Both ATM and ATR promote the efficient and accurate processing of programmed meiotic double-strand breaks

Kevin M Culligan1, Anne B Britt

  • 1Department of Biochemistry and Molecular Biology, University of New Hampshire, Durham, NH 03824, USA. k.culligan@unh.edu

Abstract

Insights

The study reveals that ATM and ATR protein kinases are crucial for meiosis, with ATM essential for processing DNA breaks and both acting redundantly to prevent non-homologous DNA interactions during this process.

Area of Science:

  • Cell Biology
  • Genetics
  • Molecular Biology

Background:

  • ATM and ATR protein kinases are vital for cellular responses to DNA double-strand breaks (DSBs).
  • During meiosis, SPO11-dependent DSBs initiate homologous recombination, but the role of ATR in this process is unclear.
  • ATM defects in other organisms lead to chromosome fragmentation.

Purpose of the Study:

  • To elucidate the role of ATR in meiosis.
  • To investigate the combined roles of ATM and ATR in meiotic progression and DNA repair.
  • To understand the requirement of SPO11-dependent breaks for non-homologous interactions.

Main Methods:

  • Utilized null Arabidopsis mutants for ATR and ATM.
  • Analyzed meiotic progression, chromosome synapsis, and DNA interactions in single and double mutants.
  • Investigated the impact of spo11 mutations on ectopic interactions and fragmentation.

Main Results:

  • ATR mutants showed no meiotic defects, but atr atm double mutants exhibited exacerbated chromosome fragmentation and failed synapsis.
  • Extensive, persistent interactions between non-homologous DNAs were observed in atr atm mutants.
  • Eliminating SPO11 activity in atm or atr atm mutants abolished ectopic interactions and reduced fragmentation.

Conclusions:

  • ATM is essential for efficient processing of SPO11-dependent DSBs during meiosis.
  • ATM and ATR redundantly inhibit sustained interactions between non-homologous chromatids.
  • SPO11 activity is required for these ectopic interactions.

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