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一种用于评估小动物 PET 散射分数和计数率性能的锥形 phantom。

A cone-shaped phantom for assessment of small animal PET scatter fraction and count rate performance.

机构信息

Division of Nuclear Medicine and Molecular Imaging, Geneva University Hospital, 1211, Geneva, Switzerland.

出版信息

Mol Imaging Biol. 2012 Oct;14(5):561-71. doi: 10.1007/s11307-012-0546-2.

Abstract

PURPOSE

Positron emission tomography (PET) image quality deteriorates as the object size increases owing to increased detection of scattered and random events. The characterization of the scatter component in small animal PET imaging has received little attention owing to the small scatter fraction (SF) when imaging rodents. The purpose of this study is first to design and fabricate a cone-shaped phantom which can be used for measurement of object size-dependent SF and noise equivalent count rates (NECR), and second, to assess these parameters for two small animal PET scanners as function of radial offset, object size and lower energy threshold (LET).

METHODS

The X-PET™ and LabPET-8™ scanners were modeled as realistically as possible using GATE Monte Carlo simulation platform. The simulation models were validated against experimental measurements in terms of sensitivity, SF and NECR. The dedicated phantom was fabricated in-house using high-density polyethylene. The optimized dimensions of the cone-shaped phantom are 158 mm (length), 20 mm (minimum diameter), 70 mm (maximum diameter) and taper angle of 9°.

RESULTS

The relative difference between simulated and experimental results for the LabPET-8™ scanner varied between 0.7% and 10% except for a few results where it was below 16%. Depending on the radial offset from the center of the central axial field-of-view (3-6 cm diameter), the SF for the cone-shaped phantom varied from 26.3% to 18.2%, 18.6 to 13.1% and 10.1 to 7.6% for the X-PET™, whereas it varied from 34.4% to 26.9%, 19.1 to 17.0% and 9.1 to 7.3% for the LabPET-8™, for LETs of 250, 350 and 425 keV, respectively. The SF increases as the radial offset decreases, LET decreases and object size increases. The SF is higher for the LabPET-8™ compared with the X-PET™ scanner. The NECR increases as the radial offset increases and object size decreases. The maximum NECR was obtained at a LET of 350 keV for the LabPET-8™ and 250 keV for the X-PET™. High correlation coefficients for SF and NECR were observed between the cone-shaped phantom and an equivalent volume cylindrical phantom for the three considered axial fields of view.

CONCLUSIONS

A single cone-shaped phantom enables the assessment of the impact of three factors, namely radial offset, LET and object size on PET SF and count rate estimates. This phantom is more realistic owing to the non-uniform shape of rodents' bodies compared to cylindrical uniform phantoms and seems to be well suited for evaluation of object size-dependent SF and NECR.

摘要

目的

由于探测散射和随机事件的增加,正电子发射断层扫描(PET)图像质量会随着物体尺寸的增加而恶化。由于在对啮齿动物成像时散射分数(SF)较小,因此小动物 PET 成像中的散射分量特征尚未得到充分研究。本研究的目的首先是设计和制造一种锥形体模,用于测量物体尺寸依赖性 SF 和噪声等效计数率(NECR),其次是评估这两个小动物 PET 扫描仪的这些参数,作为径向偏移、物体尺寸和低能阈值(LET)的函数。

方法

使用 GATE 蒙特卡罗模拟平台尽可能真实地对 X-PET™ 和 LabPET-8™ 扫描仪进行建模。模拟模型通过灵敏度、SF 和 NECR 的实验测量进行了验证。专用的锥形体模是在内部使用高密度聚乙烯制造的。锥形体模的优化尺寸为 158mm(长度)、20mm(最小直径)、70mm(最大直径)和 9°的锥角。

结果

LabPET-8™ 扫描仪的模拟结果与实验结果的相对差异在 0.7%到 10%之间,除了少数结果低于 16%。取决于从中轴视场(3-6cm 直径)中心的径向偏移,锥形体模的 SF 对于 X-PET™,对于 LET 为 250keV、350keV 和 425keV,分别从 26.3%变化到 18.2%、18.6 变化到 13.1%和 10.1 变化到 7.6%;对于 LabPET-8™,对于 LET 为 250keV、350keV 和 425keV,分别从 34.4%变化到 26.9%、19.1 变化到 17.0%和 9.1 变化到 7.3%。SF 随着径向偏移的减小、LET 的降低和物体尺寸的增加而增加。LabPET-8™ 的 SF 高于 X-PET™ 扫描仪。随着径向偏移的增加和物体尺寸的减小,NECR 增加。对于 LabPET-8™,最大 NECR 是在 LET 为 350keV 时获得的,对于 X-PET™,最大 NECR 是在 LET 为 250keV 时获得的。对于三个考虑的轴向视场,在锥形体模和等效体积圆柱形体模之间观察到 SF 和 NECR 的高相关系数。

结论

单个锥形体模能够评估三个因素,即径向偏移、LET 和物体尺寸对 PET SF 和计数率估计的影响。与圆柱形均匀体模相比,这种体模由于啮齿动物身体的非均匀形状而更加逼真,似乎非常适合评估物体尺寸依赖性 SF 和 NECR。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa9c/3443338/a35f443b36e2/11307_2012_546_Fig1_HTML.jpg

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