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Telomere Length and Telomerase Activity; A Yin and Yang of Cell Senescence
Published on: May 22, 2013
Tumor Cell-Accelerated Senescence Is Associated With DNA-PKcs Status and Telomere Dysfunction Induced by Radiation
Miaomiao Zhang1,2, Xiaopeng Guo1,2, Yue Gao1,2
1Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou, China.
Abstract:
Whether telomere structure integrity is related to radiosensitivity is not well investigated thus far. In this study, we investigated the relation between telomere instability and radiation-induced accelerated senescence. Partial knockdown of DNA-dependent catalytic subunit of protein kinase (DNA-PKcs) in human breast cancer cell line MCF-7 was established by small interfering RNA. Radiosensitivity of control and DNA-PKcs knockdown MCF-7 cells was analyzed by clonogenetic assay. Cell growth was measured by real-time cell electronic sensing. Senescence and apoptosis were evaluated by β-galactosidase histochemical staining and fluorescence-activated cell sorting, respectively. DNA damage was determined by long polymerase chain reaction (PCR). Telomere length and integrity were analyzed by real-time PCR and cytogenetic assay, respectively. DNA-PKcs knockdown MCF-7 cells were more sensitive to X-irradiation than control cells. Further investigation revealed that accelerated senescence is more pronounced than apoptosis in cells after radiation, particularly in DNA-PKcs knockdown cells. The cytogenetic assay and kinetics of DNA damage repair revealed that the role of telomere end-capping in DNA-PKcs, rather than DNA damage repair, was more relevant to radiosensitivity. To our knowledge, this is the first study to show that DNA-PKcs plays an important role in radiation-induced accelerated senescence via maintenance of telomere integrity in MCF-7 cells. These results could be useful for future understanding of the radiation-induced genome instability and its consequences.
Insights
This study shows DNA-PKcs maintains telomere integrity, impacting radiosensitivity and radiation-induced senescence in breast cancer cells. DNA-PKcs knockdown increases sensitivity to X-irradiation.
Area of Science:
- Oncology
- Cell Biology
- Radiation Biology
Background:
- The relationship between telomere structure integrity and radiosensitivity remains under-investigated.
- DNA-dependent catalytic subunit of protein kinase (DNA-PKcs) is crucial in DNA repair pathways.
Purpose of the Study:
- To investigate the link between telomere instability and radiation-induced accelerated senescence.
- To determine the role of DNA-PKcs in radiosensitivity and telomere maintenance in MCF-7 cells.
Main Methods:
- Partial knockdown of DNA-PKcs in MCF-7 cells using small interfering RNA.
- Analysis of radiosensitivity via clonogenetic assay and cell growth via real-time cell electronic sensing.
- Evaluation of senescence, apoptosis, DNA damage, telomere length, and integrity using various assays (e.g., β-galactosidase staining, FACS, PCR, cytogenetic assay).
Main Results:
- DNA-PKcs knockdown MCF-7 cells exhibited increased sensitivity to X-irradiation.
- Radiation induced accelerated senescence more prominently than apoptosis, especially in DNA-PKcs knockdown cells.
- DNA-PKcs's role in telomere end-capping, not DNA damage repair, was more relevant to radiosensitivity.
Conclusions:
- This study is the first to demonstrate DNA-PKcs's significant role in radiation-induced accelerated senescence through telomere integrity maintenance in MCF-7 cells.
- Findings suggest potential implications for understanding radiation-induced genome instability and its consequences.
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