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HFL-I 세포의 잠재적 치사 손상 회복에 따른 세포 생존율 변화

Change of Surviving Fractions based on the Recovery of Potentially Lethal Damage in HFL-I Cell Line

  • 최은애 (고려대학교 바이오융합공학과)
  • Choi, Eunae (Department of Bio-convergence Engineering, Korea university)
  • 투고 : 2017.05.21
  • 심사 : 2017.06.30
  • 발행 : 2017.06.30

초록

HFL-I 세포를 이용하여 immediate assay를 시행하였다. 발생한 repair의 양이 없기 때문에 $LogSn=-n{\gamma}({\alpha}d+{\beta}d^2$)에서 ${\gamma}$의 값은 1이며 이는 LQ model과 같다. 그리고 세포생존율의 데이터를 바탕으로 ${\alpha}$, ${\beta}$, ${\alpha}/{\beta}$의 값을 얻었다. 또한 12시간, 36시간, 48시간 후 delayed assay를 시행하여 marchese model 통해 ${\gamma}$값을 도출한 후 Pot entially lethal damage repair (PLDR)가 발생한 양을 확인하였다. delay time이 길어질수록 ${\gamma}$값은 감소함으로써 PLDR의 양이 증가함을 확인하였고 이에 따라 세포생존율은 상승됨을 보였다. 탄소빔의 1분할, 2분할, 3분할, 4분할 조사 시 각각의 interval 시간동안 나타나는 ${\gamma}$값 역시 감소하고 있음을 확인하여 PLDR의 발생을 확인할 수 있었지만 ${\gamma}$값만 감안한 marchese model을 surviving fraction값에 적용 시 오류 발생함을 보였다. 이는 탄소빔 분할조사 시 다른 회복의 매커니즘이 존재함을 뜻하여 이를 적용할 수 있는 새로운 파라미터가 고려되어져야 할 것이다.

Potentially lethal damage repair (PLDR) in HFL-I was investigated by delayed plating experiments. The surviving fraction data were fitted to the linear Quadratic equation ($LogSn=-n{\gamma}({\alpha}d+{\beta}d^2$) where ${\gamma}=1$ for immediate plating). And a repair factor ${\gamma}$ was developed to compare survival for immediate and delayed plating. When we only took into account the repair factor of PLDR ${\gamma}$ which was derived from the delay assay, the cell survival response th fractionated carbon ion irradiation was not fully matched. This gap suggested that consideration of another repair process is necessary. So this suggests that the various repair process plays an important role in the fractionated irradiations.

키워드

참고문헌

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피인용 문헌

  1. Biophysical Model Including a Potentially Lethal Damage Repair Parameter in Fractionated Carbon Beam vol.77, pp.2, 2017, https://doi.org/10.3938/jkps.77.161