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Updated: Aug 17, 2026

A High-Throughput Comet Assay Approach for Assessing Cellular DNA Damage
Published on: May 10, 2022
MSH2 missense mutations alter cisplatin cytotoxicity and promote cisplatin-induced genome instability
Jill E Clodfelter1, Michael B Gentry, Karin Drotschmann
1Department of Cancer Biology, Wake Forest University School of Medicine, Medical Center Boulevard Winston-Salem, NC 27157, USA.
Abstract:
Defects in the mismatch repair protein MSH2 cause tolerance to DNA damage. We report how cancer-derived and polymorphic MSH2 missense mutations affect cisplatin cytotoxicity. The chemotolerance phenotype was compared with the mutator phenotype in a yeast model system. MSH2 missense mutations display a strikingly different effect on cell death and genome instability. A mutator phenotype does not predict chemotolerance or vice versa. MSH2 mutations that were identified in tumors (Y109C) or as genetic variations (L402F) promote tolerance to cisplatin, but leave the initial mutation rate of cells unaltered. A secondary increase in the mutation rate is observed after cisplatin exposure in these strains. The mutation spectrum of cisplatin-resistant mutators identifies persistent cisplatin adduction as the cause for this acquired genome instability. Our results demonstrate that MSH2 missense mutations that were identified in tumors or as polymorphic variations can cause increased cisplatin tolerance independent of an initial mutator phenotype. Cisplatin exposure promotes drug-induced genome instability. From a mechanistical standpoint, these data demonstrate functional separation between MSH2-dependent cisplatin cytotoxicity and repair. From a clinical standpoint, these data provide valuable information on the consequences of point mutations for the success of chemotherapy and the risk for secondary carcinogenesis.
Insights
Defects in the mismatch repair protein MSH2 can cause tolerance to DNA damage, impacting chemotherapy success. Some MSH2 mutations increase cisplatin tolerance without initially raising mutation rates, but can lead to acquired genome instability after drug exposure.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Defects in the DNA mismatch repair protein MSH2 are linked to DNA damage tolerance.
- Understanding how MSH2 mutations influence response to chemotherapy is crucial for cancer treatment.
Purpose of the Study:
- To investigate the effects of cancer-derived and polymorphic MSH2 missense mutations on cisplatin cytotoxicity.
- To compare the chemotolerance phenotype with the mutator phenotype in a yeast model.
Main Methods:
- Utilized a yeast model system to assess MSH2 missense mutations.
- Compared chemotolerance and mutator phenotypes.
- Analyzed mutation spectra following cisplatin exposure.
Main Results:
- MSH2 missense mutations differentially affect cell death and genome instability.
- Mutator phenotype does not predict chemotolerance, and vice versa.
- Tumor-identified (Y109C) and polymorphic (L402F) MSH2 mutations confer cisplatin tolerance without initial mutation rate increase, but cause secondary genome instability upon cisplatin exposure.
- Persistent cisplatin adduction causes acquired genome instability in resistant mutators.
Conclusions:
- MSH2 mutations can cause cisplatin tolerance independently of an initial mutator phenotype.
- Cisplatin exposure can induce genome instability.
- Demonstrates functional separation between MSH2-dependent cisplatin cytotoxicity and repair.
- Provides insights into chemotherapy efficacy and secondary carcinogenesis risk.
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