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Updated: Jul 20, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
DNA damage binding protein component DDB1 participates in nucleotide excision repair through DDB2 DNA-binding and
Jinyou Li1, Qi-En Wang, Qianzheng Zhu
1Department of Radiology, The Ohio State University, Columbus, Ohio 43240, USA.
Abstract:
Functional defect in DNA damage binding (DDB) activity has a direct relationship to decreased nucleotide excision repair (NER) and increased susceptibility to cancer. DDB forms a complex with cullin 4A (Cul4A), which is now known to ubiquitylate DDB2, XPC, and histone H2A. However, the exact role of DDB1 in NER is unclear. In this study, we show that DDB1 knockdown in human cells impaired their ability to efficiently repair UV-induced cyclobutane pyrimidine dimers (CPD) but not 6-4 photoproducts (6-4PP). Extensive nuclear protein fractionation and chromatin association analysis revealed that upon irradiation, DDB1 protein is translocated from a loosely bound to a tightly bound in vivo chromatin fraction and the DDB1 translocation required the participation of functional DDB2 protein. DDB1 knockdown also affected the translocation of Cul4A component to the tightly bound form in UV-damaged chromatin in vivo as well as its recruitment to the locally damaged nuclear foci in situ. However, DDB1 knockdown had no effect on DNA damage binding capacity of DDB2. The data indicated that DDB2 can bind to damaged DNA in vivo as a monomer, whereas Cul4A recruitment to damage sites depends on the fully assembled complex. Our data also showed that DDB1 is required for the UV-induced DDB2 ubiquitylation and degradation. In summary, the results suggest that (a) DDB1 is critical for efficient NER of CPD; (b) DDB1 acts in bridging DDB2 and ubiquitin ligase Cul4A; and (c) DDB1 aids in recruiting the ubiquitin ligase activity to the damaged sites for successful commencement of lesion processing by NER.
Insights
DNA damage binding protein 1 (DDB1) is crucial for nucleotide excision repair (NER) of UV-induced DNA damage. DDB1 bridges DDB2 and Cul4A, facilitating DNA repair complex recruitment and lesion processing.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Cancer Susceptibility
Background:
- Functional defects in DNA damage binding (DDB) activity correlate with reduced nucleotide excision repair (NER) and increased cancer risk.
- DDB proteins form a complex with cullin 4A (Cul4A), a ubiquitin ligase involved in DDB2, XPC, and histone H2A ubiquitylation.
- The precise role of DDB1 in NER remains incompletely understood.
Purpose of the Study:
- To elucidate the specific function of DDB1 in the NER pathway.
- To investigate the interaction of DDB1 with other DNA repair proteins like DDB2 and Cul4A.
- To determine DDB1's role in the cellular response to UV-induced DNA damage.
Main Methods:
- Human cell culture and DDB1 knockdown via siRNA.
- Analysis of UV-induced DNA repair, specifically cyclobutane pyrimidine dimers (CPD) and 6-4 photoproducts (6-4PP).
- Nuclear protein fractionation, chromatin association analysis, and immunofluorescence microscopy.
Main Results:
- DDB1 knockdown significantly impaired repair of UV-induced CPDs but not 6-4PPs.
- Upon UV irradiation, DDB1 translocated to tightly bound chromatin fractions, a process dependent on functional DDB2.
- DDB1 knockdown disrupted Cul4A translocation and recruitment to damaged sites, and was essential for UV-induced DDB2 ubiquitylation and degradation.
Conclusions:
- DDB1 is essential for efficient NER of CPDs.
- DDB1 acts as a molecular bridge connecting DDB2 and the ubiquitin ligase Cul4A.
- DDB1 facilitates the recruitment of ubiquitin ligase activity to DNA damage sites, promoting lesion processing by NER.
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