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Investigation of Parallel Radiofrequency Transmission for the Reduction of Heating in Long Conductive Leads in 3 Tesla Magnetic Resonance Imaging

机译:3特斯拉磁共振成像中并行射频传输减少长导体引线发热的研究

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摘要

Deep Brain Stimulation (DBS) is increasingly used to treat a variety of brain diseases by sending electrical impulses to deep brain nuclei through long, electrically conductive leads. Magnetic resonance imaging (MRI) of patients pre- and post-implantation is desirable to target and position the implant, to evaluate possible side-effects and to examine DBS patients who have other health conditions. Although MRI is the preferred modality for pre-operative planning, MRI post-implantation is limited due to the risk of high local power deposition, and therefore tissue heating, at the tip of the lead. The localized power deposition arises from currents induced in the leads caused by coupling with the radiofrequency (RF) transmission field during imaging. In the present work, parallel RF transmission (pTx) is used to tailor the RF electric field to suppress coupling effects. Electromagnetic simulations were performed for three pTx coil configurations with 2, 4, and 8-elements, respectively. Optimal input voltages to minimize coupling, while maintaining RF magnetic field homogeneity, were determined for all configurations using a Nelder-Mead optimization algorithm. Resulting electric and magnetic fields were compared to that of a 16-rung birdcage coil. Experimental validation was performed with a custom-built 4-element pTx coil. In simulation, 95-99% reduction of the electric field at the tip of the lead was observed between the various pTx coil configurations and the birdcage coil. Maximal reduction in E-field was obtained with the 8-element pTx coil. Magnetic field homogeneity was comparable to the birdcage coil for the 4- and 8-element pTx configurations. In experiment, a temperature increase of 2±0.15°C was observed at the tip of the wire using the birdcage coil, whereas negligible increase (0.2±0.15°C) was observed with the optimized pTx system. Although further research is required, these initial results suggest that the concept of optimizing pTx to reduce DBS heating effects holds considerable promise.
机译:通过通过长而导电的导线将电脉冲发送到深层大脑核,深层大脑刺激(DBS)被越来越多地用于治疗各种脑部疾病。植入前和植入后患者的磁共振成像(MRI)对于确定植入物的位置和位置,评估可能的副作用以及检查患有其他健康状况的DBS患者是理想的。尽管MRI是术前计划的首选方式,但MRI植入后受限,因为存在高局部功率沉积的风险,因此导线尖端处组织发热。局部功率沉积是由于成像过程中与射频(RF)传输场耦合而在导线中感应出的电流引起的。在当前工作中,并行射频传输(pTx)用于调整射频电场以抑制耦合效应。对分别具有2个,4个和8个元素的三种pTx线圈配置进行了电磁仿真。使用Nelder-Mead优化算法确定了所有配置的最佳输入电压,以最小化耦合,同时保持RF磁场均匀性。将产生的电场和磁场与16阶鸟笼线圈的电场和磁场进行比较。实验验证是使用定制的4元素pTx线圈进行的。在仿真中,在各种pTx线圈配置和鸟笼线圈之间观察到了导线尖端电场的95-99%降低。使用8元素pTx线圈可最大程度地减小电场。磁场均匀性与4元素和8元素pTx配置的鸟笼线圈相当。在实验中,使用鸟笼线圈在导线尖端观察到2±0.15°C的温度升高,而使用优化的pTx系统观察到的升高幅度可忽略不计(0.2±0.15°C)。尽管需要进一步的研究,但这些初步结果表明,优化pTx以降低DBS加热效应的概念具有可观的前景。

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