Institute for Biomedical Engineering, University and ETH Zürich, Zürich, Switzerland; Institute of Diagnostic and Interventional Radiology, University Hospital Zurich, University of Zurich, Switzerland.
J Magn Reson. 2023 Nov;356:107572. doi: 10.1016/j.jmr.2023.107572. Epub 2023 Oct 10.
Perfusion MRI based on arterial spin labeling (ASL) has intrinsically very low signal-to-noise ratio (SNR). Signal acquisition at shorter echo times (TE) is necessary to boost the SNR of the ASL images. Spiral trajectories provide substantially shorter TE yielding increased SNR and are among the fastest k-space sampling schemes to encode a given field of view and resolution. Moreover, they provide approximately isotropic point-spread functions and inherent refocusing of motion- and flow-induced phase errors. However, the efficiency of the spiral acquisitions in ASL-MRI has been limited because these advantages are counterbalanced by practical technical challenges. This is because spiral acquisitions are highly sensitive to encoding deficiencies such as static off-resonance in the main magnetic field manifested as blurring artifacts in the image. Moreover, deviation of the gradient fields from the nominal waveforms due to the imperfection of the employed hardware critically limits the practical utilization of spiral trajectories. In this work, I provide single- and multiple-shot spiral ASL images that are robust against typical spiral encoding drawbacks enabled by deploying a comprehensive signal model involving static off-resonance and coil sensitivity maps and actual B and gradient field dynamics up to third order in space. The spiral ASL signal acquisition was concurrently monitored using a 3rd order dynamic field camera based on NMR field probes. The reconstructed ASL images at 3 mm and 2 mm in-plane resolution associating with the monitored field dynamics and the static off-resonances exhibited strongly reduced blurring- and aliasing artifacts and distortion. Concurrent field monitoring also enables to account for quasi-static B drifts by encompassing the parametric input data with consistent encoding geometry and physiological field fluctuations. In conclusion, concurrent field monitoring in spiral ASL acquisition largely overcomes traditional vulnerability of spiral trajectories in practice providing high quality ASL images with increased SNR, speed and motion robustness.
基于动脉自旋标记(ASL)的灌注 MRI 固有地具有非常低的信噪比(SNR)。为了提高 ASL 图像的 SNR,需要在更短的回波时间(TE)下进行信号采集。螺旋轨迹提供了大大缩短的 TE,从而提高了 SNR,并且是编码给定视场和分辨率的最快的 k 空间采样方案之一。此外,它们提供了近似各向同性的点扩散函数,并固有地重新聚焦运动和流动引起的相位误差。然而,由于这些优点被实际技术挑战所抵消,因此螺旋采集在 ASL-MRI 中的效率受到限制。这是因为螺旋采集对编码缺陷非常敏感,例如主磁场中的静态离频,表现为图像中的模糊伪影。此外,由于所使用硬件的不完美,梯度场的偏差偏离标称波形,这严重限制了螺旋轨迹的实际应用。在这项工作中,我提供了单 shot 和多 shot 螺旋 ASL 图像,这些图像对典型的螺旋编码缺陷具有鲁棒性,这得益于部署了一个全面的信号模型,该模型涉及静态离频和线圈灵敏度图,以及空间上高达三阶的实际 B 和梯度场动力学。螺旋 ASL 信号采集是使用基于 NMR 场探头的三阶动态场相机同时进行监测的。在 3mm 和 2mm 的平面分辨率下重建的 ASL 图像,与监测的场动态和静态离频相关联,显示出强烈减少的模糊和混叠伪影和失真。同时的场监测还可以通过包含具有一致编码几何形状和生理场波动的参数输入数据来补偿准静态 B 漂移。总之,在螺旋 ASL 采集过程中同时进行场监测在很大程度上克服了传统螺旋轨迹在实践中的脆弱性,提供了具有更高 SNR、速度和运动鲁棒性的高质量 ASL 图像。