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Updated: Jun 10, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Loss of p15/Ink4b accompanies tumorigenesis triggered by complex DNA double-strand breaks
Cristel V Camacho1, Bipasha Mukherjee, Brian McEllin
1Department of Radiation Oncology, University of Texas Southwestern Medical Center at Dallas, Dallas, TX 75390, USA.
Abstract:
DNA double-strand breaks (DSBs) are the most deleterious lesion inflicted by ionizing radiation. Although DSBs are potentially carcinogenic, it is not clear whether complex DSBs that are refractory to repair are more potently tumorigenic compared with simple breaks that can be rapidly repaired, correctly or incorrectly, by mammalian cells. We previously demonstrated that complex DSBs induced by high-linear energy transfer (LET) Fe ions are repaired slowly and incompletely, whereas those induced by low-LET gamma rays are repaired efficiently by mammalian cells. To determine whether Fe-induced DSBs are more potently tumorigenic than gamma ray-induced breaks, we irradiated 'sensitized' murine astrocytes that were deficient in Ink4a and Arf tumor suppressors and injected the surviving cells subcutaneously into nude mice. Using this model system, we find that Fe ions are potently tumorigenic, generating tumors with significantly higher frequency and shorter latency compared with tumors generated by gamma rays. Tumor formation by Fe-irradiated cells is accompanied by rampant genomic instability and multiple genomic changes, the most interesting of which is loss of the p15/Ink4b tumor suppressor due to deletion of a chromosomal region harboring the CDKN2A and CDKN2B loci. The additional loss of p15/Ink4b in tumors derived from cells that are already deficient in p16/Ink4a bolsters the hypothesis that p15 plays an important role in tumor suppression, especially in the absence of p16. Indeed, we find that reexpression of p15 in tumor-derived cells significantly attenuates the tumorigenic potential of these cells, indicating that p15 loss may be a critical event in tumorigenesis triggered by complex DSBs.
Insights
High-energy iron ions cause complex DNA double-strand breaks (DSBs) that are more tumorigenic than gamma ray-induced breaks. These complex DSBs lead to genomic instability and loss of the p15/Ink4b tumor suppressor, promoting cancer.
Area of Science:
- Radiation biology
- Cancer research
- Genomics
Background:
- DNA double-strand breaks (DSBs) are critical lesions from ionizing radiation.
- The carcinogenic potential of complex DSBs, refractory to repair, remains unclear compared to simple DSBs.
- High-linear energy transfer (LET) Fe ions induce complex DSBs repaired slowly, unlike low-LET gamma rays.
Purpose of the Study:
- To determine if Fe ion-induced complex DSBs are more tumorigenic than gamma ray-induced simple DSBs.
- To investigate the role of tumor suppressors in Fe ion-induced tumorigenesis.
- To elucidate the mechanisms underlying Fe ion-induced cancer initiation.
Main Methods:
- Irradiation of 'sensitized' murine astrocytes deficient in Ink4a and Arf tumor suppressors.
- Subcutaneous injection of surviving cells into nude mice to assess tumorigenicity.
- Analysis of genomic instability and tumor suppressor gene alterations in resulting tumors.
Main Results:
- Fe ions significantly increased tumor frequency and shortened latency compared to gamma rays.
- Fe ion-induced tumors exhibited rampant genomic instability and multiple genomic changes.
- Loss of the p15/Ink4b tumor suppressor, via deletion of CDKN2A/CDKN2B loci, was a key event in Fe ion-induced tumors.
Conclusions:
- Complex DSBs induced by high-LET Fe ions are potently tumorigenic.
- Loss of p15/Ink4b is a critical event in tumorigenesis initiated by complex DSBs, particularly when p16/Ink4a is absent.
- Re-expression of p15 attenuates the tumorigenic potential, confirming its role in tumor suppression.
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