Nutrient Limitation Inactivates Mrc1-to-Cds1 Checkpoint Signalling in Schizosaccharomyces pombe

Jessica Fletcher1,2, Liam Griffiths3, Thomas Caspari4,5

  • 1School of Medical Sciences, Bangor University, Bangor LL57 2UW, UK. j.f.fletcher@swansea.ac.uk.

Cells
|February 24, 2018
PubMed

Insights

Nutrient starvation causes changes in the S. pombe Cds1 kinase, leading to Mrc1 loss and Cds1 accumulation. This suggests nutrient limitation signals cells to exit S phase, potentially revealing a new role for Cds1.

Area of Science:

  • Cellular biology
  • Molecular genetics
  • DNA replication and repair

Background:

  • The S. pombe Cds1 (ATR) checkpoint kinase is crucial for protecting stalled DNA replication forks.
  • Cds1 is phosphorylated by Rad3 (ATR) and interacts with Mrc1 (Claspin) at stalled forks via its FHA-domain.

Purpose of the Study:

  • To investigate the effects of nutrient starvation on Cds1 and Mrc1.
  • To understand the signaling pathways regulating S phase exit under nutrient limitation.

Main Methods:

  • Analysis of Cds1 post-translational modifications and Mrc1 levels under varying glucose and nitrogen conditions.
  • Monitoring Cds1 phosphorylation by Rad3 and histone 2AX phosphorylation.
  • Observation of Cds1 solubility in resting cells.

Main Results:

  • Nutrient starvation (glucose or nitrogen depletion) leads to Mrc1 depletion and Cds1 post-translational modification.
  • Falling glucose levels transiently activate Cds1 and phosphorylate histone 2AX, coinciding with S phase exit.
  • Cds1 accumulates in an insoluble form in resting cells, while Mrc1 declines.

Conclusions:

  • Nutrient limitation is a general signal promoting S phase exit by inactivating the Mrc1-Cds1 pathway.
  • The accumulation of Cds1 in non-replicating cells suggests a novel, yet undefined, function in resting cells.

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