Department of Radiology and Biomedical Imaging, Magnetic Resonance Research Center, Yale University School of Medicine, New Haven, Connecticut.
RWTH Aachen University, Aachen, Germany.
Magn Reson Med. 2019 Feb;81(2):1424-1433. doi: 10.1002/mrm.27408. Epub 2018 Oct 10.
Spatial encoding and shimming in MRI have traditionally been performed using dedicated coils that generate orthogonal spherical harmonic fields. The recently introduced multi-coil hardware has proven that MRI-relevant magnetic fields can also be created by a generic set of localized coils producing non-orthogonal fields. As a step towards establishing a purely multi-coil-based MRI field generation system, the feasibility of performing conventional Cartesian k-space encoding and echo-planar imaging (EPI), as well as concurrent encoding and shimming is demonstrated in this study.
We report the use of Dynamic Multi-Coil Technique (DYNAMITE) for combined Cartesian encoding and shimming, and EPI using a 48-channel multi-coil system. Experiments were performed on phantom objects and biological specimens in a 9.4 T pre-clinical scanner. Cartesian Fourier-encoded MRI and EPI were implemented whereby the magnetic fields required for encoding of the three orthogonal spatial dimensions were entirely based on linear combinations of multi-coil fields. Furthermore, DYNAMITE imaging was augmented by concurrent DYNAMITE shimming with the same hardware.
DYNAMITE-based MR and echo-planar images were indistinguishable from those acquired with the conventional linear imaging gradients provided by the scanner. In experiments with concurrent DYNAMITE shimming and imaging, shim challenges that would result in extreme spatial distortion and signal loss were corrected very effectively with more than 92% signal recovery in case of extreme Z shim challenge that resulted in complete signal dephasing in most slices.
We demonstrate the first successful implementation of combined DYNAMITE imaging and shimming and show the feasibility of performing EPI with DYNAMITE hardware. Our results substantiate the potential of multi-coil hardware as a full-fledged imaging and shimming system, with additional potential benefits of reduced echo-time and risk of peripheral nerve stimulation while performing EPI.
磁共振成像(MRI)中的空间编码和匀场传统上是使用产生正交球谐磁场的专用线圈进行的。最近推出的多线圈硬件已经证明,也可以通过产生非正交场的一组通用局部线圈来产生与 MRI 相关的磁场。作为建立完全基于多线圈的 MRI 场生成系统的一步,本研究证明了在传统笛卡尔 k 空间编码和回波平面成像(EPI)以及同时编码和匀场方面的可行性。
我们报告了使用动态多线圈技术(DYNAMITE)进行组合笛卡尔编码和匀场,以及使用 48 通道多线圈系统进行 EPI。在 9.4 T 临床前扫描仪中对幻影物体和生物标本进行了实验。实施了笛卡尔傅里叶编码 MRI 和 EPI,其中用于编码三个正交空间维度的磁场完全基于多线圈场的线性组合。此外,使用相同的硬件增强了 DYNAMITE 成像的同时 DYNAMITE 匀场。
基于 DYNAMITE 的磁共振和回波平面图像与扫描仪提供的常规线性成像梯度获得的图像无法区分。在具有同时 DYNAMITE 匀场和成像的实验中,通过使用 DYNAMITE 硬件非常有效地校正了会导致极端空间失真和信号丢失的匀场挑战,在导致大多数切片中信号完全去相位的极端 Z 匀场挑战的情况下,信号恢复超过 92%。
我们首次成功实现了 DYNAMITE 成像和匀场的组合,并展示了使用 DYNAMITE 硬件进行 EPI 的可行性。我们的结果证实了多线圈硬件作为一种成熟的成像和匀场系统的潜力,同时在进行 EPI 时具有减少回波时间和外周神经刺激风险的额外潜在好处。