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Updated: Apr 15, 2026

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
MAD2L2 controls DNA repair at telomeres and DNA breaks by inhibiting 5' end resection
Vera Boersma1, Nathalie Moatti1, Sandra Segura-Bayona1
1Division of Molecular Oncology, The Netherlands Cancer Institute, Plesmanlaan 121, 1066 CX, Amsterdam, The Netherlands.
Abstract:
Appropriate repair of DNA lesions and the inhibition of DNA repair activities at telomeres are crucial to prevent genomic instability. By fuelling the generation of genetic alterations and by compromising cell viability, genomic instability is a driving force in cancer and ageing. Here we identify MAD2L2 (also known as MAD2B or REV7) through functional genetic screening as a novel factor controlling DNA repair activities at mammalian telomeres. We show that MAD2L2 accumulates at uncapped telomeres and promotes non-homologous end-joining (NHEJ)-mediated fusion of deprotected chromosome ends and genomic instability. MAD2L2 depletion causes elongated 3' telomeric overhangs, indicating that MAD2L2 inhibits 5' end resection. End resection blocks NHEJ while committing to homology-directed repair, and is under the control of 53BP1, RIF1 and PTIP. Consistent with MAD2L2 promoting NHEJ-mediated telomere fusion by inhibiting 5' end resection, knockdown of the nucleases CTIP or EXO1 partially restores telomere-driven genomic instability in MAD2L2-depleted cells. Control of DNA repair by MAD2L2 is not limited to telomeres. MAD2L2 also accumulates and inhibits end resection at irradiation-induced DNA double-strand breaks and promotes end-joining of DNA double-strand breaks in several settings, including during immunoglobulin class switch recombination. These activities of MAD2L2 depend on ATM kinase activity, RNF8, RNF168, 53BP1 and RIF1, but not on PTIP, REV1 and REV3, the latter two acting with MAD2L2 in translesion synthesis. Together, our data establish MAD2L2 as a crucial contributor to the control of DNA repair activity by 53BP1 that promotes NHEJ by inhibiting 5' end resection downstream of RIF1.
Insights
MAD2L2 is a novel DNA repair factor that promotes telomere fusion and genomic instability by inhibiting 5' end resection. Its depletion stabilizes telomeres and prevents DNA double-strand break repair via NHEJ.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Genomic instability, driven by DNA damage, is implicated in cancer and aging.
- Telomere maintenance and DNA repair are critical for preventing genomic instability.
- MAD2L2 (MAD2B/REV7) is identified as a novel factor in DNA repair.
Purpose of the Study:
- To identify novel factors controlling DNA repair at mammalian telomeres.
- To elucidate the role of MAD2L2 in telomere maintenance and genomic stability.
- To investigate MAD2L2's function in DNA double-strand break repair.
Main Methods:
- Functional genetic screening to identify MAD2L2.
- Analysis of MAD2L2 accumulation at telomeres and DNA double-strand breaks.
- Assessment of MAD2L2's impact on non-homologous end-joining (NHEJ) and 5' end resection.
- Knockdown experiments with nucleases (CTIP, EXO1) and analysis of downstream factors.
Main Results:
- MAD2L2 promotes NHEJ-mediated fusion of uncapped telomeres, leading to genomic instability.
- MAD2L2 depletion results in elongated 3' telomeric overhangs, indicating inhibition of 5' end resection.
- MAD2L2 also functions at DNA double-strand breaks, promoting end-joining and inhibiting resection.
- MAD2L2's activity depends on ATM, RNF8, RNF168, 53BP1, and RIF1.
Conclusions:
- MAD2L2 is a key regulator of DNA repair, promoting NHEJ by inhibiting 5' end resection at telomeres and DNA double-strand breaks.
- MAD2L2 acts downstream of RIF1 and is controlled by the 53BP1 pathway.
- These findings reveal MAD2L2 as a critical factor in maintaining genomic integrity.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Fixing Double-strand Breaks
Fixing Double-strand Breaks
Homologous Recombination
Restarting Stalled Replication Forks

