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Updated: Nov 22, 2025

Chromosome Replicating Timing Combined with Fluorescent In situ Hybridization
Published on: December 10, 2012
Ligation of newly replicated DNA controls the timing of DNA mismatch repair
Gloria X Reyes1, Anna Kolodziejczak2, Lovely Jael Paul Solomon Devakumar3
1DNA Repair Mechanisms and Cancer, German Cancer Research Center (DKFZ), Heidelberg 69120, Germany.
Abstract:
Mismatch repair (MMR) safeguards genome stability through recognition and excision of DNA replication errors.1-4 How eukaryotic MMR targets the newly replicated strand in vivo has not been established. MMR reactions reconstituted in vitro are directed to the strand containing a preexisting nick or gap,5-8 suggesting that strand discontinuities could act as discrimination signals. Another candidate is the proliferating cell nuclear antigen (PCNA) that is loaded at replication forks and is required for the activation of Mlh1-Pms1 endonuclease.7-9 Here, we discovered that overexpression of DNA ligase I (Cdc9) in Saccharomyces cerevisiae causes elevated mutation rates and increased chromatin-bound PCNA levels and accumulation of Pms1 foci that are MMR intermediates, suggesting that premature ligation of replication-associated nicks interferes with MMR. We showed that yeast Pms1 expression is mainly restricted to S phase, in agreement with the temporal coupling between MMR and DNA replication.10 Restricting Pms1 expression to the G2/M phase caused a mutator phenotype that was exacerbated in the absence of the exonuclease Exo1. This mutator phenotype was largely suppressed by increasing the lifetime of replication-associated DNA nicks, either by reducing or delaying Cdc9 ligase activity in vivo. Therefore, Cdc9 dictates a window of time for MMR determined by transient DNA nicks that direct the Mlh1-Pms1 in a strand-specific manner. Because DNA nicks occur on both newly synthesized leading and lagging strands,11 these results establish a general mechanism for targeting MMR to the newly synthesized DNA, thus preventing the accumulation of mutations that underlie the development of human cancer.
Insights
DNA ligase I (Cdc9) activity dictates a crucial time window for mismatch repair (MMR) by transient DNA nicks. This ensures newly synthesized DNA is accurately repaired, preventing cancer-causing mutations.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Genome stability is maintained by mismatch repair (MMR), which corrects DNA replication errors.
- The mechanism by which MMR targets newly replicated DNA strands in eukaryotes remains unclear.
- In vitro studies suggest MMR is directed to strands with existing nicks or gaps.
Purpose of the Study:
- To investigate how eukaryotic mismatch repair (MMR) targets newly replicated DNA strands in vivo.
- To elucidate the role of DNA ligase I (Cdc9) and proliferating cell nuclear antigen (PCNA) in MMR strand discrimination.
- To understand the temporal regulation of MMR in relation to DNA replication.
Main Methods:
- Overexpression of DNA ligase I (Cdc9) in Saccharomyces cerevisiae.
- Analysis of mutation rates, chromatin-bound PCNA levels, and Pms1 foci.
- Manipulation of Pms1 expression timing and Cdc9 ligase activity.
- Assessment of the impact of Exo1 exonuclease on mutator phenotypes.
Main Results:
- Cdc9 overexpression elevated mutation rates and increased PCNA levels, indicating interference with MMR.
- Premature ligation of DNA nicks by Cdc9 hinders MMR.
- Restricting Pms1 expression to G2/M phase induced a mutator phenotype, exacerbated by Exo1 deficiency.
- Reduced or delayed Cdc9 activity suppressed the mutator phenotype by extending nick lifetime.
Conclusions:
- Transient DNA nicks, dictated by Cdc9 ligase activity, provide a strand-specific targeting mechanism for Mlh1-Pms1.
- This mechanism ensures MMR is directed to newly synthesized DNA strands.
- This process is crucial for preventing mutations that contribute to human cancer development.
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