Division of Medical Physics in Radiology, German Cancer Research Center (DKFZ), Heidelberg, Germany; Faculty of Physics and Astronomy, Heidelberg University, Heidelberg, Germany.
Division of Medical Physics in Radiology, German Cancer Research Center (DKFZ), Heidelberg, Germany; Faculty of Physics and Astronomy, Heidelberg University, Heidelberg, Germany; Faculty of Medicine, Heidelberg University, Heidelberg, Germany.
Phys Med. 2021 Aug;88:278-284. doi: 10.1016/j.ejmp.2021.07.015. Epub 2021 Jul 28.
A phantom is presented in this study that allows for an experimental evaluation of QSM reconstruction algorithms. The phantom contains susceptibility producing particles with dia- and paramagnetic properties embedded in an MRI visible medium and is suitable to assess the performance of algorithms that attempt to separate isotropic dia- and paramagnetic susceptibility at the sub-voxel level.
The phantom was built from calcium carbonate (diamagnetic) and tungsten carbide particles (paramagnetic) embedded in gelatin and surrounded by agarose gel. Different mass fractions and mixing ratios of both susceptibility sources were used. Gradient echo data were acquired at 1.5 T, 3 T and 7 T. Susceptibility maps were calculated using the MEDI toolbox and relaxation rates ΔR were determined using exponential fitting.
Relaxation rates as well as susceptibility values generally coincide with the theoretical values for particles fulfilling the assumptions of the the static dephasing regime with stronger deviations for relaxation rates at higher field strength and for high susceptibility values. MRI raw data are available for free academic use as supplementary material.
In this study, a susceptibility phantom is presented that might find its application in the development and quantitative validation of current and future QSM reconstruction algorithms which aim to separate the influence of isotropic dia- and paramagnetic substructure in quantitative susceptibility mapping.
本研究提出了一种体模,可用于对 QSM 重建算法进行实验评估。该体模包含嵌入在 MRI 可见介质中的顺磁和抗磁性质的感生粒子,适用于评估试图在亚体素水平上分离各向同性顺磁和抗磁磁化率的算法的性能。
该体模由碳酸钙(抗磁)和碳化钨颗粒(顺磁)嵌入明胶中并被琼脂糖凝胶包围制成。使用了不同质量分数和两种磁化率源的混合比。在 1.5T、3T 和 7T 下采集梯度回波数据。使用 MEDI 工具箱计算磁化率图,并使用指数拟合确定弛豫率 ΔR。
弛豫率以及磁化率值通常与满足静态去相位假设的粒子的理论值相符,在较高场强下以及高磁化率值下,弛豫率的偏差更大。MRI 原始数据可作为补充材料供免费学术使用。
在这项研究中,提出了一种磁化率体模,它可能会在开发和定量验证当前和未来的 QSM 重建算法中找到应用,这些算法旨在分离各向同性顺磁和抗磁亚结构对定量磁化率映射的影响。