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Updated: Feb 10, 2026

Immunofluorescence Microscopy of γH2AX and 53BP1 for Analyzing the Formation and Repair of DNA Double-strand Breaks
Published on: November 3, 2017
Detection of DNA Double Strand Breaks by γH2AX Does Not Result in 53bp1 Recruitment in Mouse Retinal Tissues
Brigitte Müller1, N M Ellinwood2, Birgit Lorenz1
1Department of Ophthalmology, Justus-Liebig-University Giessen, Giessen, Germany.
Abstract:
Gene editing is an attractive potential treatment of inherited retinopathies. However, it often relies on endogenous DNA repair. Retinal DNA repair is incompletely characterized in humans and animal models. We investigated recruitment of the double stranded break (DSB) repair complex of γH2AX and 53bp1 in both developing and mature mouse neuroretinas. We evaluated the immunofluorescent retinal expression of these proteins during development (P07-P30) in normal and retinal degeneration models, as well as in potassium bromate induced DSB repair in normal adult (3 months) retinal explants. The two murine retinopathy models used had different mutations in Pde6b: the severe rd1 and the milder rd10 models. Compared to normal adult retina, we found increased numbers of γH2AX positive foci in all retinal neurons of the developing retina in both model and control retinas, as well as in wild type untreated retinal explant cultures. In contrast, the 53bp1 staining of the retina differed both in amount and character between cell types at all ages and in all model systems. There was strong pan nuclear staining in ganglion, amacrine, and horizontal cells, and cone photoreceptors, which was attenuated. Rod photoreceptors did not stain unequivocally. In all samples, 53bp1 stained foci only rarely occurred. Co-localization of 53bp1 and γH2AX staining was a very rare event (< 1% of γH2AX foci in the ONL and < 3% in the INL), suggesting the potential for alternate DSB sensing and repair proteins in the murine retina. At a minimum, murine retinal DSB repair does not appear to follow canonical pathways, and our findings suggests further investigation is warranted.
Insights
Gene editing for inherited retinopathies faces challenges due to unknown retinal DNA repair. This study reveals mouse retinal double-strand break repair doesn't follow typical pathways, suggesting alternative mechanisms.
Area of Science:
- Ophthalmology
- Molecular Biology
- Genetics
Background:
- Gene editing holds promise for inherited retinopathies, but relies on poorly understood retinal DNA repair mechanisms.
- Understanding double-strand break (DSB) repair in the retina is crucial for developing effective gene therapies.
Purpose of the Study:
- To investigate the recruitment of the DSB repair complex proteins γH2AX and 53bp1 in developing and mature mouse retinas.
- To evaluate retinal DNA repair pathways in normal and inherited retinopathy models.
Main Methods:
- Immunofluorescent staining for γH2AX and 53bp1 in mouse retinas across different developmental stages and in retinopathy models (rd1, rd10).
- Analysis of DSB repair in potassium bromate-induced retinal explants.
- Assessed co-localization of γH2AX and 53bp1 foci.
Main Results:
- Increased γH2AX foci observed in developing retinas and in response to induced DSBs, indicating DNA damage and repair activity.
- 53bp1 staining varied significantly by cell type and age, with rare foci formation, suggesting non-canonical repair.
- Minimal co-localization (<3%) of γH2AX and 53bp1, implying alternative DSB sensing and repair proteins are involved in murine retinal repair.
Conclusions:
- Murine retinal double-strand break repair pathways appear distinct from canonical models.
- Further research is needed to elucidate the specific proteins and mechanisms involved in retinal DNA repair for therapeutic development.
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