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Updated: Jul 19, 2026

Manipulation and Analysis of Cell Cycle-Dependent Processes in Budding Yeast
Published on: September 26, 2025
Yeast Rev1 is cell cycle regulated, phosphorylated in response to DNA damage and its binding to chromosomes is
Simone Sabbioneda1, Ileana Bortolomai, Michele Giannattasio
1Dipartimento di Scienze Biomolecolari e Biotecnologie, Università degli Studi di Milano., Via Celoria 26, 20133 Milano, Italy.
Abstract:
Translesion DNA synthesis (TLS) is one of the mechanisms involved in lesion bypass during DNA replication. Three TLS polymerases (Pol) are present in the yeast Saccharomyces cerevisiae: Pol zeta, Pol eta and the product of the REV1 gene. Rev1 is considered a deoxycytidyl transferase because it almost exclusively inserts a C residue in front of the lesion. Even though REV1 is required for most of the UV-induced and spontaneous mutagenesis events, the role of Rev1 is poorly understood since its polymerase activity is often dispensable. Rev1 interacts with several TLS polymerases in mammalian cells and may act as a platform in the switching mechanism required to substitute a replicative polymerase with a TLS polymerase at the sites of DNA lesions. Here we show that yeast Rev1 is a phosphoprotein, and the level of this modification is cell cycle regulated under normal growing conditions. Rev1 is unphosphorylated in G1, starts to be modified while cells are passing S phase and it becomes hyper-phosphorylated in mitosis. Rev1 is also hyper-phosphorylated in response to a variety of DNA damaging agents, including treatment with a radiomimetic drug mostly causing double-strand breaks (DSB). By using the chromosome spreading technique we found the Rev1 is bound to chromosomes throughout the cell cycle, and its binding does not significantly increase in response to genotoxic stress. Therefore, Rev1 phosphorylation does not appear to modulate its binding to chromosomes, suggesting that such modification may influence other aspects of the TLS process. Rev1 binding under damaged and undamaged conditions, is at least partially dependent on MEC1, a gene playing a pivotal role in the DNA damage checkpoint cascade. This genetic dependency may suggest a role for MEC1 in spontaneous mutagenesis events, which require a functional REV1 gene.
Insights
Yeast Rev1 protein is phosphorylated during the cell cycle and in response to DNA damage. This phosphorylation, regulated by MEC1, likely influences translesion DNA synthesis but not Rev1
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Translesion DNA synthesis (TLS) bypasses DNA lesions during replication.
- Yeast Saccharomyces cerevisiae has three TLS polymerases: Pol zeta, Pol eta, and Rev1.
- Rev1, a deoxycytidyl transferase, is crucial for UV-induced and spontaneous mutagenesis, though its polymerase activity is often dispensable.
Purpose of the Study:
- Investigate the cell cycle regulation and DNA damage response of yeast Rev1.
- Determine the role of Rev1 phosphorylation in its function and chromosomal binding.
- Explore the relationship between Rev1, MEC1, and DNA damage checkpoints.
Main Methods:
- Cell cycle analysis of Rev1 phosphorylation.
- Treatment with DNA damaging agents.
- Chromosome spreading technique to assess Rev1 binding.
- Genetic analysis involving MEC1.
Main Results:
- Yeast Rev1 is a phosphoprotein with cell cycle-regulated phosphorylation, increasing from S phase to mitosis.
- Rev1 becomes hyper-phosphorylated upon exposure to DNA damaging agents, including double-strand break inducers.
- Rev1 binds to chromosomes throughout the cell cycle, and this binding is not significantly altered by genotoxic stress.
- Rev1 chromosomal binding is partially dependent on MEC1, a key DNA damage checkpoint gene.
Conclusions:
- Rev1 phosphorylation does not appear to affect its chromosomal binding but may regulate other aspects of TLS.
- The MEC1 dependency of Rev1 binding suggests a role for MEC1 in spontaneous mutagenesis requiring REV1.
- Rev1's phosphorylation pattern indicates its involvement in coordinating DNA replication and repair pathways.
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