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Updated: Oct 1, 2025

Quantifying Replication Stress in Ovarian Cancer Cells Using Single-Stranded DNA Immunofluorescence
Published on: February 10, 2023
Intra-S phase checkpoint kinase Chk1 dissociates replication proteins Treslin and TopBP1 through multiple mechanisms
Rebecca L Kelly1, Amelia M Huehls2, Annapoorna Venkatachalam1
1Department of Molecular Pharmacology and Experimental Therapeutics, Mayo Clinic, Rochester, Minnesota, USA.
Abstract:
Replication stress impedes DNA polymerase progression causing activation of the ataxia telangiectasia and Rad3-related signaling pathway, which promotes the intra-S phase checkpoint activity through phosphorylation of checkpoint kinase 1 (Chk1). Chk1 suppresses replication origin firing, in part, by disrupting the interaction between the preinitiation complex components Treslin and TopBP1, an interaction that is mediated by TopBP1 BRCT domain-binding to two cyclin-dependent kinase (CDK) phosphorylation sites, T968 and S1000, in Treslin. Two nonexclusive models for how Chk1 regulates the Treslin-TopBP1 interaction have been proposed in the literature: in one model, these proteins dissociate due to a Chk1-induced decrease in CDK activity that reduces phosphorylation of the Treslin sites that bind TopBP1 and in the second model, Chk1 directly phosphorylates Treslin, resulting in dissociation of TopBP1. However, these models have not been formally examined. We show here that Treslin T968 phosphorylation was decreased in a Chk1-dependent manner, while Treslin S1000 phosphorylation was unchanged, demonstrating that T968 and S1000 are differentially regulated. However, CDK2-mediated phosphorylation alone did not fully account for Chk1 regulation of the Treslin-TopBP1 interaction. We also identified additional Chk1 phosphorylation sites on Treslin that contributed to disruption of the Treslin-TopBP1 interaction, including S1114. Finally, we showed that both of the proposed mechanisms regulate origin firing in cancer cell line models undergoing replication stress, with the relative roles of each mechanism varying among cell lines. This study demonstrates that Chk1 regulates Treslin through multiple mechanisms to promote efficient dissociation of Treslin and TopBP1 and furthers our understanding of Treslin regulation during the intra-S phase checkpoint.
Insights
Replication stress activates checkpoint kinase 1 (Chk1), which disrupts the Treslin-TopBP1 interaction. This study reveals Chk1 uses multiple phosphorylation events on Treslin to regulate origin firing during DNA replication stress.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Replication stress activates the intra-S phase DNA damage checkpoint.
- Checkpoint kinase 1 (Chk1) is a key regulator of this checkpoint.
- Chk1 inhibits DNA replication origin firing by disrupting the Treslin-TopBP1 interaction.
Purpose of the Study:
- To investigate the mechanisms by which Chk1 regulates the Treslin-TopBP1 interaction.
- To determine if Chk1 decreases cyclin-dependent kinase (CDK) activity or directly phosphorylates Treslin.
- To examine the roles of these mechanisms in cancer cell lines under replication stress.
Main Methods:
- Phosphorylation site analysis of Treslin.
- Assessment of Chk1 and CDK2 activity.
- Analysis of Treslin-TopBP1 interaction disruption.
- Replication origin firing assays in cancer cell lines.
Main Results:
- Chk1-dependent phosphorylation of Treslin at T968 decreased, while S1000 phosphorylation remained unchanged, indicating differential regulation.
- CDK2-mediated phosphorylation alone did not fully explain Chk1's effect on the Treslin-TopBP1 interaction.
- Additional Chk1 phosphorylation sites on Treslin, including S1114, were identified and contributed to Treslin-TopBP1 dissociation.
- Both proposed mechanisms of Chk1 regulation of Treslin-TopBP1 interaction contribute to origin firing control during replication stress, with cell-line-specific variations.
Conclusions:
- Chk1 employs multiple mechanisms to regulate Treslin phosphorylation and promote Treslin-TopBP1 dissociation.
- These findings enhance the understanding of Treslin regulation during the intra-S phase checkpoint.
- The study highlights the complexity of DNA replication stress response pathways in cancer cells.
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