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Prevention of DNA Rereplication Through a Meiotic Recombination Checkpoint Response
Nicole A Najor1, Layne Weatherford2, George S Brush3,4
1Department of Pharmacology, Wayne State University School of Medicine, Detroit, Michigan 48201.
Abstract:
In the budding yeast Saccharomyces cerevisiae, unnatural stabilization of the cyclin-dependent kinase inhibitor Sic1 during meiosis can trigger extra rounds of DNA replication. When programmed DNA double-strand breaks (DSBs) are generated but not repaired due to absence of DMC1, a pathway involving the checkpoint gene RAD17 prevents this DNA rereplication. Further genetic analysis has now revealed that prevention of DNA rereplication also requires MEC1, which encodes a protein kinase that serves as a central checkpoint regulator in several pathways including the meiotic recombination checkpoint response. Downstream of MEC1, MEK1 is required through its function to inhibit repair between sister chromatids. By contrast, meiotic recombination checkpoint effectors that regulate gene expression and cyclin-dependent kinase activity are not necessary. Phosphorylation of histone H2A, which is catalyzed by Mec1 and the related Tel1 protein kinase in response to DSBs, and can help coordinate activation of the Rad53 checkpoint protein kinase in the mitotic cell cycle, is required for the full checkpoint response. Phosphorylation sites that are targeted by Rad53 in a mitotic S phase checkpoint response are also involved, based on the behavior of cells containing mutations in the DBF4 and SLD3 DNA replication genes. However, RAD53 does not appear to be required, nor does RAD9, which encodes a mediator of Rad53, consistent with their lack of function in the recombination checkpoint pathway that prevents meiotic progression. While this response is similar to a checkpoint mechanism that inhibits initiation of DNA replication in the mitotic cell cycle, the evidence points to a new variation on DNA replication control.
Insights
In yeast, preventing DNA rereplication during meiosis requires MEC1 and MEK1. This pathway, involving DNA double-strand breaks, differs from known cell cycle checkpoints.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Unnatural stabilization of Sic1 in Saccharomyces cerevisiae during meiosis can lead to extra DNA replication rounds.
- Unrepaired DNA double-strand breaks (DSBs) during meiosis trigger checkpoint pathways to prevent DNA rereplication.
- The RAD17 checkpoint gene is known to prevent DNA rereplication when DSBs are unrepaired due to DMC1 absence.
Purpose of the Study:
- To investigate the genetic requirements for preventing DNA rereplication during meiosis in yeast.
- To elucidate the role of MEC1 and other checkpoint genes in this specific meiotic DNA replication control pathway.
Main Methods:
- Genetic analysis in Saccharomyces cerevisiae.
- Investigated the function of checkpoint genes including MEC1, MEK1, RAD17, and RAD53.
- Examined the role of histone H2A phosphorylation and specific phosphorylation sites.
Main Results:
- Prevention of DNA rereplication requires MEC1, a central checkpoint regulator, and MEK1, which inhibits sister chromatid repair.
- Histone H2A phosphorylation, catalyzed by Mec1 and Tel1, is necessary for the full checkpoint response.
- RAD53 and RAD9 are not required for this meiotic recombination checkpoint pathway, distinguishing it from mitotic checkpoints.
Conclusions:
- A novel DNA replication control mechanism operates during meiosis in yeast, distinct from established mitotic checkpoints.
- MEC1 and MEK1 play crucial roles downstream of unrepaired DSBs in preventing meiotic DNA rereplication.
- This pathway highlights a unique variation of cell cycle control during meiotic progression.
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