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Two distinct pathways for inhibiting pds1 ubiquitination in response to DNA damage

Ritu Agarwal1, Zhanyun Tang, Hongtao Yu

  • 1Laboratory of Molecular and Cellular Biology, NIDDK, National Institutes of Health, Bethesda, Maryland 20892, USA.

Insights

DNA damage triggers cell cycle arrest via the DNA damage checkpoint pathway. This study reveals how Rad53 and Chk1 kinases differentially inhibit Pds1 ubiquitination, ensuring genomic stability.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • DNA damage activates the DNA damage checkpoint pathway, inducing cell cycle arrest to allow for repair.
  • Failure to arrest cell cycle progression upon DNA damage leads to genomic instability.
  • In budding yeast, the DNA damage checkpoint involves Mec1 kinase activating parallel Rad53 and Chk1 pathways.

Purpose of the Study:

  • To elucidate the mechanism by which Rad53 and Chk1 pathways stabilize Pds1, an inhibitor of anaphase.
  • To understand how these pathways prevent Pds1 degradation, a prerequisite for mitotic progression.
  • To investigate the role of Pds1 dephosphorylation in recovering from DNA damage-induced cell cycle arrest.

Main Methods:

  • Investigated the interaction between Pds1 and Cdc20.
  • Analyzed the ubiquitination of Pds1.
  • Studied the role of Rad53 and Chk1 kinases in regulating Pds1 stability and cell cycle progression.

Main Results:

  • Both Rad53 and Chk1 pathways inhibit the anaphase-promoting complex/cyclosome (APC/CCdc20)-dependent ubiquitination of Pds1.
  • The Rad53 pathway inhibits the interaction between Pds1 and Cdc20.
  • Chk1-dependent phosphorylation of Pds1 directly inhibits the ubiquitination reaction itself.

Conclusions:

  • The study reveals distinct mechanisms by which Rad53 and Chk1 ensure Pds1 stabilization during DNA damage response.
  • Differential inhibition of Pds1 ubiquitination by Rad53 and Chk1 contributes to maintaining genomic stability.
  • Pds1 dephosphorylation is crucial for timely recovery from DNA damage-induced cell cycle arrest.

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