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Correlation between checkpoint activation and in vivo assembly of the yeast checkpoint complex Rad17-Mec3-Ddc1
Michele Giannattasio1, Simone Sabbioneda, Mario Minuzzo
1Dipartimento di Genetica e di Biologia dei Microrganismi, Università degli Studi di Milano, Via Celoria 26, 20133 Milano, Italy.
Abstract:
Rad17-Mec3-Ddc1 forms a proliferating cell nuclear antigen-like complex that is required for the DNA damage response in Saccharomyces cerevisiae and acts at an early step of the signal transduction cascade activated by DNA lesions. We used the mec3-dn allele, which causes a dominant negative checkpoint defect in G1 but not in G2, to test the stability of the complex in vivo and to correlate its assembly and disassembly with the mechanisms controlling checkpoint activation. Under physiological conditions, the mutant complex is formed both in G1 and G2, although the mutant phenotype is detectable only in G1, suggesting that is not the presence of the mutant complex per se to cause a checkpoint defect. Our data indicate that the Rad17-Mec3-Ddc1 complex is very stable, and it takes several hours to replace Mec3 with Mec3-dn within a wild type complex. On the other hand, the mutant complex is rapidly assembled when starting from a condition where the complex is not pre-assembled, indicating that the critical factor for the substitution is the disassembly step rather than complex formation. Moreover, the kinetics of mutant complex assembly, starting from conditions in which the wild type form is present, parallels the kinetics of checkpoint inactivation, suggesting that the complex acts in a stoichiometric way, rather than catalytically.
Insights
The Rad17-Mec3-Ddc1 complex in yeast is stable and its assembly/disassembly kinetics correlate with DNA damage checkpoint inactivation, suggesting a stoichiometric role in the response.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The Rad17-Mec3-Ddc1 complex is crucial for the DNA damage response in Saccharomyces cerevisiae.
- It functions early in the signal transduction cascade initiated by DNA lesions.
Purpose of the Study:
- To investigate the in vivo stability of the Rad17-Mec3-Ddc1 complex.
- To correlate complex assembly and disassembly with DNA damage checkpoint activation mechanisms.
Main Methods:
- Utilized a dominant-negative mec3-dn allele causing a G1 checkpoint defect.
- Assessed complex stability and assembly/disassembly kinetics under physiological conditions.
Main Results:
- The Rad17-Mec3-Ddc1 complex is highly stable, with wild-type complex replacement by the mutant form taking hours.
- Mutant complex assembly is rapid when the complex is not pre-assembled, highlighting disassembly as critical.
- Kinetics of mutant complex assembly mirrored checkpoint inactivation, suggesting stoichiometric function.
Conclusions:
- The stability of the Rad17-Mec3-Ddc1 complex is a key factor in DNA damage checkpoint regulation.
- The complex likely functions stoichiometrically, not catalytically, in the DNA damage response pathway.