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Updated: Aug 1, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Human syndromes with genomic instability and multiprotein machines that repair DNA double-strand breaks
C De la Torre1, J Pincheira, J F López-Sáez
1Biological Research Centre, CSIC, Madrid, Spain, delatorrec@cib.csic.es
Abstract:
The present report deals with the functional relationships among protein complexes which, when mutated, are responsible for four human syndromes displaying cancer proneness, and whose cells are deficient in DNA double-strand break (DSB) repair. In some of them, the cells are also unable to activate the proper checkpoint, while in the others an unduly override of the checkpoint-induced arrest occurs. As a consequence, all these patients display genome instability. In ataxia-telangiectasia, the mutated protein (ATM) is a kinase, which acts as a transducer of DNA damage signalling. The defective protein in the ataxia-telangiectasia-like disorder is a DNase (the Mre11 nuclease) that in vivo produces single-strand tails at both sides of DSBs. Mre11 is always present with the Rad50 ATPase in a protein machine: the nuclease complex. In mammals, this complex also contains nibrin, the protein mutated in the Nijmegen syndrome. Nibrin confers new abilities to the nuclease complex, and can also bind to BRCA1 (one of the two proteins mutated in familial breast cancer). BRCA1 has a central motif that binds with high affinity to cruciform DNA, a structure present in places where the DNA loops are anchored to the chromosomal axis or scaffold. The BRCA1 x cruciform DNA complex should be released to allow the nuclease complex to work in DNA recombinational repair of DSBs. BRCA1 also acts as a scaffold for the assembly of ATPases such as Rad51, responsible for the somatic homologous recombination. Loss of the BRCA1 gene prevents cell survival after exposure to cross-linkers. The BRCA1-RING domain is an E3-ubiquitin ligase. It can mono-ubiquitinate the FANCD2 protein, mutated in one of the Fanconi anemia complementation groups, to regulate it. Finally, during DNA replication, the nuclease complex and its activating ATM kinase are integrated in the BRCA1-associated surveillance complex (BASC) that contains, among others, enzymes required for mismatch excision repair. In short, the proteins missing in these syndromes have in common their BRCA1-mediated assembly into multimeric machines responsible for the surveillance of DNA replication, DSB recombinational repair, and the removal of DNA cross-links.
Insights
Mutations in protein complexes involved in DNA repair cause cancer proneness and genome instability in syndromes like ataxia-telangiectasia. These complexes are crucial for DNA replication surveillance and double-strand break repair, highlighting their role in maintaining genomic integrity.
Area of Science:
- Genetics and Molecular Biology
- Cancer Biology
- Genomic Instability
Background:
- Several human syndromes are characterized by cancer proneness and cellular deficiencies in DNA double-strand break (DSB) repair.
- These deficiencies are linked to mutations in protein complexes crucial for DNA damage signaling, checkpoint activation, and repair.
- Genome instability is a common consequence, contributing to cancer development.
Purpose of the Study:
- To elucidate the functional relationships among protein complexes involved in DNA repair and their connection to human cancer-prone syndromes.
- To understand the role of specific proteins like ATM, Mre11, Nibrin, and BRCA1 in DNA damage response pathways.
- To investigate how defects in these complexes lead to genome instability and cancer.
Main Methods:
- Functional analysis of protein complexes involved in DNA double-strand break (DSB) repair.
- Investigation of cellular phenotypes, including checkpoint activation and DNA repair deficiencies, in patients with specific genetic syndromes.
- Biochemical characterization of protein interactions and their roles in DNA repair pathways, such as homologous recombination and mismatch excision repair.
Main Results:
- Mutations in ATM (ataxia-telangiectasia), Mre11 (ataxia-telangiectasia-like disorder), Nibrin (Nijmegen syndrome), and BRCA1 (familial breast cancer) disrupt critical DNA repair pathways.
- These proteins form functional complexes, including the nuclease complex (Mre11-Rad50) and the BRCA1-associated surveillance complex (BASC).
- BRCA1 plays a central role in assembling these complexes, facilitating DNA repair, homologous recombination, and cell survival.
Conclusions:
- The proteins implicated in these cancer-prone syndromes are functionally interconnected through BRCA1-mediated assembly into multimeric machines.
- These machines are essential for DNA replication surveillance, DSB recombinational repair, and the removal of DNA cross-links.
- Defects in these protein complexes lead to genome instability and increased cancer risk.
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