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Establishment of a small animal tumour model for in vivo studies with low energy laser accelerated particles

机译:利用低能激光加速粒子体内研究的小型动物肿瘤模型的建立

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Background The long-term aim of developing a laser based acceleration of protons and ions towards clinical application requires not only substantial technological progress, but also the radiobiological characterization of the resulting ultra-short pulsed particle beams. Recent in vitro data showed similar effects of laser-accelerated versus "conventional" protons on clonogenic cell survival. As the proton energies currently achieved by laser driven acceleration are too low to penetrate standard tumour models on mouse legs, the aim of the present work was to establish a tumour model allowing for the penetration of low energy protons (~ 20?MeV) to further verify their effects in vivo. Methods KHT mouse sarcoma cells were injected subcutaneously in the right ear of NMRI (nu/nu) mice and the growing tumours were characterized with respect to growth parameters, histology and radiation response. In parallel, the laser system JETI was prepared for animal experimentation, i.e. a new irradiation setup was implemented and the laser parameters were carefully adjusted. Finally, a proof-of-principle experiment with laser accelerated electrons was performed to validate the tumour model under realistic conditions, i.e. altered environment and horizontal beam delivery. Results KHT sarcoma on mice ears showed a high take rate and continuous tumour growth after reaching a volume of?~?5?mm3. The first irradiation experiment using laser accelerated electrons versus 200?kV X-rays was successfully performed and tumour growth delay was evaluated. Comparable tumour growth delay was found between X-ray and laser accelerated electron irradiation. Moreover, experimental influences, like anaesthesia and positioning at JETI, were found to be negligible. Conclusion A small animal tumour model suitable for the irradiation with low energy particles was established and validated at a laser based particle accelerator. Thus, the translation from in vitro to in vivo experimentation was for the first time realized allowing a broader preclinical validation of radiobiological characteristics and efficacy of laser driven particle accelerators in the future.
机译:背景技术发展激光的质子和离子加速的长期目的不仅需要实质性的技术进步,而且还需要产生的超短脉冲粒子束的放射生物学表征。最近的体外数据显示出激光加速与“常规”质子对克隆核酸细胞存活的影响。由于激光驱动加速器目前实现的质子能量太低,不能穿着小鼠腿上的标准肿瘤模型,所以目前的作品的目的是建立肿瘤模型,允许渗透低能量质子(〜20?MEV)进一步渗透验证它们在体内的效果。方法将KHT小鼠SARCOMA细胞皮下注射在NMRI(NU / NU)小鼠的右耳中,并在生长参数,组织学和放射响应方面表征生长肿瘤。同时,为动物​​实验制备激光系统Jeti,即实施了新的照射设置,并仔细调整了激光参数。最后,进行了激光加速电子的原则上的实验,以在现实条件下验证肿瘤模型,即改变的环境和水平梁输送。结果小鼠耳朵的KHT肉瘤显示出高度率和连续肿瘤生长后达到体积,达到1°〜Δ5?mm 3 。使用激光加速电子与200μlkV X射线的第一照射实验进行了成功进行,评价肿瘤生长延迟。在X射线和激光加速电子照射之间发现了可比较的肿瘤生长延迟。此外,发现类似于麻醉和定位在码头的实验影响,以忽略不计。结论在基于激光的颗粒促进剂下建立并验证适合于用低能量颗粒照射的小动物肿瘤模型。因此,从体外进行体内实验的翻译是第一次实现了未来允许更广泛的临床前验证未来激光驱动粒子促进剂的放射性学特征和功效。

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