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首页> 外文期刊>IEEE transactions on neural systems and rehabilitation engineering >In Vivo Magnetic Stimulation of Rat Sciatic Nerve With Centimeter- and Millimeter-Scale Solenoid Coils
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In Vivo Magnetic Stimulation of Rat Sciatic Nerve With Centimeter- and Millimeter-Scale Solenoid Coils

机译:厘米和毫米级电磁线圈对大鼠坐骨神经的体内磁刺激

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摘要

Previous reports of magnetic stimulation of the peripheral nervous system (PNS) used various coil geometries, all with outer diameters larger than 35 mm, and stimulation energies in the 50 J range to evoke neural excitation. Recent reports of central nervous system (CNS) activation used sub-mm-scale solenoid coils with mJ energy levels. The goal of this study was to translate the lower energy levels from the CNS to the PNS via using smaller coils placed in closer proximity to the neural tissue. Such a performance improvement would advance the state of the art of magnetic stimulation and provide a path towards new neuroprosthetic devices. Primarily, we investigated the range of coil outer diameters from 25 mm down to 5 mm to better understand the dependence of coil diameter on energy required for PNS activation. Nine cm- and mm-scale copper solenoid coils, with various resistances, inductances, inner and outer diameters, and heights were compared by quantizing neuromuscular responses to magnetic stimulation via capacitive discharge excitation of rat sciatic nerves in vivo. Additionally, the effects of stimulus duration and coil position were investigated. As opposed to prior work, this study compares a subset of stimulation parameters in an intact nerve preparation, and shows that magnetic stimulation with coils that abut the nerve is a reliable, effective method of neuromuscular stimulation. Although we observed different energies required for neuromuscular activation depending on the coil and excitation parameters used, for the experimental configuration, devices, and stimulus waveform shapes presented in this manuscript, no systematic dependence of PNS activation on coil diameter was found, even for the mm-scale coils investigated herein. However, there was a clear relationship between discharge circuit capacitance and energy required to evoke a neuromuscular response. Coils approximately 12 mm in outer diameter and larger consistently evoked responses, whereas coils 5 mm in outer diameter did not. Furthermore, we observed meaningful neuromuscular excitation when stimulating with energies as low as 20 J. Although this is an improvement over prior work, it is still orders of magnitude greater than the energy required for conventional electrical stimulation, suggesting that these devices are presently not suitable for use in an application requiring continued pulsed stimulation. Nevertheless, these devices are suitable for basic research and as clinical tools that infrequently stimulate, such as in diagnostic applications.
机译:先前对周围神经系统(PNS)进行磁刺激的报道使用了各种线圈几何形状(均具有大于35 mm的外径)和50 J范围内的刺激能量来引起神经兴奋。中枢神经系统(CNS)激活的最新报告使用了mJ能级的亚毫米级电磁线圈。这项研究的目的是通过使用更靠近神经组织放置的较小线圈将较低的能量水平从中枢神经系统转换为PNS。这样的性能改善将推进磁刺激的技术水平,并提供通往新的神经修复装置的途径。首先,我们研究了线圈外径从25 mm到5 mm的范围,以更好地了解线圈直径对PNS激活所需能量的依赖性。通过量化大鼠坐骨神经在体内通过电容性放电激发对磁刺激的神经肌肉反应,比较了具有不同电阻,电感,内径和外径以及高度的9厘米和毫米级铜螺线管线圈。另外,研究了刺激持续时间和线圈位置的影响。与先前的工作相反,该研究比较了完整神经准备中的刺激参数的子集,并显示了与神经邻接的线圈进行磁刺激是一种可靠,有效的神经肌肉刺激方法。尽管我们观察到了神经肌肉激活所需的不同能量,具体取决于线圈和所使用的激励参数,但对于本手稿中的实验配置,设备和激励波形形状,仍未发现PNS激活对线圈直径的系统依赖性,即使对于毫米本文研究的大规模线圈。然而,放电电路电容与引起神经肌肉反应所需的能量之间存在明显的关系。线圈的外径约为12毫米,较大时会引起响应,而外径为5毫米的线圈则没有。此外,当用低至20 J的能量进行刺激时,我们观察到了有意义的神经肌肉兴奋。尽管这是对先前工作的改进,但仍比常规电刺激所需的能量大几个数量级,表明这些设备目前不适合用于需要持续脉冲刺激的应用。然而,这些设备适合于基础研究和不经常被刺激的临床工具,例如在诊断应用中。

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