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Updated: Aug 26, 2025

Quantifying Replication Stress in Ovarian Cancer Cells Using Single-Stranded DNA Immunofluorescence
Published on: February 10, 2023
A genome-wide screen identifies SCAI as a modulator of the UV-induced replicative stress response
Jean-François Lemay1, Edlie St-Hilaire1, Daryl A Ronato2
1Centre de recherche, de l'Hôpital Maisonneuve-Rosemont, Montréal, Québec, Canada.
Abstract:
Helix-destabilizing DNA lesions induced by environmental mutagens such as UV light cause genomic instability by strongly blocking the progression of DNA replication forks (RFs). At blocked RF, single-stranded DNA (ssDNA) accumulates and is rapidly bound by Replication Protein A (RPA) complexes. Such stretches of RPA-ssDNA constitute platforms for recruitment/activation of critical factors that promote DNA synthesis restart. However, during periods of severe replicative stress, RPA availability may become limiting due to inordinate sequestration of this multifunctional complex on ssDNA, thereby negatively impacting multiple vital RPA-dependent processes. Here, we performed a genome-wide screen to identify factors that restrict the accumulation of RPA-ssDNA during UV-induced replicative stress. While this approach revealed some expected "hits" acting in pathways such as nucleotide excision repair, translesion DNA synthesis, and the intra-S phase checkpoint, it also identified SCAI, whose role in the replicative stress response was previously unappreciated. Upon UV exposure, SCAI knock-down caused elevated accumulation of RPA-ssDNA during S phase, accompanied by reduced cell survival and compromised RF progression. These effects were independent of the previously reported role of SCAI in 53BP1-dependent DNA double-strand break repair. We also found that SCAI is recruited to UV-damaged chromatin and that its depletion promotes nascent DNA degradation at stalled RF. Finally, we (i) provide evidence that EXO1 is the major nuclease underlying ssDNA formation and DNA replication defects in SCAI knockout cells and, consistent with this, (ii) demonstrate that SCAI inhibits EXO1 activity on a ssDNA gap in vitro. Taken together, our data establish SCAI as a novel regulator of the UV-induced replicative stress response in human cells.
Insights
The study identifies SCAI as a novel regulator of the UV-induced DNA damage response, preventing excessive single-stranded DNA accumulation and promoting cell survival during replication stress.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Environmental mutagens like UV light induce DNA lesions that block replication forks (RFs), leading to genomic instability.
- Accumulation of single-stranded DNA (ssDNA) at blocked RFs, bound by Replication Protein A (RPA), is critical for DNA repair and replication restart.
- Severe replicative stress can deplete RPA, impairing vital cellular processes.
Purpose of the Study:
- To identify factors that limit RPA-ssDNA accumulation during UV-induced replicative stress.
- To elucidate the previously unappreciated role of SCAI in the DNA replication stress response.
Main Methods:
- Genome-wide screening to identify factors restricting RPA-ssDNA accumulation.
- UV exposure and knockdown/knockout studies to assess SCAI function.
- Analysis of RPA-ssDNA levels, cell survival, RF progression, and nascent DNA degradation.
- In vitro assays to determine SCAI's effect on EXO1 nuclease activity.
Main Results:
- SCAI knockdown elevated RPA-ssDNA accumulation, reduced cell survival, and compromised RF progression after UV exposure.
- SCAI is recruited to UV-damaged chromatin and inhibits nascent DNA degradation at stalled RFs.
- EXO1 is the primary nuclease responsible for ssDNA formation and replication defects in SCAI-deficient cells.
- SCAI directly inhibits EXO1 activity on ssDNA gaps.
Conclusions:
- SCAI is a novel regulator of the UV-induced replicative stress response in human cells.
- SCAI functions independently of its known role in DNA double-strand break repair.
- SCAI acts by inhibiting the nuclease EXO1 to prevent excessive ssDNA accumulation and maintain genomic stability.
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