在深度大脑刺激电极的电极-组织接口的非线性效应
K Sridhar1, J Evers1, M Lowery1
1Neuromuscular Systems Lab, School of Electrical and Electronic Engineering, University College Dublin, Dublin, Ireland.
Journal of neural engineering
|February 2, 2024
概括
深度大脑刺激 (DBS) 电极在临床相关的幅度上表现出非线性行为,影响神经激活和安全. 纳入这些非线性对于准确的建模和设计有效的刺激协议至关重要.
科学领域:
- 生物医学工程 生物医学工程
- 神经科学是一个神经科学.
- 计算机建模 计算建模
背景情况:
- 电极 - 组织接口对于神经刺激中的电荷转移至关重要.
- 这个接口的非线性属性在计算模型中经常被忽视.
- 了解这些非线性对于优化深度脑刺激 (DBS) 的有效性和安全性至关重要.
研究的目的:
- 将非线性电极-组织接口阻抗纳入DBS的计算模型.
- 模拟这些非线性对神经激活和安全考虑的影响.
- 在不同的刺激条件下分析从线性到非线性行为的过渡点.
主要方法:
- 开发了DBS电极的有限元模型,结合了非线性接口特性.
- 对体外和体外 (大鼠体下核) 条件进行了模拟.
- 对于电压和电流控制的刺激,确定过渡到非线性行为,并与香农安全极限进行比较.
主要成果:
- 在这两种刺激类型中都观察到明确的过渡到非线性行为.
- 非线性发作发生在体内较低的超电位,相比于体外.
- 非线性特性在电压控制刺激下增加神经激活,并在电流控制刺激下表明安全的电荷传输.
结论:
- DBS电极可以在临床相关的振幅下在非线性状态下运行.
- 非线性影响神经激活和法拉第电荷转移的开始.
- 准确的模拟非线性对于有针对性的神经刺激和安全的协议设计至关重要.
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