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Updated: Jun 26, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
O6-methylguanine-induced cell death involves exonuclease 1 as well as DNA mismatch recognition in vivo
Joanna Klapacz1, Lisiane B Meira, David G Luchetti
1Department of Biological Engineering and Center for Environmental Health Sciences, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Alkylation-induced O(6)-methylguanine (O(6)MeG) DNA lesions can be mutagenic or cytotoxic if unrepaired by the O(6)MeG-DNA methyltransferase (Mgmt) protein. O(6)MeG pairs with T during DNA replication, and if the O(6)MeG:T mismatch persists, a G:C to A:T transition mutation is fixed at the next replication cycle. O(6)MeG:T mismatch detection by MutSalpha and MutLalpha leads to apoptotic cell death, but the mechanism by which this occurs has been elusive. To explore how mismatch repair mediates O(6)MeG-dependent apoptosis, we used an Mgmt-null mouse model combined with either the Msh6-null mutant (defective in mismatch recognition) or the Exo1-null mutant (impaired in the excision step of mismatch repair). Mouse embryonic fibroblasts and bone marrow cells derived from Mgmt-null mice were much more alkylation-sensitive than wild type, as expected. However, ablation of either Msh6 or Exo1 function rendered these Mgmt-null cells just as resistant to alkylation-induced cytotoxicity as wild-type cells. Rapidly proliferating tissues in Mgmt-null mice (bone marrow, thymus, and spleen) are extremely sensitive to apoptosis induced by O(6)MeG-producing agents. Here, we show that ablation of either Msh6 or Exo1 function in the Mgmt-null mouse renders these rapidly proliferating tissues alkylation-resistant. However, whereas the Msh6 defect confers total alkylation resistance, the Exo1 defect leads to a variable tissue-specific alkylation resistance phenotype. Our results indicate that Exo1 plays an important role in the induction of apoptosis by unrepaired O(6)MeGs.
Insights
Unrepaired O(6)-methylguanine DNA lesions trigger apoptosis via mismatch repair. Defects in Msh6 or Exo1 prevent this cell death, revealing Exo1
Area of Science:
- DNA repair
- Cellular apoptosis
- Genetics and genomics
Background:
- Alkylation-induced O(6)-methylguanine (O(6)MeG) DNA lesions are cytotoxic if not repaired by O(6)MeG-DNA methyltransferase (Mgmt).
- Unrepaired O(6)MeG:T mismatches trigger apoptosis, but the mechanism remains unclear.
- Mismatch repair proteins MutSalpha and MutLalpha are involved in O(6)MeG:T mismatch detection.
Purpose of the Study:
- To investigate the mechanism by which mismatch repair mediates O(6)MeG-dependent apoptosis.
- To determine the roles of Msh6 and Exo1 in O(6)MeG-induced cytotoxicity and apoptosis.
Main Methods:
- Utilized an Mgmt-null mouse model.
- Generated Msh6-null and Exo1-null mutants in the Mgmt-null background.
- Assessed alkylation sensitivity in mouse embryonic fibroblasts, bone marrow cells, and rapidly proliferating tissues.
Main Results:
- Mgmt-null cells and tissues were sensitive to alkylation-induced cytotoxicity.
- Ablation of Msh6 or Exo1 rendered Mgmt-null cells resistant to alkylation.
- Msh6 deficiency conferred complete resistance, while Exo1 deficiency resulted in variable, tissue-specific resistance.
- Exo1 plays a significant role in O(6)MeG-induced apoptosis.
Conclusions:
- Mismatch repair, specifically involving Msh6 and Exo1, is crucial for O(6)MeG-induced apoptosis.
- Exo1 is a key mediator of apoptosis triggered by unrepaired O(6)MeG DNA lesions.
- The findings elucidate a critical pathway in DNA damage response and cell death.
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