论文标题

使用多疗法编码的同时多板(肌肉)

Navigator-Free Submillimeter Diffusion Imaging using Multishot-encoded Simultaneous Multi-slice (MUSIUM)

论文作者

Chang, Wei-Tang, Huynh, Khoi Minh, Yap, Pew-Thian, Lin, Weili

论文摘要

实现亚亚毫升各向同性分辨率扩散MR成像(DMRI)的能力至关重要。执行亚毫米表DMRI的主要挑战之一是固有的低信噪比(SNR)。尽管已经提出了能够缓解高分辨率DMRI中低SNR的方法,但即同时使用的多SMSLAB(SMSLAB)和一般的切片抖动增强的增强分辨率,同时多层(GSLIDER-SMS)与这些方法相关联。 SMSLAB序列遭受平板边界伪像,需要其他导航器进行相位估计。另一方面,GSLIDER序列需要相对较高的RF功率和峰值振幅,这会增加SAR并使RF激发复杂化。在这项工作中,我们在3T MR Scanner上开发了无导航器的多疗法编码的同时编码的多片(Musium)成像方法,可实现增强的SNR,低RF功率和峰值振幅,并且不受平板边界伪像。具有超高分辨率的DMRI(各向同性分辨率为0.86),全脑覆盖范围和〜12.5分钟的采集时间,揭示了皮质和白质区域的详细结构。模拟和体内结果还表明,肌肉成像受到运动的最小影响。综上所述,在临床可行的扫描时间内,肌肉成像是在3T MR扫描仪上实现亚毫米扩散成像的有前途的方法。

The ability to achieve submillimter isotropic resolution diffusion MR imaging (dMRI) is critically important to study fine-scale brain structures, particularly in the cortex. One of the major challenges in performing submillimeter dMRI is the inherently low signal-to-noise ratio (SNR). While approaches capable of mitigating the low SNR in high resolution dMRI have been proposed, namely simultaneous multi-slab (SMSlab) and generalized slice dithered enhanced resolution with simultaneous multislice (gSlider-SMS), limitations are associated with these approaches. The SMSlab sequences suffer from the slab boundary artifacts and require additional navigators for phase estimation. On the other hand, gSlider sequences require relatively high RF power and peak amplitude, which increase the SAR and complicate the RF excitation. In this work, we developed a navigator-free multishot-encoded simultaneous multi-slice (MUSIUM) imaging approach on a 3T MR scanner, achieving enhanced SNR, low RF power and peak amplitude, and being free from slab boundary artifacts. The dMRI with ultrahigh resolution (0.86 mm isotropic resolution), whole brain coverage and ~12.5 minute acquisition time were achieved, revealing detailed structures at cortical and white matter areas. The simulated and in vivo results also demonstrated that the MUSIUM imaging was minimally affected by the motion. Taken together, the MUSIUM imaging is a promising approach to achieve submillimeter diffusion imaging on 3T MR scanners within clinically feasible scan time.

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