Related Experiment Videos

Chk1 is a wee1 kinase in the G2 DNA damage checkpoint inhibiting cdc2 by Y15 phosphorylation

M J O'Connell1, J M Raleigh, H M Verkade

  • 1Trescowthick Research Laboratories, Peter MacCallum Cancer Institute, Melbourne, Victoria, Australia.

The EMBO Journal
|February 3, 1997
PubMed

Insights

The G2 DNA damage checkpoint delays mitosis to maintain cell viability. This study shows Chk1 phosphorylates Wee1, maintaining Y15 phosphorylation and G2 delay, linking DNA damage response to cell cycle regulation.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • The G2 DNA damage checkpoint is crucial for cell viability following genomic damage.
  • It delays mitosis by affecting cell cycle regulators like p34cdc2.
  • The precise target and mechanism of this checkpoint-induced delay remain unclear.

Purpose of the Study:

  • To elucidate the mechanism of G2 DNA damage checkpoint-mediated cell cycle delay.
  • To identify the target of the checkpoint and its role in regulating p34cdc2.
  • To investigate the interplay between checkpoint proteins and cell cycle regulators.

Main Methods:

  • Utilized fission yeast as a model system.
  • Investigated protein phosphorylation states (Y15) of p34cdc2.
  • Performed in vitro phosphorylation assays using Chk1 and Wee1.

Main Results:

  • Y15 phosphorylation is maintained in checkpoint-arrested fission yeast.
  • Wee1 is essential for Chk1-induced cell cycle arrest.
  • Chk1 directly phosphorylates Wee1 in vitro, leading to sustained Y15 phosphorylation and G2 delay.
  • Other kinases like Mik1 can partially compensate for Wee1, but incompletely.

Conclusions:

  • DNA damage response involves Chk1-mediated phosphorylation of Wee1.
  • This phosphorylation maintains Y15 phosphorylation, causing G2 delay and supporting cell viability.
  • Establishes a direct link between the G2 DNA damage checkpoint and core cell cycle machinery.

Related Concept Videos