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Updated: Jun 30, 2025

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Published on: January 17, 2025
SMARCAL1 ubiquitylation controls its association with RPA-coated ssDNA and promotes replication fork stability
Maïlyn Yates1,2, Isabelle Marois1,2, Edlie St-Hilaire3
1Faculty of Sciences, Department of Biology, Université de Sherbrooke, Sherbrooke, Canada.
Abstract:
Impediments in replication fork progression cause genomic instability, mutagenesis, and severe pathologies. At stalled forks, RPA-coated single-stranded DNA (ssDNA) activates the ATR kinase and directs fork remodeling, 2 key early events of the replication stress response. RFWD3, a recently described Fanconi anemia (FA) ubiquitin ligase, associates with RPA and promotes its ubiquitylation, facilitating late steps of homologous recombination (HR). Intriguingly, RFWD3 also regulates fork progression, restart and stability via poorly understood mechanisms. Here, we used proteomics to identify putative RFWD3 substrates during replication stress in human cells. We show that RFWD3 interacts with and ubiquitylates the SMARCAL1 DNA translocase directly in vitro and following DNA damage in vivo. SMARCAL1 ubiquitylation does not trigger its subsequent proteasomal degradation but instead disengages it from RPA thereby regulating its function at replication forks. Proper regulation of SMARCAL1 by RFWD3 at stalled forks protects them from excessive MUS81-mediated cleavage in response to UV irradiation, thereby limiting DNA replication stress. Collectively, our results identify RFWD3-mediated SMARCAL1 ubiquitylation as a novel mechanism that modulates fork remodeling to avoid genome instability triggered by aberrant fork processing.
Insights
Replication stress causes genomic instability. This study reveals RFWD3 ubiquitin ligase regulates SMARCAL1, preventing excessive DNA cleavage and maintaining fork stability during replication stress.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Replication fork instability leads to genomic instability and disease.
- The ATR kinase pathway and RPA are crucial for the replication stress response.
- RFWD3, a Fanconi anemia ubiquitin ligase, is involved in homologous recombination and replication fork regulation.
Purpose of the Study:
- To identify RFWD3 substrates during replication stress.
- To elucidate the mechanism by which RFWD3 regulates DNA replication fork stability.
Main Methods:
- Proteomics to identify RFWD3 substrates.
- In vitro and in vivo ubiquitylation assays.
- Analysis of DNA replication fork processing and stability.
Main Results:
- RFWD3 directly interacts with and ubiquitylates the SMARCAL1 DNA translocase.
- SMARCAL1 ubiquitylation by RFWD3 disengages SMARCAL1 from RPA, regulating its function.
- RFWD3-mediated SMARCAL1 regulation protects stalled replication forks from excessive MUS81-mediated cleavage.
Conclusions:
- RFWD3-SMARCAL1 ubiquitylation is a novel mechanism for replication fork remodeling.
- This pathway prevents genome instability arising from aberrant fork processing.
- RFWD3 plays a critical role in maintaining genomic integrity under replication stress.
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