Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Boston, Massachusetts, USA.
Department of Information Engineering, Electronics and Telecommunications (DIET), Sapienza University of Rome, Rome, Italy.
Med Phys. 2023 Mar;50(3):1779-1792. doi: 10.1002/mp.16148. Epub 2022 Dec 29.
Peripheral magnetic stimulation (PMS) is emerging as a complement to standard electrical stimulation (ES) of the peripheral nervous system (PNS). PMS may stimulate sensory and motor nerve fibers without the discomfort associated with the ES used for standard nerve conduction studies. The PMS coils are the same ones used in transcranial magnetic stimulation (TMS) and lack focality and selectiveness in the stimulation.
This study presents a novel coil for PMS, developed using Flexible technologies, and characterized by reduced dimensions for a precise and controlled targeting of peripheral nerves.
We performed hybrid electromagnetic (EM) and electrophysiological simulations to study the EM exposure induced by a novel miniaturized coil (or mcoil) in and around the radial nerve of the neuro-functionalized virtual human body model Yoon-Sun, and to estimate the current threshold to induce magnetic stimulation (MS) of the radial nerve. Eleven healthy subjects were studied with the mcoil, which consisted of two 15 mm diameter coils in a figure-of-eight configuration, each with a hundred turns of a 25 μm copper-clad four-layer foil. Sensory nerve action potentials (SNAPs) were measured in each subject using two electrodes and compared with those obtained from standard ES. The SNAPs conduction velocities were estimated as a performance metric.
The induced electric field was estimated numerically to peak at a maximum intensity of 39 V/m underneath the mcoil fed by 70 A currents. In such conditions, the electrophysiological simulations suggested that the mcoil elicits SNAPs originating at 7 mm from the center of the mcoil. Furthermore, the numerically estimated latencies and waveforms agreed with those obtained during the PMS experiments on healthy subjects, confirming the ability of the mcoil to stimulate the radial nerve sensory fibers.
Hybrid EM-electrophysiological simulations assisted the development of a miniaturized coil with a small diameter and a high number of turns using flexible electronics. The numerical dosimetric analysis predicted the threshold current amplitudes required for a suprathreshold peripheral nerve sensory stimulation, which was experimentally confirmed. The developed and now validated computational pipeline will be used to improve the performances (e.g., focality and minimal currents) of new generations of mcoil designs.
外周磁刺激(PMS)作为外周神经系统(PNS)标准电刺激(ES)的补充正在兴起。PMS 可以刺激感觉和运动神经纤维,而不会产生与用于标准神经传导研究的 ES 相关的不适感。PMS 线圈与经颅磁刺激(TMS)中使用的线圈相同,在刺激时缺乏焦点和选择性。
本研究提出了一种使用柔性技术开发的新型 PMS 线圈,其特点是尺寸减小,可精确和控制地靶向外周神经。
我们进行了混合电磁(EM)和电生理模拟,以研究新型小型化线圈(或 mcoil)在神经功能化虚拟人体模型 Yoon-Sun 的桡神经内和周围引起的 EM 暴露,并估计产生桡神经磁刺激(MS)的电流阈值。用 mcoil 对 11 名健康受试者进行了研究,mcoil 由两个 15 毫米直径的线圈组成,呈 8 字形配置,每个线圈都有一百匝 25 微米铜包四层箔。使用两个电极测量每个受试者的感觉神经动作电位(SNAP),并将其与从标准 ES 获得的 SNAP 进行比较。SNAP 传导速度被估计为性能指标。
通过数值估计,在由 70 A 电流馈送的 mcoil 下方,感应电场的峰值强度达到 39 V/m。在这种情况下,电生理模拟表明 mcoil 会在距 mcoil 中心 7 毫米处产生 SNAP。此外,数值估计的潜伏期和波形与在健康受试者的 PMS 实验中获得的结果一致,这证实了 mcoil 刺激桡神经感觉纤维的能力。
混合 EM-电生理模拟辅助开发了一种小型化线圈,该线圈具有小直径和高匝数,使用柔性电子技术。数值剂量分析预测了产生超阈值周围神经感觉刺激所需的阈值电流幅度,这在实验中得到了证实。开发并现已验证的计算管道将用于提高新一代 mcoil 设计的性能(例如,焦点和最小电流)。