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Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
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.
Abstract:
One of the hallmarks of DNA damage is the rapid spreading of phosphorylated histone H2A (γ-H2AX) around a DNA double-strand break (DSB). In the budding yeast Saccharomyces cerevisiae, nearly all H2A isoforms can be phosphorylated, either by Mec1ATR or Tel1ATM checkpoint kinases. We induced a site-specific DSB with HO endonuclease at the MAT locus on chromosome III and monitored the formation of γ-H2AX by chromatin immunoprecipitation (ChIP)-qPCR in order to uncover the mechanisms by which Mec1ATR and Tel1ATM propagate histone modifications across chromatin. With either kinase, γ-H2AX spreads as far as ∼50 kb on both sides of the lesion within 1 h; but the kinetics and distribution of modification around the DSB are significantly different. The total accumulation of phosphorylation is reduced by about half when either of the two H2A genes is mutated to the nonphosphorylatable S129A allele. Mec1 activity is limited by the abundance of its ATRIP partner, Ddc2. Moreover, Mec1 is more efficient than Tel1 at phosphorylating chromatin in trans-at distant undamaged sites that are brought into physical proximity to the DSB. We compared experimental data to mathematical models of spreading mechanisms to determine whether the kinases search for target nucleosomes by primarily moving in three dimensions through the nucleoplasm or in one dimension along the chromatin. Bayesian model selection indicates that Mec1 primarily uses a three-dimensional diffusive mechanism, whereas Tel1 undergoes directed motion along the chromatin.
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.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
Restarting Stalled Replication Forks
Fixing Double-strand Breaks
Homologous Recombination
Yeast Signaling
Spreading of Chromatin Modifications
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