0.05特斯拉的超低场平衡稳态自由进动MRI。

IF 4.5 2区 医学 Q2 ENGINEERING, BIOMEDICAL
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引用次数: 0

摘要

目的:MRI扫描仪的高成本和有限的可及性仍然是其在临床环境中广泛应用的重大障碍。本研究旨在证明在高度简化和低成本的0.05 Tesla全身MRI扫描仪上超低场(ULF)平衡稳态自由进动(bSSFP)成像的可行性。方法:实验采用新开发的0.05特斯拉MRI扫描仪,该扫描仪采用永磁体,无需磁性或射频屏蔽。我们对健康志愿者的脑、脊柱、胸部、腹部、骨盆和膝关节成像的bSSFP方案进行了优化。我们还检查了组织造影剂对激发翻转角度的依赖性。结果:bSSFP方案在0.05 Tesla下显示出合理的图像质量,可以显示各种解剖结构。该协议提供的空间分辨率为2×2×6 mm3,每个协议的扫描时间约为5分钟。良好的软组织对比显示,便于识别各结构内的主要组织类型。虽然bSSFP主要表现为T2/T1对比度,但可以通过改变翻转角度在一定程度上进行调整。结论:由于组织T1值显著降低,bSSFP序列对ULF成像特别有效。本研究表明,0.05 Tesla的bSSFP成像各种解剖结构是有效可行的。意义:这种bSSFP方案受益于ULF,与CT和超声相比,可以提供更好的软组织对比。这种ULF bSSFP方法可能为缺乏传统MRI通道的临床环境中的软组织成像提供一种具有成本效益的替代方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultra-low-field Balanced Steady-state Free Precession MRI at 0.05 Tesla.

Objective: The high cost and limited accessibility of MRI scanners remain significant barriers to their broader use in clinical settings. This study aims to demonstrate the feasibility of balanced steady-state free precession (bSSFP) imaging at ultra-low-field (ULF) on a highly simplified and low-cost 0.05 Tesla whole-body MRI scanner.

Methods: Experiments were conducted using a newly developed 0.05 Tesla MRI scanner that employed a permanent magnet without the need for magnetic or radiofrequency shielding. We optimized the bSSFP protocol for imaging the brain, spine, chest, abdomen, pelvis, and knee in healthy volunteers. We also examined the dependency of tissue contrast on the excitation flip angle.

Results: The bSSFP protocols demonstrated reasonable image quality at 0.05 Tesla, allowing visualization of various anatomical structures. The protocols provided a spatial resolution of 2×2×6 mm3 with approximately 5 minutes of scan time per protocol. Good soft tissue contrasts were shown, facilitating the identification of major tissue types within each structure. Although bSSFP exhibited predominantly T2/T1 contrast, it could be adjusted to some extent by varying the flip angle.

Conclusion: The bSSFP sequence is particularly effective for imaging at ULF due to the substantially decreased tissue T1 values. This study demonstrates that imaging various anatomical structures with bSSFP at 0.05 Tesla is efficient and feasible.

Significance: Such bSSFP protocol benefits from ULF and can provide superior soft tissue contrasts compared to CT and ultrasound. This ULF bSSFP approach may offer a cost-effective alternative for imaging soft tissues in clinical settings lacking traditional MRI access.

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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
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