Department of Oncology, Medical Physics Unit, McGill University, Montreal, Quebec, Canada.
Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada.
Med Phys. 2024 Nov;51(11):8454-8465. doi: 10.1002/mp.17369. Epub 2024 Sep 20.
Radiolabeling is critical in complex chemical reactions involving positron emission tomography (PET) radiotracer production. The process is now automated within a synthesis module to enhance efficiency and reduce radiation exposure. The key to this automation is the use of radiation detectors to monitor radioactivity transfer and ensure the progression of reactions. However, the high cost of these detectors has motivated the need for a more affordable alternative.
This study aimed to develop a compact and cost-efficient detector using scintillating fibers and silicon photomultipliers (SiPMs) to track radioactivity throughout PET radiotracer production.
Monte Carlo simulations were performed with the Geant4-based M-TAG software for four detector geometries (single fiber, single fiber with bolus, 16-fiber bundle, and spiral) to optimize the detector construction for better detection efficiency. The simulations scored the energy deposited into the scintillating fibers per simulated particle, which was used to estimate the expected voltage pulse height from the SiPM considering the total light collection efficiency. Based on the simulation results, two detector configurations (16-fiber bundle and spiral fiber) were constructed using plastic scintillating fibers, optical fibers, a 6 mm 6 mm SiPM, and commonly available electronic components. The detectors were calibrated using a Fluorine-18 ( ) source with typical activity levels used in radiotracer production. Detector performances were subsequently evaluated through linearity tests and measurement uncertainty assessments. Errors up to were considered acceptable for troubleshooting purposes.
The calibration curves showed a linear response with changing activity for both detectors. The calibrated detectors offered real-time activity measurements ranging from 0.10 to 49.41 GBq, with a 3-s refresh rate. In the activity range above 0.145 GBq, the uncertainties were less than for both the 16-fiber and spiral configurations. The spiral detector recorded a signal with a half-life of min, closely aligning with the reference half-life of .
Cost-efficient plastic scintillation fiber detectors were developed to facilitate the troubleshooting of automated synthesis of PET radiotracers.
放射性标记在涉及正电子发射断层扫描(PET)放射性示踪剂生产的复杂化学反应中至关重要。该过程现在已在合成模块中自动化,以提高效率并降低辐射暴露。这种自动化的关键是使用辐射探测器来监测放射性转移并确保反应的进行。然而,这些探测器的高成本促使人们需要一种更经济实惠的替代品。
本研究旨在开发一种使用闪烁光纤和硅光电倍增管(SiPM)的紧凑且经济高效的探测器,以跟踪 PET 放射性示踪剂生产过程中的放射性。
使用基于 Geant4 的 M-TAG 软件对四种探测器几何形状(单根光纤、带栓塞的单根光纤、16 根光纤束和螺旋形)进行了蒙特卡罗模拟,以优化探测器结构以提高检测效率。模拟对每个模拟粒子沉积在闪烁光纤中的能量进行评分,然后考虑总光收集效率,从 SiPM 估算预期的电压脉冲高度。基于模拟结果,使用塑料闪烁光纤、光纤、6 毫米 x 6 毫米 SiPM 和常用的电子元件构建了两种探测器配置(16 根光纤束和螺旋光纤)。使用典型放射性示踪剂生产中使用的氟-18( )源对探测器进行校准。随后通过线性度测试和测量不确定度评估来评估探测器性能。在故障排除目的下,认为误差高达 是可以接受的。
校准曲线显示两种探测器的活性变化呈线性响应。校准后的探测器提供了从 0.10 到 49.41GBq 的实时活性测量,刷新速率为 3 秒。在活性范围高于 0.145GBq 时,两种配置(16 根光纤和螺旋形)的不确定度均小于 。螺旋探测器记录的半衰期信号为 min,与参考半衰期 非常吻合。
开发了经济高效的塑料闪烁光纤探测器,以促进 PET 放射性示踪剂自动化合成的故障排除。