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Laser Particle Acceleration for Radiotherapy:A first radiobiological characterization of laser accelerated electrons

机译:用于放射治疗的激光粒子加速:激光加速电子的首次放射生物学表征

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In recent years, the technology of laser-based particle acceleration has developed at such a rate that compact and potentially more cost-effective accelerators are promised for medical application, e.g. for high precision hadron radiotherapy. Necessary requirements are the supply of stable and reliable particle beams with reproducible properties, sufficient particle intensities and monoenergetic spectra. Additionally, a precise dose delivery in an appropriate time and the exposure of a desired irradiation field are needed. Beside these physical demands, the consequences on detection and dosimetry as well as the radiobiological effect on living cells have to be investigated for the ultra-short pulsed laser-based particle beams.As a first step, the laser accelerator facility at the Jena Ti-tanium:Sapphire system was customized for in vitro cell irradiation experiments and the delivered electron beam was improved with regard to its spectrum, diameter, dose rate and dose homogeneity. Furthermore, a custom-designed beam and dose monitoring system was established that enables real-time monitoring of the irradiation experiments and a precise determination of the dose delivered to the cells. Moreover, stable and reproducible beam properties were achieved during the whole three month experiment campaign.Dose-effect-curves were obtained for four cell lines and two endpoints, generally displaying a lower biological effectiveness for short-pulsed laser-accelerated electrons relative to the continuous 200 kV X-ray reference irradiation. Possible reasons will be discussed.
机译:近年来,基于激光的粒子加速技术的发展速度使得人们有望在医学应用中使用紧凑型且可能更具成本效益的加速器,例如用于医学领域的加速器。用于高精度强子放射治疗。必需的要求是提供稳定且可靠的粒子束,这些粒子束具有可复制的特性,足够的粒子强度和单能谱。另外,需要在适当的时间内进行精确的剂量输送并暴露所需的照射场。除了这些物理要求外,还必须研究基于超短脉冲激光的粒子束对检测和剂量测定的影响以及对活细胞的放射生物学效应。 第一步,为体外细胞辐照实验定制了Jena Ti-tanium:Sapphire系统上的激光加速器设备,并改善了所提供的电子束的光谱,直径,剂量率和剂量均一性。此外,建立了定制设计的射线和剂量监测系统,该系统能够实时监测辐照实验并精确确定传递给细胞的剂量。此外,在整个三个月的实验过程中,获得了稳定且可重现的光束特性。 获得了四个细胞系和两个终点的剂量效应曲线,相对于连续200 kV X射线参考辐照,通常显示出短脉冲激光加速电子的生物学效应较低。将讨论可能的原因。

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