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Published on: June 23, 2023
Fen1 mutations that specifically disrupt its interaction with PCNA cause aneuploidy-associated cancer
Li Zheng1, Huifang Dai, Muralidhar L Hegde
1Department of Cancer Biology, City of Hope National Medical Center and Beckman Research Institute, Duarte, CA 91010, USA. lzheng@coh.org
Abstract:
DNA replication and repair are critical processes for all living organisms to ensure faithful duplication and transmission of genetic information. Flap endonuclease 1 (Fen1), a structure-specific nuclease, plays an important role in multiple DNA metabolic pathways and maintenance of genome stability. Human FEN1 mutations that impair its exonuclease activity have been linked to cancer development. FEN1 interacts with multiple proteins, including proliferation cell nuclear antigen (PCNA), to form various functional complexes. Interactions with these proteins are considered to be the key molecular mechanisms mediating FEN1's key biological functions. The current challenge is to experimentally demonstrate the biological consequence of a specific interaction without compromising other functions of a desired protein. To address this issue, we established a mutant mouse model harboring a FEN1 point mutation (F343A/F344A, FFAA), which specifically abolishes the FEN1/PCNA interaction. We show that the FFAA mutation causes defects in RNA primer removal and long-patch base excision repair, even in the heterozygous state, resulting in numerous DNA breaks. These breaks activate the G2/M checkpoint protein, Chk1, and induce near-tetraploid aneuploidy, commonly observed in human cancer, consequently elevating the transformation frequency. Consistent with this, inhibition of aneuploidy formation by a Chk1 inhibitor significantly suppressed the cellular transformation. WT/FFAA FEN1 mutant mice develop aneuploidy-associated cancer at a high frequency. Thus, this study establishes an exemplary case for investigating the biological significance of protein-protein interactions by knock-in of a point mutation rather than knock-out of a whole gene.
Insights
A new mouse model with a specific mutation in Flap endonuclease 1 (FEN1) protein reveals how disrupting its interaction with PCNA causes DNA breaks, aneuploidy, and cancer. This study highlights the importance of protein interactions in maintaining genome stability.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Flap endonuclease 1 (FEN1) is crucial for DNA replication and repair, maintaining genome stability.
- FEN1 mutations impairing its exonuclease activity are linked to cancer.
- FEN1 interacts with proteins like PCNA, forming functional complexes essential for its biological roles.
Purpose of the Study:
- To investigate the biological consequences of specifically disrupting the FEN1/PCNA interaction.
- To establish a mouse model that allows for the study of specific protein-protein interaction effects without gene knockout.
Main Methods:
- Creation of a mutant mouse model with a FEN1 point mutation (F343A/F344A, FFAA) that specifically abolishes FEN1/PCNA interaction.
- Analysis of DNA repair pathways, including RNA primer removal and base excision repair.
- Assessment of DNA breaks, G2/M checkpoint activation (Chk1), aneuploidy, and cellular transformation frequency.
Main Results:
- The FFAA mutation caused defects in RNA primer removal and long-patch base excision repair, leading to DNA breaks.
- These DNA breaks activated Chk1, induced near-tetraploid aneuploidy, and increased cellular transformation frequency.
- Inhibition of aneuploidy formation suppressed cellular transformation, and WT/FFAA FEN1 mutant mice developed aneuploidy-associated cancer frequently.
Conclusions:
- The FEN1/PCNA interaction is critical for preventing DNA breaks and aneuploidy.
- This study provides a model for investigating the biological significance of specific protein-protein interactions.
- Targeting aneuploidy formation may offer therapeutic strategies for FEN1-related cancers.
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