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优化翻转角和射频脉冲相位以最大化三维缺失脉冲稳态自由进动中的稳态磁化强度。

Optimization of flip angle and radiofrequency pulse phase to maximize steady-state magnetization in three-dimensional missing pulse steady-state free precession.

机构信息

Center for Magnetic Resonance Research, Department of Radiology, University of Minnesota, Minneapolis, Minnesota, USA.

出版信息

NMR Biomed. 2024 Jun;37(6):e5112. doi: 10.1002/nbm.5112. Epub 2024 Feb 1.

Abstract

Missing pulse (MP) steady-state free precession (SSFP) is a magnetic resonance imaging (MRI) pulse sequence that is highly tolerant to the magnetic field inhomogeneity. In this study, optimal flip angle and radiofrequency (RF) phase scheduling in three-dimensional (3D) MP-SSFP is introduced to maximize the steady-state magnetization while keeping broadband excitation to cover widely distributed frequencies generated by inhomogeneous magnetic fields. Numerical optimization based on extended phase graph (EPG) simulation was performed to maximize the MP-SSFP steady-state magnetization. To limit the specific absorption rate (SAR) associated with the broadband excitation in 3D MP-SSFP, SAR constraint was introduced in the numerical optimization. Optimized flip angle and RF phase settings were experimentally tested by introducing a linear inhomogeneous magnetic field in a range of 10-20 mT/m and using a phantom with known T/T relaxation and diffusion parameters at 3 T. The experimental results were validated through comparisons with EPG simulation. Image contrasts and molecular diffusion effects were investigated in in vivo human brain imaging with 3D MP-SSFP with the optimal flip angle and RF phase settings. In the phantom measurements, the optimal flip angle and RF phase settings improved the MP-SSFP steady-state magnetization/signal-to-noise ratio by up to 41% under the fixed SAR conditions, which matched well with EPG simulation results. In vivo brain imaging with the optimal RF pulse settings provided T-like image contrasts. Diffusion effects were relatively minor with the linear inhomogeneous field of 10-20 mT/m for white and gray matter, but cerebrospinal fluid showed conspicuous signal intensity attenuation as the linear inhomogeneous field increased. Numerical optimization achieved significant improvement in the steady-state magnetization in MP-SSFP compared with the RF pulse settings used in previous studies. The proposed flip angle and RF phase optimization is promising to improve 3D MP-SSFP image quality for MRI in inhomogeneous magnetic fields.

摘要

缺失脉搏(MP)稳态自由进动(SSFP)是一种磁共振成像(MRI)脉冲序列,对磁场不均匀性具有高度的耐受性。在这项研究中,引入了三维(3D)MP-SSFP 中的最佳翻转角和射频(RF)相位调度,以最大化稳态磁化强度,同时保持宽带激励以覆盖由不均匀磁场产生的广泛分布的频率。基于扩展相位图(EPG)模拟进行数值优化,以最大化 MP-SSFP 的稳态磁化强度。为了限制 3D MP-SSFP 中宽带激励相关的特定吸收率(SAR),在数值优化中引入了 SAR 约束。通过在 10-20 mT/m 的范围内在体模中引入线性不均匀磁场,并在 3 T 下使用具有已知 T/T 弛豫和扩散参数的体模,实验测试了优化的翻转角和 RF 相位设置。通过将 EPG 模拟进行比较,验证了实验结果。使用优化的翻转角和 RF 相位设置进行了 3D MP-SSFP 的体内人脑成像,研究了图像对比度和分子扩散效应。在体模测量中,在固定 SAR 条件下,优化的翻转角和 RF 相位设置将 MP-SSFP 的稳态磁化强度/信噪比提高了高达 41%,这与 EPG 模拟结果吻合良好。使用优化的 RF 脉冲设置进行体内脑成像提供了 T 样图像对比度。对于白质和灰质,线性不均匀场为 10-20 mT/m 时,扩散效应相对较小,但随着线性不均匀场的增加,脑脊液的信号强度衰减明显。与之前研究中使用的 RF 脉冲设置相比,数值优化在 MP-SSFP 中的稳态磁化强度方面取得了显著提高。所提出的翻转角和 RF 相位优化有望提高不均匀磁场中 MRI 的 3D MP-SSFP 图像质量。

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