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Simulation study of real-time tumor tracking by OpenPET using the 4D XCAT phantom with a realistic ~(18)F-FDG distribution

机译:用4D XCAT幻像利用逼真〜(18)F-FDG分布仿真研究Openpe的实时肿瘤跟踪

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We are developing the OpenPET which can provide an open space observable and accessible to the patient during PET measurements. In addition, we have proposed the real-time imaging system for the OpenPET which is expected to be used in PET-guided tumor tracking radiation therapy and demonstrated its tracking ability using a point source and a small OpenPET prototype. However, tumor tracking in the human body still remains as a challenging task when we use ~(18)F-FDG which is the best available tracer for tumors because of its background activity, scatter and attenuation in the body. In this study, we assess conditions under which tumor tracking is feasible in the human body by using the 4D XCAT phantom which is a realistic 4D human whole body phantom. To simulate realistic ~(18)F-FDG distributions, we assigned standardized uptake values (SUVs) to normal organs based on the literature. We conducted Monte Carlo simulation of a human-sized OpenPET geometry by using Geant4 Application for Tomographic Emission (GATE) ver. 6.1 assuming a measurement at 100 minutes after the ~(18)F-FDG injection of 370 MBq and a spherical tumor with the diameter of 10 to 30 mm and SUV of 3 to 10. List-mode data were generated for each 0.5 s time frame of a respiratory cycle of 5 s. Image reconstruction was done in a frame-by-frame manner and tumor position was automatically extracted for each time frame by a pattern matching technique. Tumor movement in the 4D XCAT phantom was about 17 mm at the maximum. The mean error of the tumor positions extracted from the reconstructed images was similar to the PET image resolution when the tumor size was 20 mm or more and SUV was 5 or more. We showed that tumor tracking by the OpenPET is feasible even in the human body scale and for realistic conditions.
机译:我们正在开发开孔,在宠物测量期间可以提供可观察到的开放空间和可供患者访问。此外,我们提出了用于开孔的实时成像系统,该系统预计将用于宠物引导的肿瘤跟踪放射治疗,并使用点源和小型开孔原型来证明其跟踪能力。然而,当我们使用〜(18)F-FDG时,人体中的肿瘤跟踪仍然是一个具有挑战性的任务,因为它是肿瘤的最佳可用示踪剂,因为它在体内的背景活动,散射和衰减。在本研究中,我们通过使用4D XCAT幻像在人体中评估肿瘤跟踪在人体中可行的条件,这是一个现实的4D人体全身幻影。为了模拟现实〜(18)F-FDG分布,我们将标准化的摄取值(SUV)分配给基于文献的正常器官。我们通过使用GEANT4应用程序进行断层发射(门)VER来进行Monte Carlo模拟人类化的Openpet几何。 6.1假设在〜(18)F-FDG后100分钟的测量,注射370 MBQ和直径为10至30毫米的球形肿瘤,SUV为3至10。列表模式数据是为每个0.5秒的时间产生的呼吸周期的框架5秒。图像重建以逐帧方式完成,并且通过模式匹配技术自动提取肿瘤位置。在4D Xcat幻像中的肿瘤运动在最大值约为17毫米。当肿瘤尺寸为20mm或更高时,从重建的图像中提取的肿瘤位置的平均误差类似于PET图像分辨率,并且SUV为5或更多。我们表明,即使在人体规模和现实条件下,开普特的肿瘤跟踪也是可行的。

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