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Updated: Mar 21, 2026

Real-time Observation of the DNA Strand Exchange Reaction Mediated by Rad51
Published on: February 13, 2019
RAD51 variant proteins from human lung and kidney tumors exhibit DNA strand exchange defects
Michelle C Silva1, Milagros D Morrical1, Katie E Bryan1
1Department of Biochemistry, University of Vermont College of Medicine, Burlington, VT 05405, United States.
Abstract:
In human cells, error-free repair of DNA double-strand breaks requires the DNA pairing and strand exchange activities of RAD51 recombinase. Activation of RAD51 recombination activities requires the assembly of RAD51 presynaptic filaments on the single-stranded DNA that forms at resected DSB ends. Mutations in proteins that control presynaptic filament assembly, such as BRCA2, and in RAD51 itself, are associated with human breast cancer. Here we describe the properties of two mutations in RAD51 protein that derive from human lung and kidney tumors, respectively. Sequence variants Q268P and Q272L both map to the DNA binding loop 2 (L2) region of RAD51, a motif that is involved in DNA binding and in the allosteric activation of ATP hydrolysis and DNA strand exchange activities. Both mutations alter the thermal stability, DNA binding, and ATPase properties of RAD51, however both variants retain intrinsic DNA strand exchange activity towards oligonucleotide substrates under optimized conditions. In contrast, both Q268P and Q272L variants exhibit drastically reduced DNA strand exchange activity in reaction mixtures containing long homologous ssDNA and dsDNA substrates and human RPA protein. Mixtures of wild-type and variant proteins also exhibit reduced DNA strand exchange activity, suggesting that heterozygous mutations could negatively affect DNA recombination and repair processes in vivo. Together, the findings of this study suggest that hypomorphic missense mutations in RAD51 protein could be drivers of genomic instability in cancer cells, and thereby contribute to the etiology of metastatic disease.
Insights
Mutations in RAD51 recombinase, crucial for DNA repair, can impair its function. These RAD51 variants found in tumors may drive genomic instability and cancer metastasis.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA double-strand breaks (DSBs) are repaired by homologous recombination, requiring RAD51 recombinase.
- RAD51 filament assembly on single-stranded DNA is essential for DSB repair.
- Mutations in BRCA2 and RAD51 are linked to human breast cancer.
Purpose of the Study:
- To characterize two RAD51 mutations (Q268P and Q272L) from human tumors.
- To investigate the impact of these mutations on RAD51's DNA binding, ATPase, and strand exchange activities.
Main Methods:
- Site-directed mutagenesis to create RAD51 variants.
- Biochemical assays to assess thermal stability, DNA binding, ATPase activity, and DNA strand exchange.
- Use of oligonucleotide and long DNA substrates with RPA protein.
Main Results:
- Q268P and Q272L mutations altered RAD51's thermal stability, DNA binding, and ATPase properties.
- Both variants retained intrinsic strand exchange on short substrates but showed drastically reduced activity on long substrates with RPA.
- Mixtures of wild-type and variant RAD51 reduced overall strand exchange activity.
Conclusions:
- Hypomorphic RAD51 mutations can impair DNA recombination and repair.
- These impaired RAD51 functions may contribute to genomic instability in cancer.
- RAD51 variants could play a role in the etiology of metastatic disease.
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