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Characterization of the checkpoint gene RAD53/MEC2 in Saccharomyces cerevisiae
1Department of Molecular and Cellular Biology, University of Arizona, Tucson 85721, USA.
Abstract:
Saccharomyces cerevisiae cells carrying mutations in RAD53/MEC2 fail to arrest in the S phase when DNA replication is blocked (the S/M checkpoint) or in the G2 phase when DNA is damaged (the G2/M checkpoint). We isolated and determined the DNA sequence of RAD53 and found that it is identical to the SPK1 gene previously identified by Stern et al. (1991). In addition to its checkpoint functions, we show here that RAD53 is essential for cell viability because null mutants are inviable. Weak genomic suppressors of the essential function do arise frequently, though they do not suppress the checkpoint defects of the null mutant. This genetically separates the essential and checkpoint functions. We show genetically that the protein kinase domain is essential for all RAD53-dependent functions tested because a site-specific mutation that inactivates the protein kinase activity results in a mutant phenotype indistinguishable from that of a null mutant. Overexpression of RAD53, or its kinase domain alone, resulted in a delay in cell-cycle progression that required the intact kinase function. The cell-cycle delay did not require any of the checkpoint genes tested (e.g. rad9 or mecl), indicating that the cell-cycle delay is either unrelated to the checkpoint responses, or that it occurs constitutively because RAD53 acts further downstream of the checkpoint genes tested. Finally, elimination of sequences in the promoter region of RAD53 revealed complex regulatory elements.
Insights
RAD53 is essential for cell viability and DNA replication checkpoints in Saccharomyces cerevisiae. Its protein kinase domain is crucial for both essential and checkpoint functions, with distinct regulatory elements.
Area of Science:
- Molecular Biology
- Cell Cycle Regulation
- Genetics
Background:
- Saccharomyces cerevisiae cells with RAD53/MEC2 mutations exhibit defects in S/M and G2/M checkpoints.
- RAD53 plays a critical role in cell cycle control and DNA damage response.
Purpose of the Study:
- To investigate the essential and checkpoint functions of RAD53.
- To elucidate the role of the RAD53 protein kinase domain in cell viability and cell cycle progression.
Main Methods:
- Gene sequencing to identify RAD53.
- Genetic analysis of null mutants and suppressors.
- Site-specific mutagenesis to inactivate the protein kinase domain.
- Overexpression studies of RAD53 and its kinase domain.
Main Results:
- RAD53 is identical to SPK1 and is essential for cell viability.
- The protein kinase domain of RAD53 is critical for all tested functions.
- Overexpression of RAD53 or its kinase domain causes cell-cycle delay independent of known checkpoint genes.
- Complex regulatory elements were identified in the RAD53 promoter region.
Conclusions:
- RAD53 has both essential cell viability and DNA checkpoint functions, which can be genetically separated.
- The protein kinase activity of RAD53 is indispensable for its diverse cellular roles.
- RAD53-mediated cell-cycle delay may operate downstream of or independently from canonical checkpoint pathways.