Yeast ATM and ATR kinases use different mechanisms to spread histone H2A phosphorylation around a DNA double-strand

Kevin Li1, Gabriel Bronk1, Jane Kondev2

  • 1Department of Physics, Brandeis University, Waltham, MA 02454.

Insights

DNA double-strand breaks trigger rapid histone H2A phosphorylation (γ-H2AX) spreading. Mec1ATR and Tel1ATM kinases propagate this modification via distinct mechanisms, with Mec1 using 3D diffusion and Tel1 using 1D along chromatin.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • DNA double-strand breaks (DSBs) are critical DNA lesions.
  • Phosphorylation of histone H2A (γ-H2AX) is a hallmark of DSBs.
  • Mec1ATR and Tel1ATM are key checkpoint kinases involved in DNA damage response.

Purpose of the Study:

  • To investigate the distinct mechanisms by which Mec1ATR and Tel1ATM propagate γ-H2AX.
  • To differentiate between 1D and 3D spreading models for these kinases.

Main Methods:

  • Induction of a site-specific DSB using HO endonuclease in *Saccharomyces cerevisiae*.
  • Chromatin immunoprecipitation followed by quantitative PCR (ChIP-qPCR) to monitor γ-H2AX formation.
  • Comparison of experimental data with mathematical models of spreading mechanisms.

Main Results:

  • γ-H2AX spreads approximately 50 kb on both sides of the DSB within 1 hour, with distinct kinetics for Mec1 and Tel1.
  • Mec1 is more efficient than Tel1 in phosphorylating distant chromatin sites (*in trans*).
  • Bayesian model selection favored a 3D diffusive mechanism for Mec1 and a 1D directed motion mechanism for Tel1.

Conclusions:

  • Mec1ATR and Tel1ATM utilize different spreading mechanisms to propagate γ-H2AX.
  • Mec1 primarily diffuses in 3D through the nucleoplasm, while Tel1 moves directionally along chromatin.
  • These findings elucidate the distinct roles of key kinases in the DNA damage response pathway.

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