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γ-H2AX Kinetic Profile in Mouse Lymphocytes Exposed to the Internal Emitters Cesium-137 and Strontium-90

机译:内源铯137和锶90暴露于小鼠淋巴细胞中的γ-H2AX动力学特征

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摘要

In the event of a dirty bomb scenario or an industrial nuclear accident, a significant dose of volatile radionuclides such as 137Cs and 90Sr may be dispersed into the atmosphere as a component of fallout and inhaled or ingested by hundreds and thousands of people. To study the effects of prolonged exposure to ingested radionuclides, we have performed long-term (30 day) internal-emitter mouse irradiations using soluble-injected 137CsCl and 90SrCl2 radioisotopes. The effect of ionizing radiation on the induction and repair of DNA double strand breaks (DSBs) in peripheral mouse lymphocytes in vivo was determined using the γ-H2AX biodosimetry marker. Using a serial sacrifice experimental design, whole-body radiation absorbed doses for 137Cs (0 to 10 Gy) and 90Sr (0 to 49 Gy) were delivered over 30 days following exposure to each radionuclide. The committed absorbed doses of the two internal emitters as a function of time post exposure were calculated based on their retention parameters and their derived dose coefficients for each specific sacrifice time. In order to measure the kinetic profile for >γ-H2AX, peripheral blood samples were drawn at 5 specific timed dose points over the 30-day study period and the total γ-H2AX nuclear fluorescence per lymphocyte was determined using image analysis software. A key finding was that a significant γ-H2AX signal was observed in vivo several weeks after a single radionuclide exposure. A mechanistically-motivated model was used to analyze the temporal kinetics of γ-H2AX fluorescence. Exposure to either radionuclide showed two peaks of γ-H2AX: one within the first week, which may represent the death of mature, differentiated lymphocytes, and the second at approximately three weeks, which may represent the production of new lymphocytes from damaged progenitor cells. The complexity of the observed responses to internal irradiation is likely caused by the interplay between continual production and repair of DNA damage, cell cycle effects and apoptosis.
机译:如果发生肮脏的炸弹或工业核事故,可能会将大量的挥发性放射性核素(如 137 Cs和 90 Sr)作为一种成分散布到大气中的后果,成千上万的人吸入或摄入。为了研究长时间暴露于摄入的放射性核素的影响,我们使用可溶质注入的 137 CsCl和 90 SrCl2放射性同位素进行了长期(30天)小鼠内部辐射。使用γ-H2AX生物剂量测定法确定了电离辐射对体内小鼠外周血淋巴细胞DNA双链断裂(DSB)的诱导和修复的影响。使用连续牺牲实验设计,在30天内递送了 137 Cs(0至10 Gy)和 90 Sr(0至49 Gy)的全身辐射吸收剂量暴露于每种放射性核素之后。根据两个内部发射器的保留参数和每个特定牺牲时间得出的剂量系数,计算出两个内部发射器的承诺吸收剂量作为暴露后时间的函数。为了测量>γ -H2AX的动力学特征,在30天的研究期内以5个特定的定时剂量点抽取外周血样品,并使用以下方法确定每只淋巴细胞的总γ-H2AX核荧光图像分析软件。一个关键发现是在一次放射性核素暴露后数周,在体内观察到了明显的γ-H2AX信号。使用机械动力模型分析了γ-H2AX荧光的时间动力学。暴露于任何一种放射性核素均显示出γ-H2AX的两个峰:一个在第一周内,这可能代表成熟的分化淋巴细胞的死亡,第二个在约三周内,这可能代表受损祖细胞产生了新的淋巴细胞。观察到的对内部辐射反应的复杂性可能是由于连续产生和DNA损伤修复,细胞周期效应和细胞凋亡之间的相互作用所致。

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