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Influence of movement on FP-CIT SPECT quantification: a Monte Carlo based simulation.

机译:运动对FP-CIT SPECT定量的影响:基于蒙特卡洛的模拟。

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AIM: Head motion during acquisition is a frequently observed phenomenon while imaging the brain with SPECT. The aim of this study was to obtain detailed insight into the effects of head motion on the specific striatal binding of I-FP-CIT based on Monte Carlo simulations. MATERIALS AND METHODS: Based on the Monte Carlo code and the digital Zubal phantom, different movement profiles (angular movement in the transaxial and sagittal plane ranging from -10 to +10 degrees) were systematically simulated for normal striatal binding and neurodegeneration. A triple-headed SPECT camera equipped with low-energy, high-resolution, parallel-hole collimators was modelled for this purpose. The projection data were reconstructed iteratively and the images were then evaluated using fully automated quantification software based on morphology guided volumes of interest. In addition, data were evaluated with a method taking into account partial volume effects. RESULTS: Simulated movement resulted in blurring and streaking of the striatal structures with a concomitant change in measured specific striatal binding in most simulated profiles ranging from -44% to +2% (for the morphology guided volume of interest analyses) and -23% to +28% (for the method intended to overcome partial volume effects). In contrast to angular movement in the sagittal plane, rotation in the transaxial plane caused left/right asymmetry up to 41%. In the simulation of neurodegeneration, almost all movement profiles lead to an increase of putamen-to-caudate ratios. CONCLUSIONS: Motion during the acquisition of a SPECT scan can have an important impact on measured dopamine transporter binding with its extent varying in dependency on the method of analysis used. While this is of prime importance in a research setting, it can also have implications in clinical routine imaging.
机译:目的:采集期间的头部运动是使用SPECT对大脑成像时经常观察到的现象。这项研究的目的是基于蒙特卡罗模拟,深入了解头部运动对I-FP-CIT特定纹状体结合的影响。材料与方法:基于蒙特卡洛代码和数字Zubal体模,系统地模拟了正常纹状体结合和神经变性的不同运动曲线(跨轴和矢状面的角运动范围为-10至+10度)。为此,对配备了低能耗,高分辨率,平行孔准直仪的三头SPECT相机进行了建模。迭代地重建投影数据,然后使用全自动量化软件根据基于形态学指导的目标体积评估图像。另外,使用考虑部分体积效应的方法评估数据。结果:在大多数模拟剖面中,模拟运动导致纹状体结构模糊和条纹化,同时测量的特定纹状体结合度也随之变化,范围从-44%到+ 2%(对于形态学指导的感兴趣的分析),从-23%到+ 28%(用于克服部分体积效应的方法)。与弧矢平面中的角运动相反,跨轴平面中的旋转导致左/右不对称性高达41%。在神经退行性变的模拟中,几乎所有的运动曲线都会导致壳状蛋白-尾状体比例的增加。结论:在获取SPECT扫描过程中的运动会对所测量的多巴胺转运蛋白结合产生重要影响,其程度取决于所用分析方法的不同。尽管这在研究环境中至关重要,但也可能对临床常规成像产生影响。

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