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Updated: Jun 17, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
Nuclear reorganization of DNA mismatch repair proteins in response to DNA damage
Adam S Mastrocola1, Christopher D Heinen
1Neag Comprehensive Cancer Center and Center for Molecular Medicine, University of Connecticut Health Center, 263 Farmington Avenue, ML3101, Farmington, CT 06030-3101, USA.
Abstract:
The DNA mismatch repair (MMR) system is highly conserved and vital for preserving genomic integrity. Current mechanistic models for MMR are mainly derived from in vitro assays including reconstitution of strand-specific MMR and DNA binding assays using short oligonucleotides. However, fundamental questions regarding the mechanism and regulation in the context of cellular DNA replication remain. Using synchronized populations of HeLa cells we demonstrated that hMSH2, hMLH1 and PCNA localize to the chromatin during S-phase, and accumulate to a greater extent in cells treated with a DNA alkylating agent. In addition, using small interfering RNA to deplete hMSH2, we demonstrated that hMLH1 localization to the chromatin is hMSH2-dependent. hMSH2/hMLH1/PCNA proteins, when associated with the chromatin, form a complex that is greatly enhanced by DNA damage. The DNA damage caused by high doses of alkylating agents leads to a G(2) arrest after only one round of replication. In these G(2)-arrested cells, an hMSH2/hMLH1 complex persists on chromatin, however, PCNA is no longer in the complex. Cells treated with a lower dose of alkylating agent require two rounds of replication before cells arrest in G(2). In the first S-phase, the MMR proteins form a complex with PCNA, however, during the second S-phase PCNA is missing from that complex. The distinction between these complexes may suggest separate functions for the MMR proteins in damage repair and signaling. Additionally, using confocal immunofluorescence, we observed a population of hMSH6 that localized to the nucleolus. This population is significantly reduced after DNA damage suggesting that the protein is shuttled out of the nucleolus in response to damage. In contrast, hMLH1 is excluded from the nucleolus at all times. Thus, the nucleolus may act to segregate a population of hMSH2-hMSH6 from hMLH1-hPMS2 such that, in the absence of DNA damage, an inappropriate response is not invoked.
Insights
The DNA mismatch repair (MMR) system
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The DNA mismatch repair (MMR) system is crucial for genomic integrity.
- Existing models of MMR are primarily based on in vitro studies.
- Cellular mechanisms and regulation of MMR during DNA replication require further investigation.
Purpose of the Study:
- To investigate the in vivo localization and complex formation of MMR proteins during the cell cycle.
- To determine the role of DNA damage in modulating MMR protein interactions.
- To explore potential functional segregation of MMR protein complexes.
Main Methods:
- Synchronized HeLa cell populations were used.
- Confocal immunofluorescence microscopy was employed to visualize protein localization.
- Small interfering RNA (siRNA) was utilized for gene depletion studies.
Main Results:
- hMSH2, hMLH1, and PCNA localize to chromatin during S-phase and increase with DNA alkylating agent treatment.
- hMLH1 chromatin localization is dependent on hMSH2.
- Distinct hMSH2/hMLH1/PCNA complexes form during S-phase, with PCNA dissociation after DNA damage or subsequent replication rounds.
- hMSH6 shows nucleolar localization, which decreases upon DNA damage, while hMLH1 is excluded from the nucleolus.
Conclusions:
- MMR protein complex formation with PCNA is dynamic and influenced by DNA damage and replication.
- The observed protein complex distinctions suggest separate roles in DNA repair and signaling.
- The nucleolus may sequester hMSH6, potentially preventing inappropriate MMR activation in the absence of damage.
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