Department of Biomedical Engineering, Sungkyunkwan University, Suwon, Republic of Korea.
Department of Radiology and Imaging Sciences, Emory University School of Medicine, Atlanta, GA, United States of America.
Phys Med Biol. 2023 Aug 31;68(17). doi: 10.1088/1361-6560/acef8d.
To develop a novel, unenhanced magnetic resonance angiography (MRA) exploiting cardiac-gated, single-slab 3D chemical-shift-encoded gradient- and spin-echo (GRASE) imaging for robust background suppression.The proposed single-slab 3D GRASE employs variable-flip-angles (VFA) in the refocusing radio-frequency (RF) pulse train to promote sensitivity to blood flow as well as imaging encoding efficiency. Phase encoding blips are inserted between adjacent lobes of the switching readout gradients such that chemical shift-induced phase information is encoded into different locations in k-space. Based on the assumption that most background signals in the angiogram come from the fatty tissues, the proposed method directly separates angiograms from fatty background tissue signals from highly incomplete measurements by solving a constrained optimization problem with sparsity prior. Numerical simulations and experiments were performed to validate the effectiveness of the proposed method in healthy volunteers as compared with conventional fresh blood imaging (FBI).Compared with conventional FBI, the proposed method yields clearer delineation of small branching arteries and robust fatty background suppression without apparent loss of signals.We have successfully demonstrated the feasibility of the proposed, single-slab 3D VFA GRASE with chemical-shift-encoded reconstruction for the generation of robust unenhanced peripheral MRA.
为开发一种新型的、无需增强的磁共振血管造影术(MRA),我们利用心脏门控、单层面 3D 化学位移编码梯度和自旋回波(GRASE)成像,实现强大的背景抑制。所提出的单层面 3D GRASE 在重聚焦射频(RF)脉冲串中采用可变翻转角(VFA),以提高对血流的灵敏度以及成像编码效率。在切换读出梯度的相邻扇区之间插入相位编码脉冲,使得化学位移引起的相位信息被编码到 k 空间的不同位置。基于血管造影图像中的大多数背景信号来自脂肪组织的假设,该方法通过求解具有稀疏先验的约束优化问题,直接从高度不完全的测量中分离出血管造影图像和脂肪背景组织信号。在健康志愿者中进行了数值模拟和实验,以验证与传统的新鲜血液成像(FBI)相比,所提出方法的有效性。与传统的 FBI 相比,所提出的方法能够更清晰地描绘小分支动脉,并具有强大的脂肪背景抑制效果,而信号损失不明显。我们已经成功地证明了所提出的单层面 3D VFA GRASE 联合化学位移编码重建用于生成稳健的无需增强外周 MRA 的可行性。