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软质双侧深部脑刺激电极的制造与剂量反应模拟

Fabrication and Dose-Response Simulation of Soft Dual-Sided Deep Brain Stimulation Electrode.

作者信息

Zhang Jian, Tong Bei, Ni Changmao, Yang Dengfei, Fu Guoting, Huang Li

机构信息

Wuhan Neuracom Technology Development Co., Ltd., Wuhan 430074, China.

出版信息

Micromachines (Basel). 2025 Aug 18;16(8):945. doi: 10.3390/mi16080945.

Abstract

A 16-channel dual-sided flexible electrode based on a polyimide substrate was designed and fabricated using micro-electromechanical system (MEMS) technology. The electrode exhibited an average impedance of 5.9 kΩ at 1 kHz and a charge storage capacity (CSC) of 10.63 mC/cm. Concurrently, a three-dimensional finite element model incorporating electrical stimulation and micromotion-induced damage was established. The simulation results demonstrated that the implantation trauma caused by the bilateral electrode was significantly lower compared with silicon-based and cylindrical electrodes, while also enabling directional stimulation. Furthermore, leveraging the design of experiments (DOE) methodology, a multivariate regression model was developed to investigate the influence of key stimulation parameters-namely, current amplitude, frequency, and pulse width-on the volume of tissue activated (VTA). The results indicated that the regression model provided accurate predictions of VTA (R = 0.912). Among the parameters, current amplitude and pulse width exerted a statistically significant influence on VTA size ( < 0.001), whereas the effect of frequency was comparatively minor ( = 0.387 > 0.05). This study presents the first successful fabrication and comprehensive dose-response analysis of a flexible bilateral DBS electrode. Its attributes of low implantation trauma, multi-channel capability, and directional stimulation offer a novel paradigm for precise neuromodulation. Additionally, the established stimulation parameter-VTA response model provides a robust theoretical foundation for optimizing therapeutic parameters in subsequent clinical applications.

摘要

基于聚酰亚胺基板设计并使用微机电系统(MEMS)技术制造了一种16通道双侧柔性电极。该电极在1 kHz时的平均阻抗为5.9 kΩ,电荷存储容量(CSC)为10.63 mC/cm²。同时,建立了一个包含电刺激和微运动引起的损伤的三维有限元模型。模拟结果表明,与硅基电极和圆柱形电极相比,双侧电极引起的植入创伤显著更低,同时还能实现定向刺激。此外,利用实验设计(DOE)方法,开发了一个多元回归模型来研究关键刺激参数(即电流幅度、频率和脉冲宽度)对激活组织体积(VTA)的影响。结果表明,回归模型对VTA提供了准确的预测(R = 0.912)。在这些参数中,电流幅度和脉冲宽度对VTA大小有统计学上的显著影响(P < 0.001),而频率的影响相对较小(P = 0.387 > 0.05)。本研究首次成功制造并对柔性双侧DBS电极进行了全面的剂量反应分析。其低植入创伤、多通道能力和定向刺激的特性为精确神经调节提供了一种新的范例。此外,建立的刺激参数 - VTA反应模型为后续临床应用中优化治疗参数提供了坚实的理论基础。

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