IEEE Trans Med Imaging. 2020 Mar;39(3):742-752. doi: 10.1109/TMI.2019.2934422. Epub 2019 Aug 12.
This work develops a novel, simultaneous multi-VENC and simultaneous multi-slice (SMV+SMS) imaging in a single acquisition for robust phase contrast (PC) MRI. To this end, the pulse sequence was designed to permit concurrent acquisition of multiple VENCs as well as multiple slices on a shared frequency encoding gradient, in which each effective echo time for multiple VENCs was controlled by adjusting net gradient area while multiple slices were simultaneously excited by employing multiband resonance frequency (RF) pulses. For VENC and slice separation, RF phase cycling and gradient blip were applied to create both inter-VENC and inter-slice shifts along phase encoding direction, respectively. With an alternating RF phase cycling that generates oscillating steady-state with low and high signal amplitude, the acquired multi-VENC k-space was reformulated into 3D undersampled k-space by generating a virtual dimension along VENC direction for modulation induced artifact reduction. In vivo studies were conducted to validate the feasibility of the proposed method in comparison with conventional PC MRI. The proposed method shows comparable performance to the conventional method in delineating both low and high flow velocities across cardiac phases with high spatial coverage without apparent artifacts. In the presence of high flow velocity that is above the VENC value, the proposed method exhibits clear depiction of flow signals over conventional method, thereby leading to high VNR image with improved velocity dynamic range.
这项工作开发了一种新的单采集同时多VENC 和同时多片(SMV+SMS)成像技术,用于稳健的相位对比(PC)MRI。为此,设计了脉冲序列,以便在共享频率编码梯度上同时采集多个 VENC 以及多个切片,其中通过调整净梯度面积来控制多个 VENC 的每个有效回波时间,同时通过使用多带共振频率(RF)脉冲同时激发多个切片。为了实现 VENC 和切片分离,应用 RF 相位循环和梯度闪烁在相位编码方向上分别创建了片间和片间移位。通过交替的 RF 相位循环产生具有低和高信号幅度的振荡稳态,所采集的多 VENC k 空间通过在 VENC 方向上生成虚拟维度来重新构建为 3D 欠采样 k 空间,以减少调制诱导的伪影。进行了体内研究,以与传统 PC MRI 相比验证所提出方法的可行性。与传统方法相比,该方法在不出现明显伪影的情况下,具有高空间覆盖范围,能够在心脏相位内对低流速和高流速进行同等描绘,具有可比性。在高于 VENC 值的高流速存在的情况下,该方法明显比传统方法更好地显示了血流信号,从而产生了具有改进速度动态范围的高 VNR 图像。