Jang Hyungseok, Athertya Jiyo S, Jerban Saeed, Ma Yajun, Lombardi Alecio F, Chung Christine B, Chang Eric Y, Du Jiang
Department of Radiology, University of California, San Diego, San Diego, California, USA.
Radiology Service, Veterans Affairs San Diego Healthcare System, San Diego, California, USA.
NMR Biomed. 2023 Mar 25:e4939. doi: 10.1002/nbm.4939.
The purpose of the current study was to investigate the effects of B and linear eddy currents on ultrashort echo time double echo steady state (UTE-DESS) imaging and to determine whether eddy current correction (ECC) effectively resolves imaging artifacts caused by eddy currents. 3D UTE-DESS sequences based on either projection radial or spiral cones trajectories were implemented on a 3-T clinical MR scanner. An off-isocentered thin-slice excitation approach was used to measure eddy currents. The measurements were repeated four times using two sets of tested gradient waveforms with opposite polarities and two different slice locations to measure B and linear eddy currents simultaneously. Computer simulation was performed to investigate the eddy current effect. Finally, a phantom experiment, an ex vivo experiment with human synovium and ankle samples, and an in vivo experiment with human knee joints, were performed to demonstrate the effects of eddy currents and ECC in UTE-DESS imaging. In a computer simulation, the two echoes (S+ and S-) in UTE-DESS imaging exhibited strong distortion at different orientations in the presence of B and linear eddy currents, resulting in both image degradation as well as misalignment of pixel location between the two echoes. The same phenomenon was observed in the phantom, ex vivo, and in vivo experiments, where the presence of eddy currents degraded S+, S-, echo subtraction images, and T maps. The implementation of ECC dramatically improved both the image quality and image registration between the S+ and S- echoes. It was concluded that ECC is crucial for reliable morphological and quantitative UTE-DESS imaging.
本研究的目的是探讨B和线性涡流对超短回波时间双回波稳态(UTE-DESS)成像的影响,并确定涡流校正(ECC)是否能有效解决由涡流引起的成像伪影。基于投影径向或螺旋锥轨迹的3D UTE-DESS序列在3-T临床磁共振扫描仪上实现。采用偏心薄层激发方法测量涡流。使用两组具有相反极性的测试梯度波形和两个不同的切片位置重复测量四次,以同时测量B和线性涡流。进行计算机模拟以研究涡流效应。最后,进行了体模实验、人体滑膜和踝关节样本的离体实验以及人体膝关节的活体实验,以证明涡流和ECC在UTE-DESS成像中的作用。在计算机模拟中,在存在B和线性涡流的情况下,UTE-DESS成像中的两个回波(S+和S-)在不同方向上表现出强烈的失真,导致图像质量下降以及两个回波之间像素位置的错位。在体模、离体和活体实验中也观察到了相同的现象,其中涡流的存在使S+、S-、回波减法图像和T图退化。ECC的实施显著提高了S+和S-回波之间的图像质量和图像配准。得出的结论是,ECC对于可靠的形态学和定量UTE-DESS成像至关重要。