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Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
Published on: June 24, 2019
Cid1, a fission yeast protein required for S-M checkpoint control when DNA polymerase delta or epsilon is inactivated
S W Wang1, T Toda, R MacCallum
1Imperial Cancer Research Fund Molecular Oncology Laboratory, University of Oxford Institute of Molecular Medicine, John Radcliffe Hospital, Oxford OX3 9DS, United Kingdom.
Abstract:
The S-M checkpoint is an intracellular signaling pathway that ensures that mitosis is not initiated in cells undergoing DNA replication. We identified cid1, a novel fission yeast gene, through its ability when overexpressed to confer specific resistance to a combination of hydroxyurea, which inhibits DNA replication, and caffeine, which overrides the S-M checkpoint. Cid1 overexpression also partially suppressed the hydroxyurea sensitivity characteristic of DNA polymerase delta mutants and mutants defective in the "checkpoint Rad" pathway. Cid1 is a member of a family of putative nucleotidyltransferases including budding yeast Trf4 and Trf5, and mutation of amino acid residues predicted to be essential for this activity resulted in loss of Cid1 function in vivo. Two additional Cid1-like proteins play similar but nonredundant checkpoint-signaling roles in fission yeast. Cells lacking Cid1 were found to be viable but specifically sensitive to the combination of hydroxyurea and caffeine and to be S-M checkpoint defective in the absence of Cds1. Genetic data suggest that Cid1 acts in association with Crb2/Rhp9 and through the checkpoint-signaling kinase Chk1 to inhibit unscheduled mitosis specifically when DNA polymerase delta or epsilon is inhibited.
Insights
We discovered the fission yeast gene cid1, which helps prevent cells from entering mitosis during DNA replication. Overexpressing cid1 provides resistance to hydroxyurea and caffeine, suggesting its role in the S-M checkpoint.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The S-M checkpoint is crucial for preventing mitosis during DNA replication.
- Hydroxyurea inhibits DNA replication, while caffeine overrides the S-M checkpoint.
Purpose of the Study:
- To identify novel genes involved in the S-M checkpoint.
- To characterize the function of the newly identified gene, cid1.
Main Methods:
- Gene overexpression studies in fission yeast.
- Sensitivity assays using hydroxyurea and caffeine.
- Analysis of DNA polymerase and checkpoint pathway mutants.
- Site-directed mutagenesis to assess protein function.
Main Results:
- Overexpression of cid1 conferred resistance to hydroxyurea and caffeine.
- Cid1 is a putative nucleotidyltransferase essential for function in vivo.
- Loss of cid1 resulted in sensitivity to hydroxyurea/caffeine and S-M checkpoint defects.
- Cid1 functions with Crb2/Rhp9 and Chk1 to inhibit mitosis during DNA polymerase inhibition.
Conclusions:
- Cid1 is a novel S-M checkpoint regulator in fission yeast.
- Cid1 plays a critical role in preventing unscheduled mitosis during DNA replication stress.
- Cid1 acts via the Chk1 kinase pathway to maintain genomic integrity.
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