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A Respiratory Gating System for PET Imaging of Lung Cancer

机译:肺癌宠物成像呼吸门控系统

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The accurate characterization of lesions in FDG-PET imaging of lung cancer in terms of their size, shape, location and quantitation, can be significantly affected by motion of the lungs during respiration. The objective of this research was to develop a system to acquire and process the patient's breathing signal and use it to "gate" the acquisition of FDG-PET images in order to reduce the effects of respiratory motion. Methods: A high-resolution CCD laser system that senses the displacement of the chest or abdomen during the patient's breathing cycle was employed. The displacement information was appropriately processed to reconstruct the respiratory signal, which in turn was used to trigger the gated acquisition of FDG-PET images in a synchronized fashion from inspiration to expiration. The system was attached to a custom designed mechanical assembly with robotic movements and was tested on a Philips C-PET and a Philips Gemini PET/CT scanner. A motorized oscillating phantom and a ventilator supplied lung simulator were developed for testing and validating the system with positron emitting sources simulating lung lesions at variable speeds of breathing and motion displacement. Results: There was a significant reduction in the effects of respiratory motion with the proposed respiratory gating system. Improved accuracy was noted in determining the spatial location, obtaining the size, and recovering the actual counts of simulated lung lesions with gated vs. non-gated phantom experiments. The reliable operation of the respiratory gating system was also validated in 3 patient studies. Conclusions: A system was developed that enables respiratory-gated acquisition in FDG-PET imaging in order to reduce the effects of respiratory motion, which can affect lung lesions. Phantom experiments and limited clinical applications demonstrated the reliable performance of the system and improved accuracy in the characterization of lung lesions.
机译:在呼吸期间,肺癌的肺癌FDG-PET成像病变的精确表征在肺癌的尺寸,形状,位置和定量方面,可以显着影响呼吸过程中肺的运动。本研究的目的是开发一个系统来获取和处理患者的呼吸信号,并使用它来“门”采集FDG-PET图像,以减少呼吸运动的影响。方法:采用高分辨率CCD激光系统,其在患者呼吸周期中感测胸部或腹部的位移。适当地处理位移信息以重建呼吸信号,其又用于以同步方式触发对FDG-PET图像的门控采集从灵感到到期。该系统连接到具有机器人运动的定制设计的机械组件,并在飞利浦C-PET和飞利浦Gemini Pet / CT扫描仪上进行了测试。开发了一种电动的振荡幻像和呼吸机供应的肺模拟器,用于测试和验证具有正电子发射源模拟肺部病变的系统,以呼吸的可变速度和运动位移。结果:呼吸运动与提出的呼吸门控系统的影响显着降低。在确定空间位置,获得尺寸和恢复具有门控的非门控Phantom实验的模拟肺病变的实际计数时,注意到提高了精度。在3例患者研究中还验证了呼吸门控系统的可靠操作。结论:开发了一种系统,可以在FDG-PET成像中进行呼吸门控液,以降低呼吸运动的影响,这会影响肺病变。幻影实验和有限的临床应用表明了系统的可靠性和肺病灶表征的提高准确性。

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