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使用配备SMARTZOOM准直器的西门子IQ-SPECT进行锝-99m/碘-123双放射性核素心肌灌注/神经支配同步成像。

Simultaneous Tc-99m/I-123 dual-radionuclide myocardial perfusion/innervation imaging using Siemens IQ-SPECT with SMARTZOOM collimator.

作者信息

Du Yong, Bhattacharya Manojeet, Frey Eric C

机构信息

Department of Radiology, Johns Hopkins University, 601 N Caroline Street, JOHC 4263, Baltimore, MD 21287, USA.

出版信息

Phys Med Biol. 2014 Jun 7;59(11):2813-28. doi: 10.1088/0031-9155/59/11/2813. Epub 2014 May 13.

Abstract

Simultaneous dual-radionuclide myocardial perfusion/innervation SPECT imaging can provide important information about the mismatch between scar tissue and denervated regions. The Siemens IQ-SPECT system developed for cardiac imaging uses a multifocal SMARTZOOM collimator to achieve a four-fold sensitivity for the cardiac region, compared to a typical parallel-hole low-energy high-resolution collimator, but without the data truncation that can result with conventional converging-beam collimators. The increased sensitivity allows shorter image acquisition times or reduced patient dose, making IQ-SPECT ideal for simultaneous dual-radionuclide SPECT, where reduced administrated activity is desirable in order to reduce patient radiation exposure. However, crosstalk is a major factor affecting the image quality in dual-radionuclide imaging. In this work we developed a model-based method that can estimate and compensate for the crosstalk in IQ-SPECT data. The crosstalk model takes into account interactions in the object and collimator-detector system. Scatter in the object was modeled using the effective source scatter estimation technique (ESSE), previously developed to model scatter with parallel-hole collimators. The geometric collimator-detector response was analytically modeled in the IQ-SPECT projector. The estimated crosstalk was then compensated for in an iterative reconstruction process. The new method was validated with data from both Monte Carlo simulations and physical phantom experiments. The results showed that the estimated crosstalk was in good agreement with simulated and measured results. After model-based compensation the images from simultaneous dual-radionuclide acquisitions were similar in quality to those from single-radionuclide acquisitions that did not have crosstalk contamination. The proposed model-based method can be used to improve simultaneous dual-radionuclide images acquired using IQ-SPECT. This work also demonstrates that ESSE scatter modeling can be applied to non-parallel-beam projection geometries.

摘要

同步双放射性核素心肌灌注/神经分布单光子发射计算机断层显像(SPECT)可提供有关瘢痕组织与去神经区域之间不匹配的重要信息。为心脏成像开发的西门子IQ-SPECT系统使用多焦点SMARTZOOM准直器,与典型的平行孔低能高分辨率准直器相比,可使心脏区域的灵敏度提高四倍,但不会出现传统会聚束准直器可能导致的数据截断。灵敏度的提高允许缩短图像采集时间或降低患者剂量,这使得IQ-SPECT非常适合同步双放射性核素SPECT,在这种情况下,为了减少患者辐射暴露,需要降低给药活性。然而,串扰是影响双放射性核素成像图像质量的一个主要因素。在这项工作中,我们开发了一种基于模型的方法,可以估计并补偿IQ-SPECT数据中的串扰。串扰模型考虑了物体与准直器-探测器系统中的相互作用。使用有效源散射估计技术(ESSE)对物体中的散射进行建模,该技术先前已开发用于对平行孔准直器的散射进行建模。在IQ-SPECT投影仪中对几何准直器-探测器响应进行了解析建模。然后在迭代重建过程中对估计的串扰进行补偿。新方法通过蒙特卡罗模拟和物理体模实验的数据进行了验证。结果表明,估计的串扰与模拟和测量结果高度一致。基于模型的补偿后,同步双放射性核素采集的图像质量与没有串扰污染的单放射性核素采集的图像相似。所提出的基于模型的方法可用于改善使用IQ-SPECT采集的同步双放射性核素图像。这项工作还表明,ESSE散射建模可应用于非平行束投影几何结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c46c/4142679/15ea36bf220a/nihms612013f1.jpg

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