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Updated: Mar 6, 2026

Author Spotlight: Visualizing Single-Stranded DNA During DNA Repair for Therapeutic Insights
Published on: December 22, 2023
SLX4 Prevents GEN1-Dependent DSBs During DNA Replication Arrest Under Pathological Conditions in Human Cells
Eva Malacaria1, Annapaola Franchitto2, Pietro Pichierri1
1Section of Experimental and Computational Carcinogenesis, Department of Environment and Primary Prevention, Istituto Superiore di Sanità - Viale Regina Elena 299, 00161 Rome Italy.
Abstract:
SLX4 is a versatile protein serving as docking for multiple structure-specific endonucleases during DNA repair, however, little is known about its function at demised replication forks. Using RNAi or FA-P cells complemented with SLX4 mutants that abrogate interaction with MUS81 or SLX1, we show that SLX4 cooperates with MUS81 to introduce DSBs after replication stress but also counteracts pathological targeting of demised forks by GEN1. Such unexpected function of SLX4 is unrelated to interaction with endonucleases, but concerns the physical presence of the protein. Strikingly, ectopic expression of the Holliday junction-binding protein RuvA inhibits DSBs in SLX4-deficient cells by preventing GEN1 chromatin-association, and rescues proliferation and genome integrity upon replication stress. Altogether, our results indicate that SLX4 is crucial to prevent accidental processing of Holliday junction-like intermediates at demised forks also suggesting that spontaneous genome instability in FA-P cells may derive, at least partially, from unscheduled action of GEN1 in S-phase.
Insights
SLX4 protein prevents genome instability by blocking GEN1 nuclease at stalled replication forks. This prevents accidental DNA breaks, maintaining cell proliferation and integrity during replication stress.
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair
Background:
- SLX4 protein is known to coordinate nucleases for DNA repair.
- Its specific role at stalled replication forks remains largely uncharacterized.
Purpose of the Study:
- To elucidate the function of SLX4 at demised replication forks.
- To investigate SLX4's interaction with nucleases like MUS81, SLX1, and GEN1 in DNA repair.
Main Methods:
- RNA interference (RNAi) and expression of SLX4 mutants.
- Analysis of DNA double-strand breaks (DSBs) and cell proliferation.
- Investigating protein-DNA interactions using chromatin association assays.
Main Results:
- SLX4 collaborates with MUS81 to induce DSBs post-replication stress.
- SLX4 inhibits GEN1 from targeting stalled forks, a function independent of endonuclease interactions.
- RuvA expression prevents GEN1 chromatin association, rescuing genome integrity in SLX4-deficient cells.
Conclusions:
- SLX4 is essential for preventing inappropriate processing of DNA intermediates at stalled replication forks.
- Unscheduled GEN1 activity in S-phase may contribute to genome instability in FA-P cells.
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