexNature, 2007
- Rad50 Adenylate Kinase Activity Regulates DNA Tethering by Mre11/Rad50 ComplexesMolecular Cell, 2007
- The C-terminal domain of yeast PCNA is required for physical and functional interactions with Cdc9 DNA ligaseNucleic Acids Research, 2007
- Conditional deletion of Nbs1 in murine cells reveals its role in branching repair pathways of DNA double-strand breaksThe EMBO Journal, 2006
- Spatial organization of the mammalian genome surveillance machinery in response to DNA strand breaksThe Journal of cell biology, 2006
- DNA Damage Response Pathway Uses Histone Modification to Assemble a Double-Strand Break-Specific Cohesin DomainMolecular Cell, 2004
- Distribution and Dynamics of Chromatin Modification Induced by a Defined DNA Double-Strand BreakCurrent Biology, 2004
- The Rad50 Signature Motif: Essential to ATP Binding and Biological FunctionJournal of Molecular Biology, 2004
- DNA damage activates ATM through intermolecular autophosphorylation and dimer dissociationNature, 2003
- Insights into DNA recombination from the structure of a RAD51–BRCA2 complexNature, 2002