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技术说明:四通道和八通道并行射频传输系统的不确定性,用于深部脑刺激装置的安全 MRI。

Technical note: System uncertainty on four- and eight-channel parallel RF transmission for safe MRI of deep brain stimulation devices.

机构信息

Sunnybrook Research Institute - Physical Sciences Platform, Toronto, ON, Canada.

Department of Electrical and Computer Engineering, McMaster University, Hamilton, ON, Canada.

出版信息

Med Phys. 2023 Sep;50(9):5913-5919. doi: 10.1002/mp.16603. Epub 2023 Jul 19.

Abstract

BACKGROUND

Parallel radiofrequency transmission (pTx) remains a promising technology for addressing high-field magnetic resonance imaging (MRI) challenges, particularly regarding the safety of patients with implanted deep brain stimulation (DBS) devices. Radiofrequency (RF) shim optimization methods utilizing pTx technology have shown the potential to minimize induced RF heating effects at the electrode tips of DBS devices at 3 T.

PURPOSE

Research pTx system implementations often involve the combination of custom and commercial hardware that are integrated onto an existing MRI system. As a result, system characterization is important to ensure implant-friendly safe imaging conditions are satisfied for the operating range of the hardware.

METHODS

Utilizing electromagnetic and thermal simulations, the impact of system uncertainty is studied for the proposed 4- and 8-channel pTx system setup and its associated "safe mode" for DBS applications.

RESULTS

Electromagnetic simulations indicated that instrumentation errors can affect the overall electric field strength experienced at the DBS lead tip, and a worst-case system uncertainty analysis predicted temperature elevations of +1.5°C in the 4-channel setup and +0.9°C in the 8-channel setup.

CONCLUSIONS

In conclusion, system uncertainty can impact the precision of pTx RF inputs which in the worst-case, may lead to an unsafe imaging scenario and the proposed 8-channel setup may provide more robustness and thus, safer conditions for MRI of DBS patients.

摘要

背景

并行射频传输 (pTx) 仍然是解决高场磁共振成像 (MRI) 挑战的一项有前途的技术,特别是对于植入深部脑刺激 (DBS) 设备的患者的安全性。利用 pTx 技术的射频 (RF) 调谐优化方法已显示出在 3T 下最小化 DBS 设备电极尖端感应 RF 加热效应的潜力。

目的

研究 pTx 系统的实现通常涉及定制和商业硬件的组合,这些硬件集成到现有的 MRI 系统上。因此,系统特性分析对于确保在硬件的工作范围内满足植入物友好的安全成像条件非常重要。

方法

利用电磁和热模拟,研究了拟议的 4 通道和 8 通道 pTx 系统设置及其相关的 DBS 应用“安全模式”的系统不确定性的影响。

结果

电磁模拟表明,仪器误差会影响 DBS 导联尖端的整体电场强度,最坏情况下的系统不确定性分析预测 4 通道设置中的温度升高+1.5°C,8 通道设置中的温度升高+0.9°C。

结论

总之,系统不确定性会影响 pTx RF 输入的精度,在最坏的情况下,可能会导致不安全的成像情况,而拟议的 8 通道设置可能会为 DBS 患者的 MRI 提供更高的稳定性,从而提供更安全的条件。

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