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Updated: May 31, 2026

Quantification of γH2AX Foci in Response to Ionising Radiation
Published on: April 6, 2010
Monoubiquitination of H2AX protein regulates DNA damage response signaling
Mei-Ren Pan1, Guang Peng, Wen-Chun Hung
1Department of Systems Biology, Unit 950, The University of Texas MD Anderson Cancer Center, Houston, Texas 77054, USA.
Abstract:
Double strand breaks (DSBs) are the most deleterious of the DNA lesions that initiate genomic instability and promote tumorigenesis. Cells have evolved a complex protein network to detect, signal, and repair DSBs. In mammalian cells, a key component in this network is H2AX, which becomes rapidly phosphorylated at Ser(139) (γ-H2AX) at DSBs. Here we show that monoubiquitination of H2AX mediated by the RNF2-BMI1 complex is critical for the efficient formation of γ-H2AX and functions as a proximal regulator in DDR (DNA damage response). RNF2-BMI1 interacts with H2AX in a DNA damage-dependent manner and is required for monoubiquitination of H2AX at Lys(119)/Lys(120). As a functional consequence, we show that the H2AX K120R mutant abolishes H2AX monoubiquitination, impairs the recruitment of p-ATM (Ser(1981)) to DSBs, and thereby reduces the formation of γ-H2AX and the recruitment of MDC1 to DNA damage sites. These data suggest that monoubiquitination of H2AX plays a critical role in initiating DNA damage signaling. Consistent with these observations, impairment of RNF2-BMI1 function by siRNA knockdown or overexpression of the ligase-dead RNF2 mutant all leads to significant defects both in accumulation of γ-H2AX, p-ATM, and MDC1 at DSBs and in activation of NBS1 and CHK2. Additionally, the regulatory effect of RNF2-BMI1 on γ-H2AX formation is dependent on ATM. Lacking their ability to properly activate the DNA damage signaling pathway, RNF2-BMI1 complex-depleted cells exhibit impaired DNA repair and increased sensitivity to ionizing radiation. Together, our findings demonstrate a distinct monoubiquitination-dependent mechanism that is required for H2AX phosphorylation and the initiation of DDR.
Insights
Monoubiquitination of H2AX by RNF2-BMI1 is crucial for DNA damage signaling. This process is essential for efficient DNA repair and genomic stability, impacting cancer development.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- DNA double-strand breaks (DSBs) are critical DNA lesions that can lead to genomic instability and cancer.
- The DNA damage response (DDR) network, including H2AX phosphorylation (γ-H2AX), is vital for detecting and repairing DSBs.
Purpose of the Study:
- To investigate the role of H2AX monoubiquitination in the DNA damage response.
- To elucidate the function of the RNF2-BMI1 complex in regulating H2AX modification and downstream signaling.
Main Methods:
- Utilizing mammalian cell models with induced DNA damage.
- Employing techniques such as Western blotting, immunoprecipitation, and siRNA knockdown.
- Analyzing the impact of H2AX mutations (K120R) and RNF2-BMI1 manipulation on DDR signaling components.
Main Results:
- RNF2-BMI1 complex mediates H2AX monoubiquitination at Lys(119)/Lys(120) in a DNA damage-dependent manner.
- H2AX monoubiquitination is essential for efficient γ-H2AX formation and recruitment of ATM, MDC1, NBS1, and CHK2 to DSBs.
- Impairment of RNF2-BMI1 function leads to defective DDR signaling, impaired DNA repair, and increased sensitivity to ionizing radiation.
Conclusions:
- H2AX monoubiquitination by RNF2-BMI1 is a critical upstream event for H2AX phosphorylation and initiation of the DDR.
- This novel monoubiquitination-dependent mechanism highlights a key regulatory step in DNA damage signaling and repair.
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