The oncoprotein DEK affects the outcome of PARP1/2 inhibition during mild replication stress
Magdalena Ganz1, Christopher Vogel1, Christina Czada1
1Department of Biology, Bioimaging Center, University of Konstanz, Konstanz, Germany.
Abstract:
DNA replication stress is a major source of genomic instability and is closely linked to tumor formation and progression. Poly(ADP-ribose)polymerases1/2 (PARP1/2) enzymes are activated in response to replication stress resulting in poly(ADP-ribose) (PAR) synthesis. PARylation plays an important role in the remodelling and repair of impaired replication forks, providing a rationale for targeting highly replicative cancer cells with PARP1/2 inhibitors. The human oncoprotein DEK is a unique, non-histone chromatin architectural protein whose deregulated expression is associated with the development of a wide variety of human cancers. Recently, we showed that DEK is a high-affinity target of PARylation and that it promotes the progression of impaired replication forks. Here, we investigated a potential functional link between PAR and DEK in the context of replication stress. Under conditions of mild replication stress induced either by topoisomerase1 inhibition with camptothecin or nucleotide depletion by hydroxyurea, we found that the effect of acute PARP1/2 inhibition on replication fork progression is dependent on DEK expression. Reducing DEK protein levels also overcomes the restart impairment of stalled forks provoked by blocking PARylation. Non-covalent DEK-PAR interaction via the central PAR-binding domain of DEK is crucial for counteracting PARP1/2 inhibition as shown for the formation of RPA positive foci in hydroxyurea treated cells. Finally, we show by iPOND and super resolved microscopy that DEK is not directly associated with the replisome since it binds to DNA at the stage of chromatin formation. Our report sheds new light on the still enigmatic molecular functions of DEK and suggests that DEK expression levels may influence the sensitivity of cancer cells to PARP1/2 inhibitors.
Insights
DNA replication stress impacts genomic stability and cancer. The protein DEK influences how cancer cells respond to PARP1/2 inhibitors by interacting with poly(ADP-ribose) (PAR) during replication fork repair.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genomics
Background:
- Replication stress is a key driver of genomic instability and cancer.
- Poly(ADP-ribose)polymerases (PARP1/2) are crucial for repairing DNA damage during replication stress.
- The oncoprotein DEK is implicated in various cancers and interacts with PARylation.
Purpose of the Study:
- To investigate the functional link between DEK and poly(ADP-ribose) (PAR) in replication stress.
- To determine if DEK expression affects cancer cell sensitivity to PARP1/2 inhibitors.
Main Methods:
- Replication stress induction using camptothecin or hydroxyurea.
- Assessment of replication fork progression and restart.
- Analysis of DEK-PAR interaction using biochemical and microscopy techniques.
- Investigating DEK's association with the replisome via iPOND and super-resolution microscopy.
Main Results:
- DEK expression levels modulate the impact of PARP1/2 inhibition on replication fork progression.
- Reduced DEK levels rescue replication restart impairment caused by PARP1/2 inhibition.
- Non-covalent DEK-PAR interaction is essential for counteracting PARP1/2 inhibition.
- DEK binds to DNA during chromatin formation, not directly to the replisome.
Conclusions:
- DEK plays a critical role in managing replication stress and its response to PARP1/2 inhibition.
- DEK expression levels may serve as a predictive biomarker for PARP1/2 inhibitor efficacy in cancer treatment.
More Related Videos
Related Concept Videos
The DNA Replication Fork
Replication in Eukaryotes
Chromosome Replication
DNA Replication
Replication in Prokaryotes
DNA replication...
Feedback Inhibition
Replication in Prokaryotes


