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Detection of Homologous Recombination Intermediates via Proximity Ligation and Quantitative PCR in Saccharomyces cerevisiae
Published on: September 11, 2022
The checkpoint Saccharomyces cerevisiae Rad9 protein contains a tandem tudor domain that recognizes DNA
Nathalie Lancelot1, Gaëlle Charier, Joël Couprie
1Institut de Biologie et Technologies de Saclay, CEA Saclay, 91191 Gif-sur-Yvette, France.
Abstract:
DNA damage checkpoints are signal transduction pathways that are activated after genotoxic insults to protect genomic integrity. At the site of DNA damage, 'mediator' proteins are in charge of recruiting 'signal transducers' to molecules 'sensing' the damage. Budding yeast Rad9, fission yeast Crb2 and metazoan 53BP1 are presented as mediators involved in the activation of checkpoint kinases. Here we show that, despite low sequence conservation, Rad9 exhibits a tandem tudor domain structurally close to those found in human/mouse 53BP1 and fission yeast Crb2. Moreover, this region is important for the resistance of Saccharomyces cerevisiae to different genotoxic stresses. It does not mediate direct binding to a histone H3 peptide dimethylated on K79, nor to a histone H4 peptide dimethylated on lysine 20, as was demonstrated for 53BP1. However, the tandem tudor region of Rad9 directly interacts with single-stranded DNA and double-stranded DNAs of various lengths and sequences through a positively charged region absent from 53BP1 and Crb2 but present in several yeast Rad9 homologs. Our results argue that the tandem tudor domains of Rad9, Crb2 and 53BP1 mediate chromatin binding next to double-strand breaks. However, their modes of chromatin recognition are different, suggesting that the corresponding interactions are differently regulated.
Insights
Budding yeast Rad9
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA damage checkpoints safeguard genomic integrity after genotoxic stress.
- Mediator proteins recruit signal transducers to DNA damage sites.
- Rad9 (budding yeast), Crb2 (fission yeast), and 53BP1 (metazoan) are key checkpoint mediators.
Purpose of the Study:
- To investigate the structural and functional roles of the Rad9 tandem tudor domain in DNA damage response.
- To compare the DNA-binding mechanisms of Rad9, Crb2, and 53BP1.
Main Methods:
- Structural analysis of Rad9's tandem tudor domain.
- Assessment of Rad9's role in genotoxic stress resistance in Saccharomyces cerevisiae.
- DNA-binding assays to characterize interactions with various DNA forms and histone peptides.
Main Results:
- Rad9 possesses a tandem tudor domain structurally similar to Crb2 and 53BP1.
- This domain is crucial for Saccharomyces cerevisiae resistance to genotoxic stresses.
- Rad9's tandem tudor domain binds directly to single- and double-stranded DNA via a unique positively charged region, unlike 53BP1 and Crb2.
- It does not bind to specific methylated histone peptides targeted by 53BP1.
Conclusions:
- Tandem tudor domains of Rad9, Crb2, and 53BP1 mediate chromatin binding near double-strand breaks.
- Distinct DNA recognition mechanisms exist among these mediators, implying differential regulation of their interactions.
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