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A study of non-invasive Patlak quantification for whole-body dynamic FDG-PET studies of mice

机译:对小鼠全体动态FDG-PET研究的非侵入性Patlak定量研究

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摘要

Physiological changes in dynamic PET images can be quantitatively estimated by kinetic modeling technique. The process of PET quantification usually requires an input function in the form of a plasma-time activity curve (PTAC), which is generally obtained by invasive arterial blood sampling. However, invasive arterial blood sampling poses many challenges especially for small animal studies, due to the subjects’ limited blood volume and small blood vessels. A simple non-invasive quantification method based on Patlak graphical analysis (PGA) has been recently proposed to use a reference region to derive the relative influx rate for a target region without invasive blood sampling, and evaluated by using the simulation data of human brain FDG-PET studies. In this study, the non-invasive Patlak (nPGA) method was extended to whole-body dynamic small animal FDG-PET studies. The performance of nPGA was systematically investigated by using experimental mouse studies and computer simulations. The mouse studies showed high linearity of relative influx rates between the nPGA and PGA for most pairs of reference and target regions, when an appropriate underlying kinetic model was used. The simulation results demonstrated that the accuracy of the nPGA method was comparable to that of the PGA method, with a higher reliability for most pairs of reference and target regions. The results proved that the nPGA method could provide a non-invasive and indirect way for quantifying the FDG kinetics of tumor in small animal studies.
机译:动态PET图像中的生理变化可以通过动力学建模技术来定量估计。 PET定量过程通常需要以血浆时间活性曲线(PTAC)形式输入的功能,通常通过侵入性动脉血液采样获得。但是,由于受检者的血液量有限且血管狭窄,特别是对小动物研究而言,侵入性动脉血液采样带来了许多挑战。最近,提出了一种基于Patlak图形分析(PGA)的简单无创定量方法,该方法使用参考区域来导出目标区域的相对流入率,而无需进行有创血液采样,并通过使用人脑FDG的模拟数据进行评估-PET研究。在这项研究中,无创Patlak(nPGA)方法扩展到了全身动态小动物FDG-PET研究。通过使用实验性小鼠研究和计算机模拟系统地研究了nPGA的性能。小鼠研究表明,当使用适当的潜在动力学模型时,大多数参考区域和目标区域对的nPGA和PGA之间的相对流入速率具有高度线性关系。仿真结果表明,nPGA方法的准确性与PGA方法相当,对大多数参考区域和目标区域对都具有更高的可靠性。结果证明,nPGA方法可以为小动物研究中肿瘤的FDG动力学定量提供一种非侵入性和间接的方法。

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