Linear energy transfer dependent variation in viability and proliferation along the Bragg peak curve in sarcoma and normal tissue cells.

IF 3.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Teresa Bernardo, Lena Heuchel, Feline Heinzelmann, Johannes Esser, Lutz Lüdemann, Beate Timmermann, Armin Lühr, Cläre von Neubeck
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Abstract

Objective.The energy deposition of photons and protons differs. It depends on the position in the proton Bragg peak (BP) and the linear energy transfer (LET) leading to a variable relative biological effectiveness (RBE). Here, we investigate LET dependent alterations on metabolic viability and proliferation of sarcoma and endothelium cell lines following proton irradiation in comparison to photon exposure.Approach.Using a multi-step range shifter, each column of a 96-well plate was positioned in a different depth along four BP curves with increasing intensities. The high-throughput experimental setup covers dose, LET, and RBE changes seen in a treatment field. Photon irradiation was performed to calculate the RBE along the BP curve. Two biological information out of one experiment were extracted allowing a correlation between metabolic viability and proliferation of the cells.Main results.The metabolic viability and cellular proliferation were column-wise altered showing a depth-dose profile. Endothelium cell viability recovers within 96 h post BP irradiation while sarcoma cell viability remains reduced. Highest RBE values were observed at the BP distal fall-off regarding proliferation of the sarcoma and endothelial cells.Significance.The high-throughput experimental setup introduced here (I) covers dose, LET, and RBE changes seen in a treatment field, (II) measures short-term effects within 48 h to 96 h post irradiation, and (III) can additionally be transferred to various cell types without time consuming experimental adaptations. Traditionally, RBE values are calculated from clonogenic cell survival. Measured RBE profiles strongly depend on physical characteristics such as dose and LET and biological characteristics for example cell type and time point. Metabolic viability and proliferation proofed to be in a similar effect range compared to clonogenic survival results. Based on limited data of combined irradiation with doxorubicin, future experiments will test combined treatment with systemic therapies applied in clinics e.g. cyclin-dependent inhibitors.

肉瘤和正常组织细胞的活力和增殖沿布拉格峰曲线的线性能量转移变化。
目的:光子和质子的能量沉积各不相同。它取决于质子布拉格峰(BP)的位置和线性能量传递(LET),从而导致不同的相对生物效应(RBE)。在此,我们研究了质子辐照与光子辐照相比,对肉瘤和内皮细胞系的代谢活力和增殖所产生的 LET 依赖性变化:使用多级范围转换器(MSRS),将 96 孔板中的每一列沿强度递增的四条 BP 曲线放置在不同深度。高通量实验装置涵盖了治疗场中的剂量、LET 和 RBE 变化。通过光子辐照计算 BP 曲线上的 RBE。从一次实验中提取了两个生物信息,从而将细胞的代谢活力和增殖联系起来:代谢活力和细胞增殖呈柱状变化,显示出深度-剂量曲线。内皮细胞的活力在 BP 照射后 96 小时内恢复,而肉瘤细胞的活力仍然下降。在肉瘤和内皮细胞增殖的 BP 远端落差处观察到了最高的 RBE 值:这里介绍的高通量实验装置 I) 涵盖了治疗场中的剂量、LET 和 RBE 变化;II) 可测量辐照后 48 至 96 小时内的短期效应;III) 还可用于各种细胞类型,而无需耗时的实验调整。传统上,RBE 值是通过克隆细胞存活率计算得出的。测得的 RBE 曲线在很大程度上取决于物理特性(如剂量和 LET)和生物特性(如细胞类型和时间点)。事实证明,代谢活力和增殖与克隆存活结果的影响范围相似。基于联合辐照与多柔比星的有限数据,未来的实验将测试与临床应用的系统疗法(如细胞周期蛋白依赖性抑制剂)联合治疗的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physics in medicine and biology
Physics in medicine and biology 医学-工程:生物医学
CiteScore
6.50
自引率
14.30%
发文量
409
审稿时长
2 months
期刊介绍: The development and application of theoretical, computational and experimental physics to medicine, physiology and biology. Topics covered are: therapy physics (including ionizing and non-ionizing radiation); biomedical imaging (e.g. x-ray, magnetic resonance, ultrasound, optical and nuclear imaging); image-guided interventions; image reconstruction and analysis (including kinetic modelling); artificial intelligence in biomedical physics and analysis; nanoparticles in imaging and therapy; radiobiology; radiation protection and patient dose monitoring; radiation dosimetry
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