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A fully implanted programmable stimulator based on wireless communication for epidural spinal cord stimulation in rats

机译:基于无线通信的完全植入可编程刺激器,用于大鼠硬膜外脊髓刺激

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摘要

Clinical research indicates that the epidural spinal cord stimulation (ESCS) has shown potential in promoting locomotor recovery in patients with incomplete spinal cord injury (ISCI). This paper presents the development of a fully implantable voltage-regulated stimulator with bi-directional wireless communication for investigating underlying neural mechanisms of ESCS facilitating motor function improvement. The stimulation system consists of a computer, an external controller, an implantable pulse generator (IPG), a magnet, the extension leads and a stimulation electrode. The telemetry transmission between the IPG and the external controller is achieved by a commercially available transceiver chip with 2.4 GHz carrier band. The magnet is used to activate the IPG only when necessary to minimize the power consumption. The encapsulated IPG measures 33 mm × 24 mm × 8 mm, with a total mass of ~12.6 g. Feasibility experiments are conducted in three Sprague-Dawley rats to validate the function of the stimulator, and to investigate the relationship between lumbar-sacral ESCS and hindlimb electromyography (EMG) responses. The results show that the stimulation system provides an effective tool for investigation of ESCS application in motor function recovery in small animals.
机译:临床研究表明,硬膜外脊髓刺激(ESCS)在促进脊髓不完全损伤(ISCI)的患者中具有促进运动恢复的潜力。本文介绍了具有双向无线通信功能的完全植入式电压调节刺激器的开发,用于研究ESCS促进运动功能改善的潜在神经机制。刺激系统由计算机,外部控制器,可植入脉冲发生器(IPG),磁体,延伸导线和刺激电极组成。 IPG和外部控制器之间的遥测传输是通过具有2.4 GHz载波频带的市售收发器芯片实现的。仅在必要时才使用磁铁来激活IPG,以最大程度地降低功耗。封装的IPG尺寸为33 mm×24 mm×8 mm,总质量约为12.6 g。在三只Sprague-Dawley大鼠中进行了可行性实验,以验证刺激器的功能,并研究腰-ESCS与后肢肌电图(EMG)反应之间的关系。结果表明,该刺激系统为研究ESCS在小动物运动功能恢复中的应用提供了有效的工具。

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