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Updated: Aug 16, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Human AP endonuclease suppresses DNA mismatch repair activity leading to microsatellite instability
In-Youb Chang1, Soo-Hyun Kim, Hyun-Ju Cho
1Research Center for Proteinous Materials, Chosun University, 375 Seusuk-dong, Gwangju 501-759, Korea.
Abstract:
The multifunctional mammalian apurinic/apyrimidinic (AP) endonuclease (APE) participates in the repair of AP sites in the cellular DNA as well as participating in the redox regulation of the transcription factor function. The function of APE is considered as the rate-limiting step in DNA base excision repair. Paradoxically, an unbalanced increase in APE protein leads to genetic instability. Therefore, we investigated the mechanisms of genetic instability that are induced by APE. Here, we report that the overexpression of APE protein disrupts the repair of DNA mismatches, which results in microsatellite instability (MSI). We found that expression of APE protein led to the suppression of the repair of DNA mismatches in the normal human fibroblast cells. Western blot analysis revealed that hMSH6 protein was markedly reduced in the APE-expressing cells. Moreover, the addition of purified Mutalpha (MSH2 and MSH6 complex) to the extracts from the APE-expressing cells led to the restoration of mismatch repair (MMR) activity. By performing MMR activity assay and MSI analysis, we found that the co-expression of hMSH6 and APE exhibited the microsatellite stability, whereas the expression of APE alone generated the MSI-high phenotype. The APE-mediated decrease in MMR activity described here demonstrates the presence of a new and highly effective APE-mediated mechanism for MSI.
Insights
Overexpression of apurinic/apyrimidinic endonuclease (APE) disrupts DNA mismatch repair, causing microsatellite instability (MSI). Restoring hMSH6 levels prevents APE-induced genetic instability.
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair Mechanisms
Background:
- Apurinic/apyrimidinic endonuclease (APE) is crucial for DNA base excision repair and transcription factor regulation.
- Elevated APE levels paradoxically induce genetic instability.
- Mechanisms underlying APE-induced genetic instability require elucidation.
Purpose of the Study:
- To investigate how APE overexpression leads to genetic instability.
- To determine the impact of APE on DNA mismatch repair pathways.
- To identify specific molecular players involved in APE-mediated genetic instability.
Main Methods:
- Overexpression of APE protein in human fibroblast cells.
- Western blot analysis to assess protein levels (hMSH6).
- Mismatch repair (MMR) activity assays and microsatellite instability (MSI) analysis.
Main Results:
- APE overexpression suppressed DNA mismatch repair.
- hMSH6 protein levels were significantly reduced in APE-expressing cells.
- Addition of Mutalpha (MSH2/MSH6 complex) restored MMR activity; co-expression of hMSH6 with APE prevented MSI.
Conclusions:
- APE overexpression disrupts DNA mismatch repair by reducing hMSH6, leading to microsatellite instability.
- This study reveals a novel APE-mediated mechanism contributing to genetic instability.
- Targeting APE or modulating hMSH6 levels could offer therapeutic strategies for MSI-related conditions.
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