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Updated: May 23, 2026

Quantification of γH2AX Foci in Response to Ionising Radiation
Published on: April 6, 2010
γ-H2AX and other histone post-translational modifications in the clinic
Christophe E Redon1, Urbain Weyemi, Palak R Parekh
1Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, 9000 Rockville Pike, Bethesda, MD, 20892, USA.
Abstract:
Chromatin is a dynamic complex of DNA and proteins that regulates the flow of information from genome to end product. The efficient recognition and faithful repair of DNA damage, particularly double-strand damage, is essential for genomic stability and cellular homeostasis. Imperfect repair of DNA double-strand breaks (DSBs) can lead to oncogenesis. The efficient repair of DSBs relies in part on the rapid formation of foci of phosphorylated histone H2AX (γ-H2AX) at each break site, and the subsequent recruitment of repair factors. These foci can be visualized with appropriate antibodies, enabling low levels of DSB damage to be measured in samples obtained from patients. Such measurements are proving useful to optimize treatments involving ionizing radiation, to assay in vivo the efficiency of various drugs to induce DNA damage, and to help diagnose patients with a variety of syndromes involving elevated levels of γ-H2AX. We will survey the state of the art of utilizing γ-H2AX in clinical settings. We will also discuss possibilities with other histone post-translational modifications. The ability to measure in vivo the responses of individual patients to particular drugs and/or radiation may help optimize treatments and improve patient care. This article is part of a Special Issue entitled: Chromatin in time and space.
Insights
Measuring phosphorylated histone H2AX (γ-H2AX) foci aids in detecting DNA double-strand breaks (DSBs). This technique helps optimize cancer treatments and diagnose genetic syndromes by assessing patient responses to radiation and drugs.
Area of Science:
- Molecular Biology
- Genomics
- Cellular Biology
Background:
- Chromatin structure regulates genomic information flow.
- Accurate DNA damage repair, especially for double-strand breaks (DSBs), is crucial for genomic stability.
- Defective DSB repair can lead to oncogenesis.
Purpose of the Study:
- To review the current applications of phosphorylated histone H2AX (γ-H2AX) in clinical settings.
- To explore the potential of other histone modifications in clinical diagnostics and treatment.
- To highlight the utility of γ-H2AX in optimizing patient treatments and care.
Main Methods:
- Formation of γ-H2AX foci at DNA break sites.
- Recruitment of DNA repair factors to DSBs.
- Visualization of γ-H2AX foci using specific antibodies for damage quantification.
Main Results:
- γ-H2AX foci serve as sensitive biomarkers for DSB detection.
- Measurements of γ-H2AX levels can assess patient responses to ionizing radiation and DNA-damaging drugs.
- Elevated γ-H2AX levels are associated with specific patient syndromes.
Conclusions:
- γ-H2AX visualization is a valuable tool for measuring DNA damage in clinical samples.
- This approach can personalize cancer therapy and aid in diagnosing various genetic disorders.
- Future research may expand the use of histone modifications for improved patient management.
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