Kang Yafen, Chen Zixiang, Song Zhuoyue, Wu Yaping, Huang Zhenxing, Jin Yuxi, Zhang Ting, Wang Meiyun, Hu Zhanli, Yu Yang
School of Pharmaceutical Sciences, Guangzhou University of Chinese Medicine Guangzhou 510006, Guangdong, China.
Lauterbur Research Center for Biomedical Imaging, Shenzhen Institute of Advanced Technology, Chinese Academy of Science Shenzhen 518055, Guangdong, China.
Am J Nucl Med Mol Imaging. 2024 Aug 25;14(4):272-281. doi: 10.62347/LSYG1380. eCollection 2024.
Brain pharmacokinetic parametric imaging based on dynamic positron emission tomography (PET) scan is valuable in the diagnosis of brain tumor and neurodegenerative diseases. For short-axis PET system, standard blood input function (BIF) of the descending aorta is not acquirable during the dynamic brain scan. BIF extracted from the intracerebral vascular is inaccurate, making the brain parametric imaging task challenging. This study introduces a novel technique tailored for brain pharmacokinetic parameter imaging in short-axis PET in which the head BIF (hBIF) is acquired from the cavernous sinus. The proposed method optimizes the hBIF within the Patlak model via data fitting, curve correction and Patlak graphical model rewriting. The proposed method was built and evaluated using dynamic PET datasets of 67 patients acquired by uEXPLORER PET/CT, among which 64 datasets were used for data fitting and model construction, and 3 were used for method testing; using cross-validation, a total of 15 patient datasets were finally used to test the model. The performance of the new method was evaluated via visual inspection, root-mean-square error (RMSE) measurements and VOI-based accuracy analysis using linear regression and Person's correlation coefficients (PCC). Compared to directly using the cavernous sinus BIF directly for parameter imaging, the new method achieves higher accuracy in parametric analysis, including the generation of Patlak plots closer to the standard plots, better visual effects and lower RMSE values in the ( = 0.0012) and ( = 0.0042) images. VOI-based analysis shows regression lines with slopes closer to 1 ( = 0.0019 for ) and smaller intercepts ( = 0.0085 for ). The proposed method is capable of achieving accurate brain pharmacokinetic parametric imaging using cavernous sinus BIF with short-axis PET scan. This may facilitate the application of this imaging technology in the clinical diagnosis of brain diseases.
基于动态正电子发射断层扫描(PET)的脑药代动力学参数成像在脑肿瘤和神经退行性疾病的诊断中具有重要价值。对于短轴PET系统,在动态脑扫描过程中无法获取降主动脉的标准血输入函数(BIF)。从脑血管中提取的BIF不准确,这使得脑参数成像任务具有挑战性。本研究介绍了一种专门为短轴PET中的脑药代动力学参数成像量身定制的新技术,其中头部BIF(hBIF)是从海绵窦获取的。所提出的方法通过数据拟合、曲线校正和Patlak图形模型重写在Patlak模型中优化hBIF。使用uEXPLORER PET/CT获取的67例患者的动态PET数据集构建并评估了所提出的方法,其中64个数据集用于数据拟合和模型构建,3个用于方法测试;使用交叉验证,最终共15例患者数据集用于测试模型。通过视觉检查、均方根误差(RMSE)测量以及使用线性回归和皮尔逊相关系数(PCC)的基于感兴趣区(VOI)的准确性分析来评估新方法的性能。与直接使用海绵窦BIF进行参数成像相比,新方法在参数分析中实现了更高的准确性,包括生成更接近标准图的Patlak图、更好的视觉效果以及在(=0.0012)和(=0.0042)图像中更低的RMSE值。基于VOI的分析显示回归线的斜率更接近1(对于为=0.0019)且截距更小(对于为=0.0085)。所提出的方法能够使用短轴PET扫描的海绵窦BIF实现准确的脑药代动力学参数成像。这可能有助于这种成像技术在脑部疾病临床诊断中的应用。