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Updated: Aug 14, 2025

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
DNA damage-induced cellular senescence is regulated by 53BP1 accumulation in the nuclear foci and phase separation
Tsukasa Oda1, Nanami Gotoh2, Tetsuhiro Kasamatsu2
1Laboratory of Mucosal Ecosystem Design, The Institute for Molecular and Cellular Regulation, Gunma University, Maebashi, Gunma, Japan.
Abstract:
Cellular senescence is linked to a wide range of age-related diseases and can be triggered by a variety of stresses, including DNA damage. A variety of genotoxic stressors, such as anti-cancer drugs, cause DNA double-strand breaks (DSBs), which trigger the accumulation of the tumour suppressor protein p53 in the nucleus. Cellular stresses stabilize and activate the p53 signalling pathway, which regulates various cellular processes, such as apoptosis, DNA repair, and senescence. Although p53 signalling is a well-known tumour suppressor pathway, it remains unclear how it is regulated during cellular senescence. Here, we show that p53-binding protein 1 (53BP1) accumulation in the nuclear foci is required for DNA damage-induced cellular senescence via p53 activation. In human immortalized fibroblast, shRNA-mediated 53BP1 depletion decreased not only the expression of p53-target genes but also the cellular senescence induced by adriamycin treatment. Furthermore, we confirmed that DSBs trigger the hyperaccumulation of 53BP1 in the nuclear foci, which plays a key role in the regulation of cellular senescence. To prevent the accumulation of 53BP1 in the nuclear foci, we used phase separation inhibitors, and siRNA against RNF168, which accumulates at DSB loci and forms complexes with 53BP1. This blocks the formation of 53BP1 nuclear foci and DNA damage-induced cellular senescence by activating the p53 signaling pathway. In conclusion, we demonstrated that increased accumulation of 53BP1 in the nuclear foci following DNA damage activates p53 and governs cellular senescence via a liquid-liquid phase separation mechanism.
Insights
Cellular senescence, linked to aging and disease, is regulated by p53-binding protein 1 (53BP1) accumulation. This 53BP1 foci formation, driven by DNA damage, activates p53 and governs senescence through phase separation.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Cellular senescence is implicated in age-related diseases and can be induced by DNA damage.
- The tumor suppressor p53 pathway is activated by DNA double-strand breaks (DSBs), regulating processes like senescence, but its regulation during senescence is unclear.
Purpose of the Study:
- To investigate the role of p53-binding protein 1 (53BP1) in DNA damage-induced cellular senescence.
- To elucidate the mechanism by which 53BP1 regulates p53 activation and senescence.
Main Methods:
- Used shRNA to deplete 53BP1 in human immortalized fibroblasts.
- Investigated the effect of adriamycin treatment on senescence and p53-target gene expression.
- Employed phase separation inhibitors and siRNA against RNF168 to block 53BP1 foci formation.
Main Results:
- 53BP1 accumulation in nuclear foci is essential for DNA damage-induced senescence via p53 activation.
- Depletion of 53BP1 reduced senescence and p53-target gene expression following adriamycin treatment.
- Blocking 53BP1 foci formation using inhibitors or RNF168 depletion prevented senescence induction.
Conclusions:
- DNA double-strand breaks trigger 53BP1 hyperaccumulation in nuclear foci, a key regulator of cellular senescence.
- 53BP1 governs cellular senescence by activating p53 through a liquid-liquid phase separation mechanism.
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