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辐射质量对耐辐射球菌中氧化应激、蛋白质和DNA损伤之间相互作用的影响。

Effects of radiation quality on interactions between oxidative stress, protein and DNA damage in Deinococcus radiodurans.

作者信息

Shuryak Igor, Brenner David J

机构信息

Center for Radiological Research, Columbia University Medical Center, New York, NY 10032, USA.

出版信息

Radiat Environ Biophys. 2010 Nov;49(4):693-703. doi: 10.1007/s00411-010-0305-1. Epub 2010 Jun 24.

Abstract

Ionizing radiation damages DNA and also induces oxidative stress, which can affect the function of proteins involved in DNA repair, thereby causing repair of DNA damage to become less efficient. We previously developed a mathematical model of this potentially synergistic relationship and applied it to γ-ray exposure data on the radiation-resistant prokaryote Deinococcus radiodurans. Here, we investigate the effects of radiation quality on these processes by applying the model to data on exposures of D. radiodurans to heavy ions with linear energy transfer (LET) of 18.5-11,300 keV/μm. The model adequately describes these data using three parameters combinations: radiogenic DNA damage induction, repair protein inactivation and cellular repair capacity. Although statistical uncertainties around best-fit parameter estimates are substantial, the behaviors of model parameters are consistent with current knowledge of LET effects: inactivation cross-sections for both DNA and proteins increase with increasing LET; DNA damage yield per unit of radiation dose also increases with LET; protein damage per unit dose tends to decrease with LET; DNA and especially protein damage yields are reduced when cells are irradiated in the dry state. These results suggest that synergism between oxidative stress and DNA damage may play an important role not only during γ-ray exposure, but during high-LET radiation exposure as well.

摘要

电离辐射会损伤DNA,还会引发氧化应激,而氧化应激会影响参与DNA修复的蛋白质的功能,从而使DNA损伤的修复效率降低。我们之前建立了一个关于这种潜在协同关系的数学模型,并将其应用于抗辐射原核生物耐辐射球菌的γ射线照射数据。在此,我们通过将该模型应用于耐辐射球菌对线能量转移(LET)为18.5 - 11300 keV/μm的重离子照射的数据,来研究辐射质量对这些过程的影响。该模型使用三个参数组合充分描述了这些数据:辐射诱导的DNA损伤、修复蛋白失活和细胞修复能力。尽管最佳拟合参数估计周围的统计不确定性很大,但模型参数的行为与当前关于LET效应的认识一致:DNA和蛋白质的失活截面均随LET增加而增大;单位辐射剂量的DNA损伤产额也随LET增加;单位剂量的蛋白质损伤倾向于随LET降低;当细胞处于干燥状态下照射时,DNA尤其是蛋白质的损伤产额会降低。这些结果表明,氧化应激与DNA损伤之间的协同作用可能不仅在γ射线照射期间,而且在高LET辐射照射期间也发挥着重要作用。

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