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.

Nature
|March 25, 2015
PubMed

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.

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