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Published on: June 9, 2020
Partial deficiency of DNA-PKcs increases ionizing radiation-induced mutagenesis and telomere instability in human
Ying Zhang1, Junqing Zhou, Xiaofan Cao
1Department of Environmental and Radiological Health Sciences, Colorado State University, Fort Collins, CO 80521, USA. ying.zhang@colostate.edu
Abstract:
The correct repair of DNA double-strand breaks (DSBs) is essential to maintaining the integrity of the genome. Misrepair of DSBs is detrimental to cells and organisms, leading to gene mutation, chromosomal aberration, and cancer development. Nonhomologous end-joining (NHEJ) is one of the principal rejoining processes in most higher eukaryotic cells. NHEJ is facilitated by DNA-dependent protein kinase (DNA-PK), which is composed of a catalytic subunit, DNA-PKcs, and the heterodimeric DNA binding regulatory complex Ku70/86. Null mutation of DNA-PKcs leads to immunodeficiency, chromosomal aberration, gene mutation, telomeric end-capping failure, and cancer predisposition in animals and cells. However, it is unknown whether partial deficiency of DNA-PKcs as might occur in a fraction of the population (e.g., heterozygotes), influences cellular function. Using small interfering RNA (siRNA) transfection, we established partial deficiency of DNA-PKcs in human cells, ranging from 4 to 85% of control levels. Our results reveal for the first time, that partial deficiency of DNA-PKcs leads to increased ionizing radiation (IR)-induced mutagenesis, cell killing, and telomere dysfunction. Radiation mutagenesis was increased inversely with DNA-PKcs protein level, with the most pronounced effect being observed in cells with protein levels below 50% of controls. A small but statistically significant increase in IR-induced cell killing was observed as DNA-PKcs levels decreased, over the entire range of protein levels. Frequencies of IR-induced telomere-DSB fusion was increased at levels of DNA-PKcs as low as approximately 50%, similar to what would be expected in heterozygous individuals. Taken together, our results suggest that even partial deficiency of DNA repair proteins may represent a considerable risk to genomic stability.
Insights
Partial deficiency in DNA-PKcs, a key DNA repair protein, increases risks of mutations, cell death, and telomere dysfunction after radiation exposure. Even reduced levels, like in heterozygotes, compromise genomic stability.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- DNA double-strand breaks (DSBs) are critical DNA lesions that must be repaired accurately to maintain genome integrity.
- Misrepair of DSBs can lead to mutations, chromosomal abnormalities, and cancer.
- Nonhomologous end-joining (NHEJ) is a major DSB repair pathway, facilitated by DNA-dependent protein kinase (DNA-PK), comprising DNA-PKcs and Ku70/86.
Purpose of the Study:
- To investigate the functional consequences of partial deficiency in DNA-PKcs, mimicking potential heterozygous states.
- To determine if reduced DNA-PKcs levels impact cellular responses to ionizing radiation (IR).
Main Methods:
- Partial deficiency of DNA-PKcs was established in human cells using small interfering RNA (siRNA) transfection, achieving protein levels from 4% to 85% of controls.
- Cells were exposed to ionizing radiation (IR) to assess mutagenesis, cell killing, and telomere dysfunction.
Main Results:
- Partial DNA-PKcs deficiency significantly increased IR-induced mutagenesis, with effects inversely correlated to protein levels, most pronounced below 50%.
- A statistically significant increase in IR-induced cell killing was observed across all levels of DNA-PKcs reduction.
- IR-induced telomere-DSB fusions increased at DNA-PKcs levels as low as approximately 50%, suggesting risk in heterozygous individuals.
Conclusions:
- Partial deficiency of DNA-PKcs compromises genomic stability by increasing IR-induced mutagenesis, cell killing, and telomere dysfunction.
- Even moderate reductions in DNA repair protein levels can pose a significant risk to cellular and organismal health.
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