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.

Cancer Research
|July 3, 2008
PubMed

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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