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Published on: March 3, 2016
The cullin 4B-based UV-damaged DNA-binding protein ligase binds to UV-damaged chromatin and ubiquitinates histone H2A
Jennifer Guerrero-Santoro1, Maria G Kapetanaki, Ching L Hsieh
1Department of Microbiology and Molecular Genetics, School of Medicine, Cancer Institute, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
Abstract:
By removing UV-induced lesions from DNA, the nucleotide excision repair (NER) pathway preserves the integrity of the genome. The UV-damaged DNA-binding (UV-DDB) protein complex is involved in the recognition of chromatin-embedded UV-damaged DNA, which is the least understood step of NER. UV-DDB consists of DDB1 and DDB2, and it is a component of the cullin 4A (CUL4A)-based ubiquitin ligase, DDB1-CUL4A(DDB2). We previously showed that DDB1-CUL4A(DDB2) ubiquitinates histone H2A at the sites of UV lesions in a DDB2-dependent manner. Mutations in DDB2 cause a cancer prone syndrome, xeroderma pigmentosum group E (XP-E). CUL4A and its paralog, cullin 4B (CUL4B), copurify with the UV-DDB complex, but it is unclear whether CUL4B has a role in NER as a separate E3 ubiquitin ligase. Here, we present evidence that CUL4A and CUL4B form two individual E3 ligases, DDB1-CUL4A(DDB2) and DDB1-CUL4B(DDB2). To investigate CUL4B's possible role in NER, we examined its subcellular localization in unirradiated and irradiated cells. CUL4B colocalizes with DDB2 at UV-damaged DNA sites. Furthermore, CUL4B binds to UV-damaged chromatin as a part of the DDB1-CUL4B(DDB2) E3 ligase in the presence of functional DDB2. In contrast to CUL4A, CUL4B is localized in the nucleus and facilitates the transfer of DDB1 into the nucleus independently of DDB2. Importantly, DDB1-CUL4B(DDB2) is more efficient than DDB1-CUL4A(DDB2) in monoubiquitinating histone H2A in vitro. Overall, this study suggests that DDB1-CUL4B(DDB2) E3 ligase may have a distinctive function in modifying the chromatin structure at the site of UV lesions to promote efficient NER.
Insights
The cullin 4B (CUL4B) E3 ligase complex, DDB1-CUL4B(DDB2), plays a role in DNA repair by modifying histone H2A at UV-damaged sites. This complex is more efficient than DDB1-CUL4A(DDB2) in promoting nucleotide excision repair.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Epigenetics
Background:
- The nucleotide excision repair (NER) pathway is crucial for removing UV-induced DNA damage.
- The UV-damaged DNA-binding (UV-DDB) complex, including DDB1 and DDB2, recognizes UV lesions in chromatin.
- The E3 ubiquitin ligase DDB1-CUL4A(DDB2) ubiquitinates histone H2A at DNA damage sites.
Purpose of the Study:
- To investigate the role of cullin 4B (CUL4B) in the NER pathway.
- To determine if CUL4B forms an independent E3 ligase complex involved in DNA repair.
- To compare the efficiency of CUL4A and CUL4B containing E3 ligases in histone modification.
Main Methods:
- Subcellular localization studies of CUL4B in irradiated and unirradiated cells.
- Chromatin binding assays for CUL4B and DDB1.
- In vitro monoubiquitination assays of histone H2A using purified E3 ligase complexes.
Main Results:
- CUL4B colocalizes with DDB2 at UV-damaged DNA sites and binds to damaged chromatin.
- CUL4B is localized in the nucleus and facilitates nuclear import of DDB1.
- The DDB1-CUL4B(DDB2) complex is more efficient than DDB1-CUL4A(DDB2) in monoubiquitinating histone H2A.
Conclusions:
- CUL4A and CUL4B form distinct E3 ligase complexes: DDB1-CUL4A(DDB2) and DDB1-CUL4B(DDB2).
- The DDB1-CUL4B(DDB2) E3 ligase complex likely has a specific function in chromatin modification at UV-lesion sites.
- This modification by DDB1-CUL4B(DDB2) may enhance the efficiency of the NER pathway.
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