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Updated: Mar 26, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
DNA double-strand break repair: a theoretical framework and its application
Philip J Murray1, Bart Cornelissen2, Katherine A Vallis2
1Division of Mathematics, University of Dundee, Dundee, UK pmurray@dundee.ac.uk.
Abstract:
DNA double-strand breaks (DSBs) are formed as a result of genotoxic insults, such as exogenous ionizing radiation, and are among the most serious types of DNA damage. One of the earliest molecular responses following DSB formation is the phosphorylation of the histone H2AX, giving rise to γH2AX. Many copies of γH2AX are generated at DSBs and can be detected in vitro as foci using well-established immuno-histochemical methods. It has previously been shown that anti-γH2AX antibodies, modified by the addition of the cell-penetrating peptide TAT and a fluorescent or radionuclide label, can be used to visualize and quantify DSBs in vivo. Moreover, when labelled with a high amount of the short-range, Auger electron-emitting radioisotope, (111)In, the amount of DNA damage within a cell can be increased, leading to cell death. In this report, we develop a mathematical model that describes how molecular processes at individual sites of DNA damage give rise to quantifiable foci. Equations that describe stochastic mean behaviours at individual DSB sites are derived and parametrized using population-scale, time-series measurements from two different cancer cell lines. The model is used to examine two case studies in which the introduction of an antibody (anti-γH2AX-TAT) that targets a key component in the DSB repair pathway influences system behaviour. We investigate: (i) how the interaction between anti-γH2AX-TAT and γH2AX effects the kinetics of H2AX phosphorylation and DSB repair and (ii) model behaviour when the anti-γH2AX antibody is labelled with Auger electron-emitting (111)In and can thus instigate additional DNA damage. This work supports the conclusion that DSB kinetics are largely unaffected by the introduction of the anti-γH2AX antibody, a result that has been validated experimentally, and hence the hypothesis that the use of anti-γH2AX antibody to quantify DSBs does not violate the image tracer principle. Moreover, it provides a novel model of DNA damage accumulation in the presence of Auger electron-emitting (111)In that is supported qualitatively by the available experimental data.
Insights
This study models DNA double-strand break (DSB) repair kinetics using anti-γH2AX antibodies. The model confirms DSB quantification is valid and explores DNA damage accumulation with (111)In labeling.
Area of Science:
- Molecular Biology
- Biophysics
- Mathematical Modeling
Background:
- DNA double-strand breaks (DSBs) are critical DNA lesions.
- Histone H2AX phosphorylation (γH2AX) marks DSBs and forms foci.
- Modified antibodies target γH2AX for in vivo DSB detection.
Purpose of the Study:
- Develop a mathematical model for DSB foci formation kinetics.
- Investigate the impact of anti-γH2AX-TAT antibody on DSB repair.
- Model DNA damage accumulation using (111)In-labeled antibodies.
Main Methods:
- Mathematical modeling of molecular processes at DSB sites.
- Parameterization using population-scale time-series data from cancer cell lines.
- Analysis of two case studies involving antibody interaction and radionuclide labeling.
Main Results:
- DSB kinetics are largely unaffected by anti-γH2AX antibody introduction.
- Experimental validation supports the image tracer principle for DSB quantification.
- A novel model for DNA damage accumulation with (111)In labeling was developed.
Conclusions:
- Anti-γH2AX antibody use for DSB quantification adheres to the image tracer principle.
- The developed model accurately describes DSB foci formation and repair dynamics.
- The study provides insights into Auger electron-induced DNA damage accumulation.
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