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Updated: Aug 14, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Mechanistic insight into the Cdc28-related protein kinase Ime2 through analysis of replication protein A
Dawn M Clifford1, Kara E Stark, Kathryn E Gardner
1Barbara Ann Karmanos Cancer Institute, Department of Pathology, Wayne State University School of Medicine, Detroit, Michigan, USA.
Abstract:
In budding yeast, the meiosis-specific protein kinase Ime2 is required for normal meiotic progression. Current evidence suggests that Ime2 is functionally related to Cdc28, the major cyclin-dependent kinase in yeast that is essential for both cell cycle and meiosis. We have previously reported that a natural target of Ime2 activity is replication protein A (RPA), the cellular single-stranded DNA-binding protein that performs critical functions during DNA replication, repair and recombination. Ime2-dependent RPA phosphorylation first occurs early in meiosis and targets the middle subunit of the RPA heterotrimeric complex (Rfa2). We now demonstrate that Rfa2 serine 27 (S27) is required for Ime2-dependent Rfa2 phosphorylation in vivo. S27 is also required for Rfa2 phosphorylation in vitro catalyzed by immunoprecipitated Ime2. In addition, Ime2 mediates in vitro phosphorylation of a short peptide containing Rfa2 amino acids 23 through 29, thereby providing evidence that S27 itself is the phosphoacceptor. Phosphorylation site mapping supports this conclusion, as mass spectrometry analysis has revealed that at least three residues within Rfa2 amino acids 2 through 35 become phosphorylated specifically during meiosis. Although S27 is embedded in a motif that is recognized by several protein kinases, this sequence is not a typical target of cyclin-dependent kinases. Therefore, the mechanism underlying Ime2 substrate recognition could differ from that of Cdc28.
Insights
The meiosis protein kinase Ime2 phosphorylates replication protein A (RPA) subunit Rfa2 at serine 27 during budding yeast meiosis. This specific phosphorylation is crucial for meiotic progression and may involve a distinct mechanism from Cdc28 kinases.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Meiosis is a critical cell division process requiring precise regulation.
- Ime2 is a meiosis-specific protein kinase essential for meiotic progression in budding yeast.
- Replication protein A (RPA) is vital for DNA replication, repair, and recombination.
Purpose of the Study:
- To identify the specific site and requirements for Ime2-dependent phosphorylation of RPA.
- To investigate the role of Rfa2 serine 27 (S27) in this phosphorylation event.
- To compare the substrate recognition mechanism of Ime2 with that of Cdc28.
Main Methods:
- In vivo and in vitro kinase assays using budding yeast.
- Site-directed mutagenesis to alter Rfa2 phosphorylation sites.
- Mass spectrometry for phosphorylation site mapping.
- Peptide phosphorylation assays.
Main Results:
- Rfa2 serine 27 (S27) is essential for Ime2-mediated phosphorylation of Rfa2 in vivo and in vitro.
- Ime2 directly phosphorylates a peptide containing Rfa2 amino acids 23-29, confirming S27 as the phosphoacceptor.
- Mass spectrometry identified at least three phosphorylated residues within Rfa2 amino acids 2-35 during meiosis.
- The Rfa2 S27 motif is not a typical cyclin-dependent kinase target.
Conclusions:
- Rfa2 S27 is the primary site of Ime2-dependent phosphorylation during budding yeast meiosis.
- Ime2-mediated RPA phosphorylation is crucial for normal meiotic progression.
- Ime2 may employ a distinct substrate recognition mechanism compared to Cdc28.
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