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Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
Published on: June 24, 2019
Characterisation of the Schizosaccharomyces pombe rad4/cut5 mutant phenotypes: dissection of DNA replication and G2
R J McFarlane1, A M Carr, C Price
1Krebs Institute for Biomolecular Research, Department of Molecular Biology and Biotechnology, University of Sheffield, Western Bank Sheffield, UK.
Abstract:
Mutation of the essential Schizosaccharomyces pombe rad4/cut5 gene causes sensitivity to UV and ionising radiation at the permissive temperature whilst at the restrictive temperature cells fail to undergo DNA replication but still attempt mitosis owing to a defective S-phase checkpoint response. Many mutations in genes encoding DNA replication proteins also abolish checkpoint responses, possibly because the replication machinery is a pre-requisite for the generation of the signal. We demonstrate here that rad4/cut5 cells fail to arrest cell division when treated with the replication inhibitor hydroxyurea at the semi-permissive temperature 32 degrees C, but retain essentially normal replicative capacity. This demonstrates that the replication and checkpoint function of the rad4/cut5 gene product can be separated and that the Rad4 protein differs from other replication proteins in being directly involved in generating the S-phase checkpoint signal. Furthermore, we have investigated the checkpoint response or rad4/cut5-deficient cells to gamma-irradiation and UV-mimetic drugs. We find that, at the restrictive temperature, the rad4-/cut5- cells fail to delay mitosis in response to gamma-irradiation whilst retaining a normal checkpoint response to the UV-mimetic drug 4-nitroquinoline-1-oxide. The lack of the gamma-irradiation checkpoint is reminiscent of the deficiency associated with mutation of the human ATM locus, the causative deficiency of the heritable disorder ataxia telangiectasia. The implications of our results for the organisation of distinct checkpoint-response pathways in both fission yeast and mammalian cells are discussed. Moreover the data are consistent with a model in which the generation of the S-Phase checkpoint signal is DNA polymerase epsilon dependent.
Insights
The rad4/cut5 gene in fission yeast is crucial for DNA replication and the S-phase checkpoint. Its mutation separates replication from checkpoint functions, indicating Rad4 protein directly generates checkpoint signals, unlike other replication proteins.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The rad4/cut5 gene is essential in Schizosaccharomyces pombe, affecting DNA replication and checkpoint responses.
- Defects in DNA replication proteins often abolish checkpoint responses, suggesting a link in signal generation.
Purpose of the Study:
- To investigate the distinct roles of the rad4/cut5 gene product in DNA replication and S-phase checkpoint control.
- To determine if the Rad4 protein is directly involved in generating the S-phase checkpoint signal.
Main Methods:
- Utilizing hydroxyurea to inhibit DNA replication in rad4/cut5 mutant cells at semi-permissive temperatures.
- Assessing checkpoint responses to gamma-irradiation and UV-mimetic drugs in rad4/cut5-deficient cells at restrictive temperatures.
Main Results:
- rad4/cut5 cells failed to arrest division upon hydroxyurea treatment, separating replication and checkpoint functions.
- The Rad4 protein appears directly involved in generating the S-phase checkpoint signal.
- rad4/cut5-deficient cells lacked a gamma-irradiation checkpoint but retained a normal response to UV-mimetic drugs.
Conclusions:
- The Rad4 protein plays a direct role in generating the S-phase checkpoint signal, distinct from its replication function.
- Fission yeast exhibits distinct checkpoint pathways for different types of DNA damage, similar to mammalian cells.
- The S-phase checkpoint signal generation may depend on DNA polymerase epsilon.
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