{"title":"并行传输空间光谱脉冲设计与局部特定吸收率控制:在 7 T 下对人脑进行稳健的均匀水选择性激发的演示。","authors":"Xin Shao, Zhe Zhang, Xiaodong Ma, Fan Liu, Hua Guo, Kamil Ugurbil, Xiaoping Wu","doi":"10.1002/mrm.30346","DOIUrl":null,"url":null,"abstract":"<p><strong>Purpose: </strong>To propose a novel method for parallel-transmission (pTx) spatial-spectral pulse design and demonstrate its utility for robust uniform water-selective excitation (water excitation) across the entire brain.</p><p><strong>Theory and methods: </strong>Our design problem is formulated as a magnitude-least-squares minimization with joint RF and k-space optimization under explicit specific-absorption-rate constraints. For improved robustness against off-resonance effects, the spectral component of the excitation target is prescribed to have a water passband and a fat stopband. A two-step algorithm was devised to solve our design problem, with Step 1 aiming to solve a reduced problem to find a sensible start point for Step 2 to solve the original problem. The efficacy of our pulse design was evaluated in simulation, phantom, and human experiments using the commercial Nova head coil. Universal pulses were also designed based on a 10-subject training data set to demonstrate the utility of our method for plug-and-play pTx.</p><p><strong>Results: </strong>For k<sub>T</sub>-points and spiral nonselective parameterizations, our design method outperformed the pTx interleaved binomial approach, reducing RMS error by up to about 35% for water excitation and about 97% for fat suppression (over a 200-Hz bandwidth) while decreasing local specific absorption rate by about 30%. Both our subject-specific and universal pulses improved water excitation, restoring signal loss in the cerebellum while suppressing fat signal even in regions of large susceptibility-induced off-resonances.</p><p><strong>Conclusion: </strong>Demonstrated useful for 4D (3D spatial, one-dimensional spectral) pTx spatial-spectral pulse design, our proposed method provides an effective solution for robust volumetric uniform water excitation, holding a promise to many ultrahigh-field applications.</p>","PeriodicalId":18065,"journal":{"name":"Magnetic Resonance in Medicine","volume":" ","pages":"1238-1255"},"PeriodicalIF":3.0000,"publicationDate":"2025-03-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11682926/pdf/","citationCount":"0","resultStr":"{\"title\":\"Parallel-transmission spatial spectral pulse design with local specific absorption rate control: Demonstration for robust uniform water-selective excitation in the human brain at 7 T.\",\"authors\":\"Xin Shao, Zhe Zhang, Xiaodong Ma, Fan Liu, Hua Guo, Kamil Ugurbil, Xiaoping Wu\",\"doi\":\"10.1002/mrm.30346\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><strong>Purpose: </strong>To propose a novel method for parallel-transmission (pTx) spatial-spectral pulse design and demonstrate its utility for robust uniform water-selective excitation (water excitation) across the entire brain.</p><p><strong>Theory and methods: </strong>Our design problem is formulated as a magnitude-least-squares minimization with joint RF and k-space optimization under explicit specific-absorption-rate constraints. For improved robustness against off-resonance effects, the spectral component of the excitation target is prescribed to have a water passband and a fat stopband. A two-step algorithm was devised to solve our design problem, with Step 1 aiming to solve a reduced problem to find a sensible start point for Step 2 to solve the original problem. The efficacy of our pulse design was evaluated in simulation, phantom, and human experiments using the commercial Nova head coil. Universal pulses were also designed based on a 10-subject training data set to demonstrate the utility of our method for plug-and-play pTx.</p><p><strong>Results: </strong>For k<sub>T</sub>-points and spiral nonselective parameterizations, our design method outperformed the pTx interleaved binomial approach, reducing RMS error by up to about 35% for water excitation and about 97% for fat suppression (over a 200-Hz bandwidth) while decreasing local specific absorption rate by about 30%. 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引用次数: 0
摘要
目的:提出一种并行传输(pTx)空间-光谱脉冲设计的新方法,并展示其在整个大脑中进行稳健的均匀水选择性激发(水激发)的实用性:我们的设计问题是在明确的特定吸收率约束条件下,通过射频和 k 空间联合优化实现幅度最小二乘最小化。为了提高对非共振效应的稳健性,激励目标的频谱分量被规定为具有一个水通带和一个胖阻带。我们设计了一种两步算法来解决设计问题,第一步旨在解决一个简化问题,为第二步解决原始问题找到一个合理的起点。我们使用商用 Nova 头线圈在模拟、模型和人体实验中评估了脉冲设计的功效。还根据 10 个受试者的训练数据集设计了通用脉冲,以证明我们的方法对即插即用 pTx 的实用性:结果:对于 kT 点和螺旋非选择性参数化,我们的设计方法优于 pTx 交错二项式方法,水激发的均方根误差降低了约 35%,脂肪抑制的均方根误差降低了约 97%(在 200Hz 带宽上),同时局部比吸收率降低了约 30%。我们的特定受试者脉冲和通用脉冲都改善了水激发,恢复了小脑的信号损失,同时抑制了脂肪信号,即使在大感度引起的非共振区域也是如此:结论:我们提出的方法对 4D(三维空间、一维频谱)pTx 空间-频谱脉冲设计非常有用,为稳健的容积均匀水激发提供了有效的解决方案,为许多超高场应用带来了希望。
Parallel-transmission spatial spectral pulse design with local specific absorption rate control: Demonstration for robust uniform water-selective excitation in the human brain at 7 T.
Purpose: To propose a novel method for parallel-transmission (pTx) spatial-spectral pulse design and demonstrate its utility for robust uniform water-selective excitation (water excitation) across the entire brain.
Theory and methods: Our design problem is formulated as a magnitude-least-squares minimization with joint RF and k-space optimization under explicit specific-absorption-rate constraints. For improved robustness against off-resonance effects, the spectral component of the excitation target is prescribed to have a water passband and a fat stopband. A two-step algorithm was devised to solve our design problem, with Step 1 aiming to solve a reduced problem to find a sensible start point for Step 2 to solve the original problem. The efficacy of our pulse design was evaluated in simulation, phantom, and human experiments using the commercial Nova head coil. Universal pulses were also designed based on a 10-subject training data set to demonstrate the utility of our method for plug-and-play pTx.
Results: For kT-points and spiral nonselective parameterizations, our design method outperformed the pTx interleaved binomial approach, reducing RMS error by up to about 35% for water excitation and about 97% for fat suppression (over a 200-Hz bandwidth) while decreasing local specific absorption rate by about 30%. Both our subject-specific and universal pulses improved water excitation, restoring signal loss in the cerebellum while suppressing fat signal even in regions of large susceptibility-induced off-resonances.
Conclusion: Demonstrated useful for 4D (3D spatial, one-dimensional spectral) pTx spatial-spectral pulse design, our proposed method provides an effective solution for robust volumetric uniform water excitation, holding a promise to many ultrahigh-field applications.
期刊介绍:
Magnetic Resonance in Medicine (Magn Reson Med) is an international journal devoted to the publication of original investigations concerned with all aspects of the development and use of nuclear magnetic resonance and electron paramagnetic resonance techniques for medical applications. Reports of original investigations in the areas of mathematics, computing, engineering, physics, biophysics, chemistry, biochemistry, and physiology directly relevant to magnetic resonance will be accepted, as well as methodology-oriented clinical studies.