RatCAP的初步表现,这是一种用于老鼠大脑成像的PET相机

P. Vaska, C. Woody, D. Schlyer, V. Radeka, P. O'connor, J. Pratte, S. Shokouhi, S. Stoll, S. Junnarkar, M. Purschke, S. Park, S. Southekal, V. Dzhordzhadze, W. Schiffer, J. Neill, M. Murphy, T. Aubele, R. Kristiansen, A. Villanueva, S. Boose, A. Kandasamy, B. Yu, A. Kriplani, S. Krishnamoorthy, R. Lecomte, R. Fontaine
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引用次数: 14

摘要

RatCAP(大鼠意识动物PET)扫描仪的第一个全功能原型已经构建并进行了初步评估。RatCAP是一种微型高性能PET扫描仪,专为直接安装在大鼠头部的大脑成像而设计。目标是消除麻醉的需要,因为麻醉会混淆定量脑研究,并防止神经化学和行为的同时相关性。RatCAP是一种全3D层析成形仪,轴向视野38(18)mm,外径72 mm,重量<200 g,由一根小系绳支撑。总共384个LSO晶体被划分在12个独立的检测器模块中,每个模块包含一个雪崩光电二极管(APD)光敏传感器阵列和一个定制的ASIC,用于高度集成的前端处理。设计并实现了一个基于fpga的定制时间戳模块,初步实现了13.9 ns FWHM的系统分辨率。视场中心有一个点源时,空间分辨率为2.1 mm FWHM,能量分辨率平均为23% FWHM,灵敏度为0.7%,平均阈值为150 keV。新的离线数据处理算法已经开发出来,包括时间和能量校准的方法,物理效应的校正,以及高度精确的迭代图像重建。获得了最初的幻影和大鼠脑图像
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Initial performance of the RatCAP, a PET camera for conscious rat brain imaging
The first fully functional prototype of the RatCAP (Rat conscious animal PET) scanner has been constructed and preliminary evaluations have been performed. RatCAP is a miniature, high performance PET scanner designed specifically to image the brain of a rat while directly attached to its head. The goal is to eliminate the need for anesthesia which can confound quantitative brain studies and prevent simultaneous correlations of neurochemistry and behavior. RatCAP is a fully 3D tomograph with a transaxial (axial) field-of-view of 38(18) mm, outside diameter 72 mm, and weight <200 g which is supported by a small tether. A total of 384 LSO crystals are divided among 12 independent detector blocks, each of which contains an avalanche photodiode (APD) photosensor array and a custom-designed ASIC for highly integrated front-end processing. A custom FPGA-based time-stamp module has been designed and implemented, achieving a preliminary system resolution of 13.9 ns FWHM. With a point source in the FOV center, spatial resolution is 2.1 mm FWHM, energy resolution averages 23% FWHM, and sensitivity is 0.7% at an average threshold of 150 keV. Novel offline data processing algorithms have been developed including methods for time and energy calibrations, corrections for physical effects, and a highly accurate iterative image reconstruction. Initial phantom and rat brain images have been obtained
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