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Updated: Oct 16, 2025

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Phosphorylation-dependent assembly of DNA damage response systems and the central roles of TOPBP1
Matthew Day1, Antony W Oliver1, Laurence H Pearl2
1Cancer Research UK DNA Repair Enzymes Group, Genome Damage and Stability Centre, School of Life Sciences, University of Sussex, Falmer, Brighton BN1 9RQ, UK.
Abstract:
The cellular response to DNA damage (DDR) that causes replication collapse and/or DNA double strand breaks, is characterised by a massive change in the post-translational modifications (PTM) of hundreds of proteins involved in the detection and repair of DNA damage, and the communication of the state of damage to the cellular systems that regulate replication and cell division. A substantial proportion of these PTMs involve targeted phosphorylation, which among other effects, promotes the formation of multiprotein complexes through the specific binding of phosphorylated motifs on one protein, by specialised domains on other proteins. Understanding the nature of these phosphorylation mediated interactions allows definition of the pathways and networks that coordinate the DDR, and helps identify new targets for therapeutic intervention that may be of benefit in the treatment of cancer, where DDR plays a key role. In this review we summarise the present understanding of how phosphorylated motifs are recognised by BRCT domains, which occur in many DDR proteins. We particularly focus on TOPBP1 - a multi-BRCT domain scaffold protein with essential roles in replication and the repair and signalling of DNA damage.
Insights
The DNA damage response (DDR) involves protein phosphorylation. This review explains how BRCT domains recognize phosphorylated motifs, focusing on TOPBP1
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- DNA damage response (DDR) involves extensive post-translational modifications (PTMs).
- Phosphorylation is a key PTM in DDR, mediating protein-protein interactions.
- Understanding these interactions is crucial for cancer therapy development.
Purpose of the Study:
- To review the recognition of phosphorylated motifs by BRCT domains.
- To highlight the role of TOPBP1 in DNA damage signaling and repair.
Main Methods:
- Literature review of existing research on DDR, PTMs, and BRCT domains.
- Focus on the structural and functional aspects of phosphorylated motif recognition.
Main Results:
- Phosphorylation-dependent binding of motifs by specialized domains is central to DDR.
- BRCT domains are key readers of these phosphorylated motifs.
- TOPBP1, a scaffold protein, utilizes multiple BRCT domains for essential DDR functions.
Conclusions:
- Understanding BRCT domain-mediated interactions clarifies DDR pathways.
- Identifying these interactions can lead to novel therapeutic targets for cancer treatment.
- TOPBP1 serves as a critical example of BRCT domain function in DDR.
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