During exposure to ionizing radiation, sub-lethal damage repair (SLDR) competes with DNA damage induction in cultured cells. By virtue of SLDR, cell survival increases with decrease of dose-rate, so-called dose-rate effects (DREs). Here, we focused on a wide dose-rate range and investigated the change of cell-cycle distribution during X-ray protracted exposure and dose-response curves via hybrid analysis with a combination of in vitro experiments and mathematical modelling. In the course of flow-cytometric cell-cycle analysis and clonogenic assays, we found the following responses in CHO-K1 cells: (1) The fraction of cells in S phase gradually increases during 6âh exposure at 3.0âGy/h, which leads to radio-resistance. (2) Slight cell accumulation in S and G(2)/M phases is observed after exposure at 6.0âGy/h for more than 10âhours. This suggests that an increase of SLDR rate for cells in S phase during irradiation may be a reproducible factor to describe changes in the dose-response curve at dose-rates of 3.0 and 6.0âGy/h. By re-evaluating cell survival for various dose-rates of 0.186-60.0âGy/h considering experimental-based DNA content and SLDR, it is suggested that the change of S phase fraction during irradiation modulates the dose-response curve and is possibly responsible for some inverse DREs.
Investigation of dose-rate effects and cell-cycle distribution under protracted exposure to ionizing radiation for various dose-rates.
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作者:Matsuya Yusuke, McMahon Stephen J, Tsutsumi Kaori, Sasaki Kohei, Okuyama Go, Yoshii Yuji, Mori Ryosuke, Oikawa Joma, Prise Kevin M, Date Hiroyuki
| 期刊: | Scientific Reports | 影响因子: | 3.900 |
| 时间: | 2018 | 起止号: | 2018 May 29; 8(1):8287 |
| doi: | 10.1038/s41598-018-26556-5 | ||
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