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Updated: Jan 26, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
A comprehensive proteomics-based interaction screen that links DYRK1A to RNF169 and to the DNA damage response
Julia Roewenstrunk1,2, Chiara Di Vona1,2, Jie Chen3
1Centre for Genomic Regulation (CRG), The Barcelona Institute of Science and Technology (BIST), 08003, Barcelona, Spain.
Abstract:
Dysregulation of the DYRK1A protein kinase has been associated with human disease. On the one hand, its overexpression in trisomy 21 has been linked to certain pathological traits of Down syndrome, while on the other, inactivating mutations in just one allele are responsible for a distinct yet rare clinical syndrome, DYRK1A haploinsufficiency. Moreover, altered expression of this kinase may also provoke other human pathologies, including cancer and diabetes. Although a few DYRK1A substrates have been described, its upstream regulators and downstream targets are still poorly understood, an information that could shed light on the functions of DYRK1A in the cell. Here, we carried out a proteomic screen using antibody-based affinity purification coupled to mass spectrometry to identify proteins that directly or indirectly bind to endogenous DYRK1A. We show that the use of a cell line not expressing DYRK1A, generated by CRISPR/Cas9 technology, was needed in order to discriminate between true positives and non-specific interactions. Most of the proteins identified in the screen are novel candidate DYRK1A interactors linked to a variety of activities in the cell. The in-depth characterization of DYRK1A's functional interaction with one of them, the E3 ubiquitin ligase RNF169, revealed a role for this kinase in the DNA damage response. We found that RNF169 is a DYRK1A substrate and we identified several of its phosphorylation sites. In particular, one of these sites appears to modify the ability of RNF169 to displace 53BP1 from sites of DNA damage. Indeed, DYRK1A depletion increases cell sensitivity to ionizing irradiation. Therefore, our unbiased proteomic screen has revealed a novel activity of DYRK1A, expanding the complex role of this kinase in controlling cell homeostasis.
Insights
Dysregulation of DYRK1A protein kinase is linked to human diseases. This study identified novel DYRK1A interactors and revealed its role in DNA damage response, expanding understanding of cell homeostasis.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Dysregulation of DYRK1A protein kinase is implicated in human diseases like Down syndrome, cancer, and diabetes.
- The upstream regulators and downstream targets of DYRK1A remain largely uncharacterized, limiting understanding of its cellular functions.
Purpose of the Study:
- To identify novel proteins that directly or indirectly interact with endogenous DYRK1A using a proteomic screen.
- To elucidate the role of DYRK1A in cellular processes, particularly in response to DNA damage.
Main Methods:
- Utilized antibody-based affinity purification coupled with mass spectrometry to screen for DYRK1A-binding proteins.
- Employed a CRISPR/Cas9-generated DYRK1A-null cell line to distinguish true positive interactions from non-specific binding.
- Performed in-depth characterization of the interaction between DYRK1A and the E3 ubiquitin ligase RNF169.
Main Results:
- Identified numerous novel candidate DYRK1A interactors involved in diverse cellular activities.
- Demonstrated that RNF169 is a substrate of DYRK1A, with specific phosphorylation sites identified.
- Showed that DYRK1A influences RNF169's ability to displace 53BP1 at DNA damage sites, and DYRK1A depletion increases sensitivity to ionizing radiation.
Conclusions:
- The study successfully identified novel DYRK1A interactors and uncovered a previously unknown role for DYRK1A in the DNA damage response pathway.
- These findings expand the known functions of DYRK1A in maintaining cellular homeostasis and provide new avenues for research into related human diseases.
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