论文标题

胶质瘤患者中动态[S-甲基-11C]蛋氨酸PET数据的VoxelWise主成分分析

Voxelwise principal component analysis of dynamic [S-methyl-11C]methionine PET data in glioma patients

论文作者

Martens, Corentin, Debeir, Olivier, Decaestecker, Christine, Metens, Thierry, Lebrun, Laetitia, Leurquin-Sterk, Gil, Trotta, Nicola, Goldman, Serge, Van Simaeys, Gaetan

论文摘要

最近的工作证明了动态氨基酸正电子发射断层扫描(PET)用于神经胶质瘤分级和基因分型,活检靶向和复发诊断的附加值。但是,这些研究中的大多数仅基于从平均时间活动曲线(TAC)中提取的手工制作的定性或半定量动态特征。 VoxelWise动态PET数据分析可以更好地洞悉神经胶质瘤的肿瘤内异质性。在这项工作中,我们研究了广泛使用的主成分分析(PCA)方法在20名胶质瘤患者的第一个队列中从高维运动校正动态[S-甲基-11c]蛋氨酸PET数据中提取有意义的定量动态特征的能力。通过现实的数值模拟,我们证明了我们方法对噪声的鲁棒性。在第二个13例神经胶质瘤患者的队列中,我们将所得参数图与由标准的一隔室和两个组织隔室药代动力学(PK)模型提供的参数图进行了比较。我们表明,我们的PCA模型在识别肿瘤内摄取动力学异质性的同时,计算量较低的情况下的PCA模型优于PK模型。这种参数图对于在治疗计划中以及评估肿瘤进展和对治疗的反应评估中的应用以及评估肿瘤的侵略性可能很有价值。这项工作还为动态的附加值提供了进一步的鼓励结果,而不是对神经胶质瘤中[S-甲基-11c]蛋氨酸PET数据的静态分析,如先前证明的O-(2- [18F]氟乙基)-L-酪氨酸。

Recent works have demonstrated the added value of dynamic amino acid positron emission tomography (PET) for glioma grading and genotyping, biopsy targeting, and recurrence diagnosis. However, most of these studies are exclusively based on hand-crafted qualitative or semi-quantitative dynamic features extracted from the mean time activity curve (TAC) within predefined volumes. Voxelwise dynamic PET data analysis could instead provide a better insight into intra-tumour heterogeneity of gliomas. In this work, we investigate the ability of the widely used principal component analysis (PCA) method to extract meaningful quantitative dynamic features from high-dimensional motion-corrected dynamic [S-methyl-11C]methionine PET data in a first cohort of 20 glioma patients. By means of realistic numerical simulations, we demonstrate the robustness of our methodology to noise. In a second cohort of 13 glioma patients, we compare the resulting parametric maps to these provided by standard one- and two-tissue compartment pharmacokinetic (PK) models. We show that our PCA model outperforms PK models in the identification of intra-tumour uptake dynamics heterogeneity while being much less computationally expensive. Such parametric maps could be valuable to assess tumour aggressiveness locally with applications in treatment planning as well as in the evaluation of tumour progression and response to treatment. This work also provides further encouraging results on the added value of dynamic over static analysis of [S-methyl-11C]methionine PET data in gliomas, as previously demonstrated for O-(2-[18F]fluoroethyl)-L-tyrosine.

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