Zhengguo Tan, Patrick Alexander Liebig, R. Heidemann, F. B. Laun, Florian Knoll
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引用次数: 0
摘要
摘要 在超高场强(7 T 及以上)下进行活体弥散加权磁共振成像(DW-MRI),追求高空间-矩形-时间分辨率对于了解大脑微观结构和功能非常重要。然而,这种追求面临着几项技术挑战。首先,由于非共振的增加和 T2 松弛的缩短,需要更快的回波列读取速度。其次,现有的高分辨率 DW-MRI 技术通常采用平面内全采样多拍 EPI,这不仅会延长扫描时间,还会在 7 T 时产生较高的比吸收率(SAR)。为了应对这些挑战,我们在这项工作中开发了基于导航器的交错 EPI(NAViEPI),它能在成像和导航器回波之间实现相同的有效回波间隔(ESP)。首先,NAViEPI 使两个回波之间没有失真错配,从而简化了镜头到镜头的相位变化校正。其次,NAViEPI 允许使用欠采样 iEPI 采集大量镜头(例如大于 4 个),从而实现临床上可行的高分辨率亚毫米方案。为了保持信噪比(SNR)并减少欠采样伪影,我们在扩散编码中开发了一种 ky 移位编码,以探索互补的 k- q 空间采样。此外,我们还开发了一种新的联合重建方法,该方法采用重叠局部低秩正则化,适用于 7 T 的多波段多拍采集(命名为 JETS-NAViEPI)。我们的方法得到了验证,实验结果涵盖了 1 毫米各向同性分辨率的多 b 值 DWI 和亚毫米平面分辨率的快速 TRACE 采集。
Accelerated diffusion-weighted magnetic resonance imaging at 7 T: Joint reconstruction for shift-encoded navigator-based interleaved echo planar imaging (JETS-NAViEPI)
Abstract The pursuit of high spatial-angular-temporal resolution for in vivo diffusion-weighted magnetic resonance imaging (DW-MRI) at ultra-high field strength (7 T and above) is important in understanding brain microstructure and function. Such pursuit, however, faces several technical challenges. First, increased off-resonance and shorter T2 relaxation require faster echo train readouts. Second, existing high-resolution DW-MRI techniques usually employ in-plane fully-sampled multi-shot EPI, which not only prolongs the scan time but also induces a high specific absorption rate (SAR) at 7 T. To address these challenges, we develop in this work navigator-based interleaved EPI (NAViEPI) which enforces the same effective echo spacing (ESP) between the imaging and the navigator echo. First, NAViEPI renders no distortion mismatch between the two echoes, and thus simplifies shot-to-shot phase variation correction. Second, NAViEPI allows for a large number of shots (e.g., >4) with undersampled iEPI acquisition, thereby rendering clinically-feasible high-resolution sub-milliemeter protocols. To retain signal-to-noise ratio (SNR) and to reduce undersampling artifacts, we developed a ky-shift encoding among diffusion encodings to explore complementary k- q-space sampling. Moreover, we developed a novel joint reconstruction with overlapping locally low-rank regularization generalized to the multi-band multi-shot acquisition at 7 T (dubbed JETS-NAViEPI). Our method was demonstrated, with experimental results covering 1 mm isotropic resolution multi b-value DWI and sub-millimeter in-plane resolution fast TRACE acquisition.