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Updated: May 6, 2026

Real-time Observation of the DNA Strand Exchange Reaction Mediated by Rad51
Published on: February 13, 2019
DNA helicase Srs2 disrupts the Rad51 presynaptic filament
Lumir Krejci1, Stephen Van Komen, Ying Li
1Institute of Biotechnology and Department of Molecular Medicine, University of Texas Health Science Center at San Antonio, 15355 Lambda Drive, San Antonio, Texas 78245, USA. krejci@uthscsa.edu
Abstract:
Mutations in the Saccharomyces cerevisiae gene SRS2 result in the yeast's sensitivity to genotoxic agents, failure to recover or adapt from DNA damage checkpoint-mediated cell cycle arrest, slow growth, chromosome loss, and hyper-recombination. Furthermore, double mutant strains, with mutations in DNA helicase genes SRS2 and SGS1, show low viability that can be overcome by inactivating recombination, implying that untimely recombination is the cause of growth impairment. Here we clarify the role of SRS2 in recombination modulation by purifying its encoded product and examining its interactions with the Rad51 recombinase. Srs2 has a robust ATPase activity that is dependent on single-stranded DNA (ssDNA) and binds Rad51, but the addition of a catalytic quantity of Srs2 to Rad51-mediated recombination reactions causes severe inhibition of these reactions. We show that Srs2 acts by dislodging Rad51 from ssDNA. Thus, the attenuation of recombination efficiency by Srs2 stems primarily from its ability to dismantle the Rad51 presynaptic filament efficiently. Our findings have implications for the basis of Bloom's and Werner's syndromes, which are caused by mutations in DNA helicases and are characterized by increased frequencies of recombination and a predisposition to cancers and accelerated ageing.
Insights
The SRS2 gene product, Srs2, is a DNA helicase that prevents excessive DNA recombination by dislodging Rad51 proteins. This mechanism is crucial for maintaining genomic stability and preventing diseases like Bloom's and Werner's syndromes.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Mutations in Saccharomyces cerevisiae gene SRS2 lead to sensitivity to genotoxic agents, cell cycle arrest issues, and hyper-recombination.
- The double mutant strains of SRS2 and SGS1 DNA helicase genes exhibit low viability, suggesting untimely recombination impairs growth.
Purpose of the Study:
- To elucidate the role of SRS2 in modulating DNA recombination.
- To investigate the interaction between the Srs2 protein and the Rad51 recombinase.
Main Methods:
- Purification of the Srs2 protein.
- Examination of Srs2 interactions with Rad51.
- Analysis of Srs2's effect on Rad51-mediated recombination reactions in vitro.
Main Results:
- Srs2 possesses significant ATPase activity dependent on single-stranded DNA (ssDNA).
- Srs2 binds to Rad51.
- Srs2 efficiently dislodges Rad51 from ssDNA, inhibiting recombination reactions.
Conclusions:
- Srs2 attenuates recombination by dismantling the Rad51 presynaptic filament.
- This DNA repair mechanism has implications for understanding Bloom's and Werner's syndromes, which involve DNA helicase mutations, increased recombination, and predisposition to cancer and aging.
Related Concept Videos
DNA Helicases
DNA Damage can Stall the Cell Cycle
Homologous Recombination
Restarting Stalled Replication Forks
Single-Strand DNA Binding Proteins
DNA Damage Can Stall the Cell Cycle

