Separable roles of the DNA damage response kinase Mec1ATR and its activator Rad24RAD17 during meiotic recombination

Margaret R Crawford1,2, Jon A Harper1, Tim J Cooper1

  • 1Genome Damage and Stability Centre, School of Life Sciences, University of Sussex, United Kingdom.

Plos Genetics
|December 9, 2024
PubMed

Insights

Programmed DNA breaks during meiosis are regulated by Mec1 and Rad24. Loss of these factors alters recombination and crossover distribution, impacting genome-wide spatial regulation.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cell Biology

Background:

  • Meiosis involves programmed DNA double-strand breaks (DSBs) initiated by Spo11.
  • The DNA damage response (DDR) kinase Mec1ATR and checkpoint clamp loader Rad24RAD17 are activated by DSBs.
  • Previous studies examined Mec1 and Rad24 at single loci, but genome-wide roles in meiotic recombination remain unclear.

Purpose of the Study:

  • To characterize the genome-wide roles of Mec1 and Rad24 in meiotic recombination.
  • To investigate how Mec1 and Rad24 influence DSB formation, recombination outcome, and crossover (CO) distribution.
  • To understand the spatial regulation of meiotic recombination.

Main Methods:

  • Utilized deletion of the mismatch repair protein Msh2.
  • Controlled meiotic prophase length by regulating the Ndt80 transcription factor.
  • Enabled genome-wide mapping of meiotic progeny to analyze recombination patterns.

Main Results:

  • Deletion of RAD24, driven by shortened prophase, reduced recombination frequency and spore viability.
  • Loss of Mec1 function increased recombination frequency and had less impact on spore viability.
  • Absence of Rad24 or Mec1 led to more frequent complex multi-chromatid events and random CO distributions, indicating impaired spatial regulation.

Conclusions:

  • Mec1 and Rad24 share roles in crossover (CO) regulation, with their loss reducing global interference.
  • Rad24 acts as a pro-crossover factor, while Mec1 regulates recombination frequency.
  • Mec1 loss can suppress broader CO regulation defects caused by abrogation of the DNA damage response.

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