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Updated: Aug 7, 2026

Measuring DNA Damage and Repair in Mouse Splenocytes After Chronic In Vivo Exposure to Very Low Doses of Beta- and Gamma-Radiation
Published on: July 3, 2015
Gamma-irradiation directly affects the formation of coding joints in SCID cell lines
Abstract:
SCID mice have a defect in the catalytic subunit of the DNA-dependent protein kinase, causing increased sensitivity to ionizing radiation in all tissues and severely limiting the development of B and T cell lineages. SCID T and B cell precursors are unable to undergo normal V(D)J recombination: coding joint and signal joint products are less frequently formed and often will exhibit abnormal structural features. Paradoxically, irradiation of newborn SCID mice effects a limited rescue of T cell development. It is not known whether irradiation has a direct impact on the process of V(D)J joining, or whether irradiation of the thymus allows the outgrowth of rare recombinants. To investigate this issue, we sought to demonstrate an irradiation effect ex vivo. Here we have been able to reproducibly detect low-frequency coding joint products with V(D)J recombination reporter plasmids introduced into SCID cell lines. Exposure of B and T lineage cells to 100 cGy of gamma irradiation made no significant difference with respect to the number of coding joint and signal joint recombination products. However, in the absence of irradiation, the coding joints produced in SCID cells had high levels of P nucleotide insertion. With irradiation, markedly fewer P insertions were seen. The effect on coding joint structure is evident in a transient assay, in cultured cells, establishing that irradiation has an immediate impact on the process of V(D)J recombination. A specific proposal for how the DNA-dependent protein kinase catalytic subunit influences the opening of hairpin DNA intermediates during coding joint formation in V(D)J recombination is presented.
Insights
Ionizing radiation impacts V(D)J recombination in SCID mice by reducing P nucleotide insertions during coding joint formation. This suggests radiation directly influences DNA repair processes, not just cell survival.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- Severe Combined Immunodeficiency (SCID) mice exhibit defects in DNA-dependent protein kinase, leading to impaired B and T cell development and V(D)J recombination.
- SCID mice show increased sensitivity to ionizing radiation, but paradoxically, irradiation can partially rescue T cell development.
- The direct impact of irradiation on V(D)J recombination processes in SCID mice remains unclear.
Purpose of the Study:
- To investigate the ex vivo effect of gamma irradiation on V(D)J recombination in SCID cell lines.
- To determine if irradiation directly influences the formation and structure of V(D)J recombination products.
Main Methods:
- Utilized V(D)J recombination reporter plasmids introduced into SCID cell lines.
- Exposed B and T lineage cells to 100 cGy of gamma irradiation.
- Analyzed coding and signal joint products for frequency and structural abnormalities, including P nucleotide insertions.
Main Results:
- Low-frequency coding joint products of V(D)J recombination were reproducibly detected in SCID cell lines.
- Irradiation did not significantly alter the number of coding or signal joint products.
- Irradiated SCID cells showed significantly fewer P nucleotide insertions in coding joints compared to non-irradiated cells.
Conclusions:
- Irradiation has a direct and immediate impact on the structural integrity of coding joints during V(D)J recombination in SCID cells.
- The findings suggest a role for DNA-dependent protein kinase in regulating hairpin DNA opening during V(D)J recombination.
- This study provides mechanistic insights into how DNA repair pathways are modulated by ionizing radiation.
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