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Updated: Sep 26, 2026

Real-time Observation of the DNA Strand Exchange Reaction Mediated by Rad51
Published on: February 13, 2019
The recombination-deficient mutant RPA (rfa1-t11) is displaced slowly from single-stranded DNA by Rad51 protein
Noriko Kantake1, Tomohiko Sugiyama, Richard D Kolodner
1Sections of Microbiology and of Molecular and Cellular Biology, Center for Genetics and Development, University of California, Davis, California 95616, USA.
Abstract:
Replication protein-A (RPA) is involved in many processes of DNA metabolism, including DNA replication, repair, and recombination. Cells carrying a mutation in the largest subunit of RPA (rfa1-t11: K45E) have defects in meiotic recombination, mating-type switching, and survival after DNA damage caused by UV and methyl methanesulfonate, as well as increased genome instability; however, this mutant has no significant defect in DNA replication. We purified the RPA heterotrimer containing the rfa1-t11 substitution (RPA(rfa1-t11)). This mutant RPA binds single-stranded DNA (ssDNA) with the same site size, and the RPA(rfa1-t11).ssDNA complex shows a similar sensitivity to disruption by salt as the wild-type RPA.ssDNA complex. RPA(rfa1-t11) stimulates DNA strand exchange, provided that the Rad51 protein.ssDNA nucleoprotein complex is assembled prior to introduction of the mutant RPA. However, RPA(rfa1-t11) is displaced from ssDNA by Rad51 protein more slowly than wild-type RPA and, as a consequence, Rad51 protein-mediated DNA strand exchange is inhibited when the ssDNA is in a complex with RPA(rfa1-t11). Rad52 protein can stimulate displacement of RPA(rfa1-t11) from ssDNA by Rad51 protein, but the rate of displacement remains slow compared with wild-type RPA. These in vitro results suggest that, in vivo, RPA is bound to ssDNA prior to Rad51 protein and that RPA displacement by Rad51 protein is a critical step in homologous recombination, which is impaired in the rfa1-t11 mutation.
Insights
A mutation in Replication Protein-A (RPA) impairs homologous recombination by slowing the displacement of RPA from single-stranded DNA (ssDNA) by Rad51 protein, impacting DNA repair and genome stability.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Replication protein-A (RPA) is crucial for DNA replication, repair, and recombination.
- A specific mutation (rfa1-t11: K45E) in the largest RPA subunit causes defects in meiotic recombination, mating-type switching, and DNA damage survival, despite normal DNA replication.
Purpose of the Study:
- To investigate the in vitro effects of the rfa1-t11 RPA mutation on DNA binding and recombination.
- To elucidate the mechanism by which the rfa1-t11 mutation impairs homologous recombination.
Main Methods:
- Purification of RPA heterotrimer with the rfa1-t11 mutation (RPA(rfa1-t11)).
- In vitro assays measuring RPA binding to single-stranded DNA (ssDNA).
- Analysis of Rad51 protein-mediated DNA strand exchange in the presence of wild-type RPA and RPA(rfa1-t11).
Main Results:
- RPA(rfa1-t11) binds ssDNA with similar site size and salt sensitivity as wild-type RPA.
- RPA(rfa1-t11) inhibits Rad51-mediated DNA strand exchange due to slower displacement from ssDNA.
- Rad52 protein partially restores RPA(rfa1-t11) displacement by Rad51, but the process remains inefficient compared to wild-type RPA.
Conclusions:
- The rfa1-t11 mutation impairs homologous recombination by hindering the critical step of RPA displacement by Rad51.
- These findings suggest RPA must be efficiently displaced by Rad51 for successful homologous recombination in vivo.
- The study highlights the importance of RPA dynamics in maintaining genome stability.
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