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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.
Abstract:
The S. pombe checkpoint kinase, Cds1, protects the integrity of stalled DNA replication forks after its phosphorylation at threonine-11 by Rad3 (ATR). Modified Cds1 associates through its N-terminal forkhead-associated domain (FHA)-domain with Mrc1 (Claspin) at stalled forks. We report here that nutrient starvation results in post-translational changes to Cds1 and the loss of Mrc1. A drop in glucose after a down-shift from 3% to 0.1-0.3%, or when cells enter the stationary phase, triggers a sharp decline in Mrc1 and the accumulation of insoluble Cds1. Before this transition, Cds1 is transiently activated and phosphorylated by Rad3 when glucose levels fall. Because this coincides with the phosphorylation of histone 2AX at S129 by Rad3, an event that occurs towards the end of every unperturbed S phase, we suggest that a glucose limitation promotes the exit from the S phase. Since nitrogen starvation also depletes Mrc1 while Cds1 is post-translationally modified, we suggest that nutrient limitation is the general signal that promotes exit from S phase before it inactivates the Mrc1-Cds1 signalling component. Why Cds1 accumulates in resting cells while its activator Mrc1 declines is, as yet, unclear but suggests a novel function of Cds1 in non-replicating cells.
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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