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Both hMutSα and hMutSß DNA mismatch repair complexes participate in 5-fluorouracil cytotoxicity
Akihiro Tajima1, Moriya Iwaizumi, Stephanie Tseng-Rogenski
1Division of Gastroenterology, Department of Medicine, University of California San Diego, La Jolla, California, United States of America.
Background:
Patients with advanced microsatellite unstable colorectal cancers do not show a survival benefit from 5-fluorouracil (5-FU)-based chemotherapy. We and others have shown that the DNA mismatch repair (MMR) complex hMutSα binds 5-FU incorporated into DNA. Although hMutSß is known to interact with interstrand crosslinks (ICLs) induced by drugs such as cisplatin and psoralen, it has not been demonstrated to interact with 5-FU incorporated into DNA. Our aim was to examine if hMutSß plays a role in 5-FU recognition.
Methods:
We compared the normalized growth of 5-FU treated cells containing either or both mismatch repair complexes using MTT and clonogenic assays. We utilized oligonucleotides containing 5-FU and purified baculovirus-synthesized hMutSα and hMutSß in electromobility shift assays (EMSA) and further analyzed binding using surface plasmon resonance.
Results:
MTT and clonogenic assays after 5-FU treatment demonstrated the most cytotoxicity in cells with both hMutSα and hMutSß, intermediate cytotoxicity in cells with hMutSα alone, and the least cytotoxicity in cells with hMutSß alone, hMutSß binds 5-FU-modified DNA, but its relative binding is less than the binding of 5-FU-modified DNA by hMutSα.
Conclusion:
Cytotoxicity induced by 5-FU is dependent on intact DNA MMR, with relative cell death correlating directly with hMutSα and/or hMutSß 5-FU binding ability (hMutSα>hMutSß). The MMR complexes provide a hierarchical chemosensitivity for 5-FU cell death, and may have implications for treatment of patients with certain MMR-deficient tumors.
Insights
The DNA mismatch repair (MMR) complexes hMutSα and hMutSß play a role in 5-fluorouracil (5-FU) chemotherapy efficacy. Higher levels of these MMR proteins correlate with increased cell death in colorectal cancer patients treated with 5-FU.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Advanced microsatellite unstable colorectal cancers (MSI-H CRC) show limited survival benefit from 5-fluorouracil (5-FU) chemotherapy.
- The DNA mismatch repair (MMR) complex hMutSα binds 5-FU incorporated into DNA.
- The role of hMutSß in 5-FU recognition was previously uncharacterized.
Purpose of the Study:
- To investigate the role of the hMutSß complex in the recognition of 5-FU.
- To determine the contribution of both hMutSα and hMutSß to 5-FU cytotoxicity.
Main Methods:
- Cell viability assays (MTT and clonogenic) were used to compare 5-FU cytotoxicity in cells with varying MMR complex expression.
- Electromobility shift assays (EMSA) and surface plasmon resonance were employed to analyze the binding of purified hMutSα and hMutSß to 5-FU-modified DNA.
Main Results:
- Cytotoxicity from 5-FU treatment was highest in cells expressing both hMutSα and hMutSß, intermediate in cells with hMutSα alone, and lowest in cells with hMutSß alone.
- hMutSß binds 5-FU-modified DNA, but with lower affinity compared to hMutSα.
Conclusions:
- 5-FU-induced cytotoxicity is dependent on intact DNA MMR, with relative cell death correlating with the binding ability of hMutSα and hMutSß (hMutSα > hMutSß).
- The MMR complexes offer a hierarchical chemosensitivity to 5-FU, with potential implications for treating MMR-deficient tumors.
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