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Establishment of an Analysis Tool for Preclinical Evaluation of PET Radiotracers for In-Vivo Imaging in Neurological Diseases

机译:神经系统疾病活体显像PET放射性示踪剂临床前评价分析工具的建立

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Aim: Analysis of in vivo acquired data remains a challenging issue in preclinical studies using positron emission tomography (PET). The aim of this study is the implementation of a tool which should allow a semi-automated analysis of PET data independently from the administrated radiotracer and the imaging modality for preclinical investigations. By registering anatomical data sets, it additionally shall offer a more detailed data analysis allowing a statistical analysis also for smaller sub-regions. Materials and methods: Data used for primarily implementation of the tool were acquired on a Siemens uPET scanner (Inveon~R) and were based on the investigation of the glucose metabolism in a subarachnoid hemorrhage (SAH) model in Sprague Dawley rats in vivo using FDG-PET. We used the software programs Matlab (version 2016a) and Fiji for data analysis and visualization. In addition, statistical tests were performed in order to determine regions with trending/significant differences in the SUV of sham and SAH animals. Results: Following data import, data were separated into predefined time periods and artefacts were eliminated. Afterwards, a volume of interest (VOI) was defined by the threshold of the Standardized-Uptake-Value (SUV). Before masking each data set with its segmented VOI, all data sets were intensity-normalized, eliminating the full body intensity differences caused by the different amount of injected activity. After masking, data sets of the sham operated animals were registered on the best orientated sham data set, reduced on the VOI and shifted into the center of the 3D space. By averaging aligned data sets based on all data sets from seven sham rats, we generated a FDG-template of a Sprague-Dawley rat brain. This PET data template was the basis for the evaluation of registered data sets. Afterwards, an anatomical MR-based atlas of the brain of Sprague-Dawley rat was co-registered on the template for a better sub-classification of the acquired data. Conclusion: These preliminary data show that the described method represents a very promising tool for data analysis in the preclinical evaluations of PET radiotracers for neurological applications.
机译:目的:在使用正电子发射断层扫描(PET)的临床前研究中,体内采集数据的分析仍然是一个具有挑战性的问题。本研究的目的是实现一种工具,该工具应允许对PET数据进行半自动分析,独立于临床前研究中使用的放射性示踪剂和成像模式。通过注册解剖数据集,它还应提供更详细的数据分析,以便对较小的子区域进行统计分析。材料和方法:主要用于实施该工具的数据是在西门子uPET扫描仪(Inveon~R)上获得的,并基于使用FDG-PET在体内对Sprague-Dawley大鼠蛛网膜下腔出血(SAH)模型中的糖代谢进行的研究。我们使用软件程序Matlab(版本2016a)和斐济进行数据分析和可视化。此外,还进行了统计测试,以确定假手术和SAH动物SUV的趋势/显著差异区域。结果:数据导入后,数据被分割成预定义的时间段,人工制品被消除。然后,通过标准化摄取值(SUV)的阈值定义感兴趣量(VOI)。在用分段VOI掩盖每个数据集之前,所有数据集都进行了强度标准化,消除了因注射活动量不同而导致的全身强度差异。掩蔽后,假手术动物的数据集记录在最佳定向的假数据集上,在VOI上减少,并转移到3D空间的中心。通过基于七只假大鼠的所有数据集平均对齐的数据集,我们生成了Sprague-Dawley大鼠大脑的FDG模板。该PET数据模板是评估注册数据集的基础。之后,在模板上共同注册了Sprague-Dawley大鼠基于解剖MR的大脑图谱,以便更好地对采集的数据进行子分类。结论:这些初步数据表明,所描述的方法代表了一个非常有希望的数据分析工具,用于神经应用PET放射性示踪剂的临床前评估。

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