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Updated: Aug 9, 2026

Quantification of γH2AX Foci in Response to Ionising Radiation
Published on: April 6, 2010
DNA-PK phosphorylates histone H2AX during apoptotic DNA fragmentation in mammalian cells
Bipasha Mukherjee1, Chase Kessinger, Junya Kobayashi
1Department of Radiation Oncology, University of Texas Southwestern Medical Center, 2201 Inwood Road, NC-7.206, Dallas, TX 75390, USA.
Abstract:
The phosphorylation of histone H2AX at serine 139 is one of the earliest responses of mammalian cells to ionizing radiation-induced DNA breaks. DNA breaks are also generated during the terminal stages of apoptosis when chromosomal DNA is cleaved into oligonucleosomal pieces. Apoptotic DNA fragmentation and the consequent chromatin condensation are important for efficient clearing of genomic DNA and nucleosomes and for protecting the organism from auto-immmunization and oncogenic transformation. In this study, we demonstrate that H2AX is phosphorylated during apoptotic DNA fragmentation in mouse, Chinese hamster ovary, and human cells. We have previously shown that ataxia telangiectasia mutated kinase (ATM) is primarily responsible for H2AX phosphorylation in murine cells in response to ionizing radiation. Interestingly, we find here that DNA-dependent protein kinase (DNA-PK) is solely responsible for H2AX phosphorylation during apoptosis while ATM is dispensable for the process. Moreover, the kinase activity of DNA-PKcs (catalytic subunit of DNA-PK) is specifically required for the induction of gammaH2AX. We further show that DNA-PKcs is robustly activated in apoptotic cells, as evidenced by autophosphorylation at serine 2056, before it is inactivated by cleavage. In contrast, ATM is degraded well before DNA fragmentation and gammaH2AX induction resulting in the predominance of DNA-PK during the later stages of apoptosis. Finally, we show that DNA-PKcs autophosphorylation and gammaH2AX induction occur only in apoptotic nuclei with characteristic chromatin condensation but not in non-apoptotic nuclei from the same culture establishing the most direct link between DNA fragmentation, DNA-PKcs activation, and H2AX phosphorylation. It is well established that DNA-PK is inactivated by cleavage late in apoptosis in order to forestall DNA repair. Our results demonstrate, for the first time, that DNA-PK is actually activated in late apoptotic cells and is able to initiate an early step in the DNA-damage response, namely H2AX phosphorylation, before it is inactivated by proteolysis.
Insights
DNA-dependent protein kinase (DNA-PK) phosphorylates histone H2AX during apoptosis, a process distinct from radiation-induced DNA breaks. This activation occurs before DNA-PK cleavage, highlighting its role in early apoptotic DNA fragmentation.
Area of Science:
- Cellular biology
- Molecular biology
- Biochemistry
Background:
- Histone H2AX phosphorylation (gammaH2AX) is an early cellular response to DNA damage.
- DNA breaks occur during apoptosis, leading to DNA fragmentation and chromatin condensation.
- Ataxia telangiectasia mutated kinase (ATM) is known to phosphorylate H2AX after ionizing radiation.
Purpose of the Study:
- To investigate the kinases responsible for H2AX phosphorylation during apoptosis.
- To elucidate the role of DNA-PK and ATM in H2AX phosphorylation during the late stages of apoptosis.
- To establish the link between DNA fragmentation, kinase activation, and gammaH2AX induction in apoptotic cells.
Main Methods:
- Cell culture (mouse, Chinese hamster ovary, human)
- Induction of apoptosis and ionizing radiation
- Western blotting for phosphorylated H2AX (gammaH2AX), ATM, and DNA-PKcs
- Analysis of DNA-PKcs autophosphorylation and cleavage
- Microscopy to assess chromatin condensation
Main Results:
- H2AX is phosphorylated during apoptotic DNA fragmentation in multiple cell types.
- DNA-dependent protein kinase (DNA-PK) solely mediates H2AX phosphorylation during apoptosis, while ATM is dispensable.
- DNA-PKcs kinase activity is required for gammaH2AX induction, and DNA-PKcs is activated (autophosphorylation) before cleavage in apoptotic cells.
- ATM is degraded before DNA fragmentation and gammaH2AX induction, allowing DNA-PK to dominate in late apoptosis.
- DNA-PKcs activation and gammaH2AX induction are specifically observed in apoptotic nuclei with chromatin condensation.
Conclusions:
- DNA-PK, not ATM, is the primary kinase for H2AX phosphorylation during apoptosis.
- DNA-PK activation and H2AX phosphorylation are tightly linked to chromatin condensation and DNA fragmentation in late apoptotic cells.
- This study reveals a novel role for DNA-PK in initiating DNA damage signaling during apoptosis before its inactivation.
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DNA Damage Can Stall the Cell Cycle
Restarting Stalled Replication Forks
The Intrinsic Apoptotic Pathway
Homologous Recombination
Fixing Double-strand Breaks

