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Updated: Jul 6, 2026

Imaging Mismatch Repair and Cellular Responses to DNA Damage in Bacillus subtilis
Published on: February 8, 2010
The mismatch repair complex hMutS alpha recognizes 5-fluorouracil-modified DNA: implications for chemosensitivity and
Akihiro Tajima1, Martin T Hess, Betty L Cabrera
1Department of Medicine, University of California, La Jolla, California, USA.
Background & Aims:
Recent evidence suggests that patients with advanced microsatellite unstable (MSI) colorectal cancers lack a survival benefit with 5-fluorouracil (5-FU)-based chemotherapy. Additionally, tumor cells with MSI (caused by defective DNA mismatch repair) are more resistant to 5-FU in culture compared with microsatellite stable cells, despite similar amounts of 5-FU incorporation into the cell's DNA. We examined whether the component of the DNA mismatch repair (MMR) system that normally recognizes single base pair mismatches could specifically recognize 5-FU incorporated into DNA as a potential mechanism for chemosensitivity.
Methods:
We synthesized oligonucleotides with and without incorporated 5-FU and created oligonucleotides with a single base pair mismatch (as a positive control) to perform electromobility gel shift assays (EMSA) with a purified, baculovirus-synthesized hMutS alpha MMR complex. We also utilized surface plasmon resonance to measure relative binding differences between the oligonucleotides and hMutS alpha in real time.
Results:
Using EMSA, we demonstrate that hMutS alpha recognizes and binds 5-FU-modified DNA. The reaction is specific as added ATP dissociates the hMutS alpha complex from the 5-FU-modified strand. Using surface plasmon resonance, we demonstrate greater binding between hMutS alpha and 5-FU-modified DNA compared with complementary DNA or DNA containing a C/T mismatch.
Conclusions:
The MMR complex hMutS alpha specifically recognizes and binds to 5-FU-modified DNA. Because MMR components are required for the induction of apoptosis by many DNA-damaging agents, the chemosensitivity of 5-FU for patients with advanced colorectal cancer may be in part due to recognition of 5-FU incorporated into tumor DNA by the MMR proteins.
Insights
The DNA mismatch repair complex hMutS alpha specifically recognizes and binds to 5-fluorouracil (5-FU)-modified DNA. This interaction may explain why 5-FU chemotherapy is effective for some colorectal cancers with microsatellite instability.
Area of Science:
- Molecular biology
- Cancer research
- Biochemistry
Background:
- Microsatellite unstable (MSI) colorectal cancers may not benefit from 5-fluorouracil (5-FU) chemotherapy.
- MSI tumor cells show resistance to 5-FU, despite similar DNA incorporation of the drug.
- The mechanism behind 5-FU chemosensitivity in MSI cancers requires elucidation.
Purpose of the Study:
- To investigate if the DNA mismatch repair (MMR) system recognizes 5-FU incorporated into DNA.
- To explore the role of MMR in 5-FU chemosensitivity in colorectal cancer.
Main Methods:
- Electromobility gel shift assays (EMSA) using purified hMutS alpha MMR complex.
- Synthesis of 5-FU-modified and mismatch control oligonucleotides.
- Surface plasmon resonance to quantify binding kinetics.
Main Results:
- h hMutS alpha specifically recognizes and binds to 5-FU-modified DNA.
- ATP binding dissociates the hMutS alpha complex, indicating specificity.
- Binding affinity of hMutS alpha to 5-FU DNA is higher than to mismatched DNA.
Conclusions:
- The MMR complex hMutS alpha directly binds to 5-FU-modified DNA.
- MMR's recognition of 5-FU DNA may contribute to 5-FU-induced apoptosis and chemosensitivity in colorectal cancer.
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