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Published on: March 18, 2010
DNA Damage Tolerance Pathway Choice Through Uls1 Modulation of Srs2 SUMOylation in Saccharomyces cerevisiae
Karol Kramarz1, Seweryn Mucha1, Ireneusz Litwin1
1Institute of Experimental Biology, Faculty of Biological Sciences, University of Wrocław, 50-383, Poland.
Abstract:
DNA damage tolerance and homologous recombination pathways function to bypass replication-blocking lesions and ensure completion of DNA replication. However, inappropriate activation of these pathways may lead to increased mutagenesis or formation of deleterious recombination intermediates, often leading to cell death or cancer formation in higher organisms. Post-translational modifications of PCNA regulate the choice of repair pathways at replication forks. Its monoubiquitination favors translesion synthesis, while polyubiquitination stimulates template switching. Srs2 helicase binds to small ubiquitin-related modifier (SUMO)-modified PCNA to suppress a subset of Rad51-dependent homologous recombination. Conversely, SUMOylation of Srs2 attenuates its interaction with PCNA Sgs1 helicase and Mus81 endonuclease are crucial for disentanglement of repair intermediates at the replication fork. Deletion of both genes is lethal and can be rescued by inactivation of Rad51-dependent homologous recombination. Here we show that Saccharomyces cerevisiae Uls1, a member of the Swi2/Snf2 family of ATPases and a SUMO-targeted ubiquitin ligase, physically interacts with both PCNA and Srs2, and promotes Srs2 binding to PCNA by downregulating Srs2-SUMO levels at replication forks. We also identify deletion of ULS1 as a suppressor of mus81Δ sgs1Δ synthetic lethality and hypothesize that uls1Δ mutation results in a partial inactivation of the homologous recombination pathway, detrimental in cells devoid of both Sgs1 and Mus81 We thus propose that Uls1 contributes to the pathway where intermediates generated at replication forks are dismantled by Srs2 bound to SUMO-PCNA. Upon ULS1 deletion, accumulating Srs2-SUMO-unable to bind PCNA-takes part in an alternative PCNA-independent recombination repair salvage pathway(s).
Insights
The study reveals that Uls1 protein regulates DNA repair pathways by controlling Srs2 binding to PCNA, influencing homologous recombination and preventing cell death. Deleting ULS1 suppresses synthetic lethality in specific DNA repair mutants.
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair Mechanisms
Background:
- DNA damage tolerance and homologous recombination pathways are critical for replication fidelity.
- Dysregulation of these pathways can lead to mutagenesis, cell death, and cancer.
- Post-translational modifications of PCNA (proliferating cell nuclear antigen) dictate repair pathway choice at replication forks.
Purpose of the Study:
- To investigate the role of Saccharomyces cerevisiae Uls1 in regulating DNA repair pathways.
- To elucidate the interaction between Uls1, PCNA, and Srs2 helicase.
- To understand how Uls1 influences homologous recombination and its suppression of synthetic lethality.
Main Methods:
- Biochemical assays to demonstrate physical interaction between Uls1, PCNA, and Srs2.
- Analysis of SUMOylation levels of Srs2 in the presence and absence of Uls1.
- Genetic analysis to identify Uls1 as a suppressor of synthetic lethality in mus81Δ sgs1Δ mutants.
Main Results:
- Uls1 physically interacts with both PCNA and Srs2.
- Uls1 promotes Srs2 binding to PCNA by reducing Srs2-SUMO levels at replication forks.
- Deletion of ULS1 suppresses the synthetic lethality of mus81Δ sgs1Δ mutants, suggesting a role in homologous recombination regulation.
Conclusions:
- Uls1 plays a crucial role in dismantling repair intermediates at replication forks via Srs2-SUMO-PCNA interaction.
- Loss of Uls1 leads to an accumulation of Srs2-SUMO, which may engage alternative, PCNA-independent repair pathways.
- Uls1 is essential for maintaining genome stability by balancing homologous recombination and preventing deleterious repair outcomes.
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