Moeller Steen, Ramanna Sudhir, Lenglet Christophe, Pisharady Pramod K, Auerbach Edward J, Delabarre Lance, Wu Xiaoping, Akcakaya Mehmet, Ugurbil Kamil
Center for Magnetic Resonance Research, Department of Radiology, University of Minnesota, Minneapolis, MN, USA.
Electrical and Computer Engineering, University of Minnesota, Minneapolis, MN, USA.
Magn Reson Med. 2020 Oct;84(4):1747-1762. doi: 10.1002/mrm.28231. Epub 2020 Mar 2.
In this study, we sought to develop a self-navigation strategy for improving the reconstruction of diffusion weighted 3D multishot echo planar imaging (EPI). We propose a method for extracting the phase correction information from the acquisition itself, eliminating the need for a 2D navigator, further accelerating the acquisition.
In-vivo acquisitions at 3T with 0.9 mm and 1.5 mm isotropic resolutions were used to evaluate the performance of the self-navigation strategy. Sensitivity to motion was tested using a large difference in pitch position of the head. Using a multishell diffusion weighted acquisition, tractography results were obtained at (0.9 mm) to validate the quality with conventional acquisition.
The use of 3D multislab EPI with self-navigation enables 3D diffusion-weighted spin echo EPI acquisitions that have the same efficiency as 2D single-shot acquisition. For matched acquisition time the image signal-to-noise ratio (SNR) between 3D and 2D acquisition is shown to be comparable for whole-brain coverage with (1.5 mm) resolution and for (0.9 mm) resolution the 3D acquisition has higher SNR than what can be obtained with 2D acquisitions using current state-of-art multiband techniques. The self-navigation technique was shown to be stable under inter-volume motion. In tractography analysis, the higher resolution afforded by our technique enabled clear delineation of the tapetum and posterior corona radiata.
The proposed self-navigation approach utilized a self-consistent phase in 3D diffusion weighted acquisitions. Its efficiency and stability were demonstrated for a plurality of common acquisitions. The proposed self-navigation approach allows for faster acquisition of 3D multishot EPI desirable for large field of view and/or higher resolution.
在本研究中,我们试图开发一种自导航策略,以改善扩散加权三维多次激发回波平面成像(EPI)的重建。我们提出了一种从采集本身提取相位校正信息的方法,无需二维导航器,进一步加快了采集速度。
使用3T下各向同性分辨率为0.9mm和1.5mm的体内采集来评估自导航策略的性能。通过头部俯仰位置的巨大差异测试对运动的敏感性。使用多壳扩散加权采集,在(0.9mm)分辨率下获得纤维束成像结果,以验证与传统采集的质量。
使用具有自导航功能的三维多层EPI能够进行三维扩散加权自旋回波EPI采集,其效率与二维单次采集相同。对于匹配的采集时间,在全脑覆盖且分辨率为(1.5mm)时,三维和二维采集之间的图像信噪比(SNR)相当;对于(0.9mm)分辨率,三维采集的SNR高于使用当前最先进的多频段技术的二维采集所能获得的SNR。自导航技术在体间运动下表现稳定。在纤维束成像分析中,我们的技术提供的更高分辨率能够清晰勾勒出毯和放射冠后部。
所提出的自导航方法在三维扩散加权采集中利用了自洽相位。其效率和稳定性在多种常见采集中得到了证明。所提出的自导航方法允许更快地采集适用于大视野和/或更高分辨率的三维多次激发EPI。