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.

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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