Quantitation Of The Human Basal Ganglia with Positron Emission Tomography

B. Bendriem, S. Dewey, D. Schlyer, A. Wolf, N. Volkow
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引用次数: 2

Abstract

The accurate measurement of the concentration of a radioisotope in small structures with PET requires a correction for quantitation loss due to the partial volume effect and the effect of scattered radiation. To evaluate errors associated with measures in the human basal ganglia (BG) we have built a unilateral model of the BG that we have inserted in a 20 cm cylinder. The recovery coefficient (RC = measured activity/true activity) for our BG phantom has been measured on a CTI tomograph (model 931-08/12) with different background concentrations (contrast) and at different axial locations in the gantry. The BG was visualized on 4 or 5 slices depending on its position in the gantry and on the contrast used. The RC was 0.75 with no background (contrast equal to 1.0). Increasing the relative radioactivity concentration in the background increased the RC from 0.75 to 2.00 when the contrast was {minus}0.7 (BG < Background). The RC was also affected by the size and the shape of the region of interest (ROI) used (RC from 0.75 to 0.67 with ROI size from 0.12 to 1.41 cm{sup 2}). These results show that accurate RC correction depends not only on the volume of the structure but also on its contrast with its surroundings as well as on the selection of the ROI. They also demonstrate that the higher the contrast the more sensitive to axial positioning PET measurements in the BG are. These data provide us with some information about the variability of PET measurements in small structure like the BG and we have proposed some strategies to improve the reproducibility. 18 refs., 3 figs., 5 tabs.
用正电子发射断层扫描定量研究人类基底神经节
用PET精确测量小结构中放射性同位素的浓度需要对部分体积效应和散射辐射效应造成的定量损失进行校正。为了评估与人类基底神经节(BG)测量相关的误差,我们建立了一个单侧BG模型,我们将其插入一个20厘米的圆柱体中。我们的BG幻影的恢复系数(RC =测量活性/真实活性)已经在CTI断层扫描仪(型号931-08/12)上测量,具有不同的背景浓度(对比度)和在龙门架的不同轴向位置。根据BG在支架中的位置和使用的对比剂,在4或5片上显示BG。无背景时RC为0.75(对比度为1.0)。当对比度为{-}0.7 (BG < background)时,增加背景相对放射性浓度使RC从0.75增加到2.00。RC还受到所使用的感兴趣区域(ROI)的大小和形状的影响(RC从0.75到0.67,ROI大小从0.12到1.41 cm{sup 2})。这些结果表明,精确的RC校正不仅取决于结构的体积,还取决于其与周围环境的对比以及ROI的选择。他们还证明,对比度越高,对BG中轴向定位PET测量越敏感。这些数据为我们提供了一些关于PET测量在BG等小结构中的可变性的信息,我们提出了一些提高再现性的策略。18参。, 3个无花果。, 5页。
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