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Updated: Feb 15, 2026

Imaging Mismatch Repair and Cellular Responses to DNA Damage in Bacillus subtilis
Published on: February 8, 2010
ATR-Chk1 activation mitigates replication stress caused by mismatch repair-dependent processing of DNA damage
Dipika Gupta1,2, Bo Lin1,2, Ann Cowan3,4
1Neag Comprehensive Cancer Center, UConn Health, Farmington, CT 06030-3101.
Abstract:
The mismatch repair pathway (MMR) is essential for removing DNA polymerase errors, thereby maintaining genomic stability. Loss of MMR function increases mutation frequency and is associated with tumorigenesis. However, how MMR is executed at active DNA replication forks is unclear. This has important implications for understanding how MMR repairs O6-methylguanine/thymidine (MeG/T) mismatches created upon exposure to DNA alkylating agents. If MeG/T lesion recognition by MMR initiates mismatch excision, the reinsertion of a mismatched thymidine during resynthesis could initiate futile repair cycles. One consequence of futile repair cycles might be a disruption of overall DNA replication in the affected cell. Herein, we show that in MMR-proficient HeLa cancer cells, treatment with a DNA alkylating agent slows S phase progression, yet cells still progress into the next cell cycle. In the first S phase following treatment, they activate ataxia telangiectasia and Rad3-related (ATR)-Checkpoint Kinase 1 (Chk1) signaling, which limits DNA damage, while inhibition of ATR kinase activity accelerates DNA damage accumulation and sensitivity to the DNA alkylating agent. We also observed that exposure of human embryonic stem cells to alkylation damage severely compromised DNA replication in a MMR-dependent manner. These cells fail to activate the ATR-Chk1 signaling axis, which may limit their ability to handle replication stress. Accordingly, they accumulate double-strand breaks and undergo immediate apoptosis. Our findings implicate the MMR-directed response to alkylation damage as a replication stress inducer, suggesting that repeated MMR processing of mismatches may occur that can disrupt S phase progression.
Insights
The mismatch repair (MMR) pathway, crucial for genomic stability, can induce replication stress when repairing alkylation damage. This MMR-directed response impacts cell cycle progression and DNA damage accumulation.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- The mismatch repair (MMR) pathway corrects DNA polymerase errors to maintain genomic stability.
- MMR deficiency increases mutation rates and is linked to cancer development.
- The role of MMR in repairing DNA alkylation damage at replication forks is not well understood.
Purpose of the Study:
- To investigate how the MMR pathway handles DNA alkylation damage during DNA replication.
- To determine the consequences of MMR-mediated repair of O6-methylguanine/thymidine mismatches at replication forks.
- To explore the impact of MMR on replication stress and cell cycle progression following alkylation damage.
Main Methods:
- Treatment of MMR-proficient HeLa cancer cells and human embryonic stem cells with a DNA alkylating agent.
- Analysis of S phase progression, DNA damage accumulation, and cell cycle checkpoint activation (ATR-Chk1 signaling).
- Assessment of MMR-dependent effects on replication stress and cell viability.
Main Results:
- In MMR-proficient cells, alkylation damage slows S phase but cells progress to the next cycle, activating ATR-Chk1 signaling to limit damage.
- Inhibition of ATR kinase activity exacerbates DNA damage and sensitivity to alkylating agents.
- Human embryonic stem cells exposed to alkylation damage show MMR-dependent replication compromise, fail ATR-Chk1 activation, accumulate double-strand breaks, and undergo apoptosis.
Conclusions:
- The MMR response to alkylation damage acts as a replication stress inducer.
- Repeated MMR processing of mismatches may disrupt S phase progression.
- MMR-directed repair of alkylation damage has distinct consequences for cancer cells versus stem cells, highlighting its role in replication stress management.
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