Mann Teresa, Kurth Jens, Möller Anne, Förster Joanna, Vollmar Brigitte, Krause Bernd J, Wree Andreas, Stenzel Jan, Lindner Tobias
Institute of Anatomy, Rostock University Medical Center;
Department of Nuclear Medicine, Rostock University Medical Center.
J Vis Exp. 2019 Aug 8(150). doi: 10.3791/59701.
For quantitative analysis and bio-kinetic modeling of positron emission tomography/computed tomography (PET/CT) data, the determination of the temporal blood time-activity concentration also known as arterial input function (AIF) is a key point, especially for the characterization of animal disease models and the introduction of newly developed radiotracers. The knowledge of radiotracer availability in the blood helps to interpret PET/CT-derived data of tissue activity. For this purpose, online blood sampling during the PET/CT imaging is advisable to measure the AIF. In contrast to manual blood sampling and image-derived approaches, continuous online blood sampling has several advantages. Besides the minimized blood loss, there is an improved resolution and a superior accuracy for the blood activity measurement. However, the major drawback of online blood sampling is the costly and time-consuming preparation to catheterize the femoral vessels of the animal. Here, we describe an easy and complete workflow for catheterization and continuous blood sampling during small animal PET/CT imaging and compared it to manual blood sampling and an image-derived approach. Using this highly-standardized workflow, the determination of the fluorodeoxyglucose ([F]FDG) AIF is demonstrated. Further, this procedure can be applied to any radiotracer in combination with different animal models to create fundamental knowledge of tracer kinetic and model characteristics. This allows a more precise evaluation of the behavior of pharmaceuticals, both for diagnostic and therapeutic approaches in the preclinical research of oncological, neurodegenerative and myocardial diseases.
对于正电子发射断层扫描/计算机断层扫描(PET/CT)数据的定量分析和生物动力学建模,确定时间性血液时间-活性浓度(也称为动脉输入函数,AIF)是关键,特别是对于动物疾病模型的特征描述和新开发放射性示踪剂的引入。了解血液中放射性示踪剂的可用性有助于解释PET/CT得出的组织活性数据。为此,建议在PET/CT成像期间进行在线血液采样以测量AIF。与手动血液采样和图像衍生方法相比,连续在线血液采样有几个优点。除了将失血降至最低外,血液活性测量的分辨率和准确性也有所提高。然而,在线血液采样的主要缺点是对动物股血管进行插管的准备工作既昂贵又耗时。在此,我们描述了一种在小动物PET/CT成像期间进行插管和连续血液采样的简单且完整的工作流程,并将其与手动血液采样和图像衍生方法进行比较。使用这种高度标准化的工作流程,展示了氟脱氧葡萄糖([F]FDG)AIF的测定。此外,该程序可应用于任何放射性示踪剂,并与不同的动物模型相结合,以创建示踪剂动力学和模型特征的基础知识。这使得在肿瘤、神经退行性和心肌疾病的临床前研究中,无论是诊断还是治疗方法,都能更精确地评估药物的行为。