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平面微电极几何形状对神经元刺激的影响:高效电极形状的有限元建模与实验验证

Effect of planar microelectrode geometry on neuron stimulation: finite element modeling and experimental validation of the efficient electrode shape.

作者信息

Ghazavi Atefeh, Westwick David, Xu Fenglian, Wijdenes Pierre, Syed Naweed, Dalton Colin

机构信息

Department of Electrical and Computer Engineering, University of Calgary, Calgary, Alberta T2N 1N4, Canada.

Department of Anatomy and Cell Biology, The Hotchkiss Brain Institute, University of Calgary, Calgary, Alberta T2N 4N1, Canada.

出版信息

J Neurosci Methods. 2015 Jun 15;248:51-8. doi: 10.1016/j.jneumeth.2015.03.024. Epub 2015 Apr 4.

Abstract

BACKGROUND

Microelectrode arrays have been used successfully for neuronal stimulation both in vivo and in vitro. However, in most instances currents required to activate the neurons have been in un-physiological ranges resulting in neuronal damage and cell death. There is a need to develop electrodes which require less stimulation current for neuronal activation with physiologically relevant efficacy and frequencies.

NEW METHOD

The objective of the present study was to examine and compare the stimulation efficiency of different electrode geometries at the resolution of a single neuron. We hypothesized that increasing the electrode perimeter will increase the maximum current density at the edges and enhance stimulation efficiency. To test this postulate, the neuronal stimulation efficacy of common circular electrodes (smallest perimeter) was compared with star (medium perimeter), and spiral (largest perimeter with internal boundaries) electrodes. We explored and compared using both a finite element model and in vitro stimulation of neurons isolated from Lymnaea central ganglia.

RESULTS

Interestingly, both the computational model and the live neuronal stimulation experiments demonstrated that the common circular microelectrode requires less stimulus to activate a cell compared to the other two electrode shapes with the same surface area. Our data further revealed that circular electrodes exhibit the largest sealing resistance, stimulus transfer, and average current density among the three types of electrodes tested.

COMPARISON WITH EXISTING METHODS

Average current density and not the maximum current density at the edges plays an important role in determining the electrode stimulation efficiency.

CONCLUSION

Circular shaped electrodes are more efficient in inducing a change in neuronal membrane potential.

摘要

背景

微电极阵列已成功用于体内和体外的神经元刺激。然而,在大多数情况下,激活神经元所需的电流处于非生理范围,导致神经元损伤和细胞死亡。需要开发出在具有生理相关功效和频率的情况下,激活神经元所需刺激电流较小的电极。

新方法

本研究的目的是在单个神经元的分辨率下检查和比较不同电极几何形状的刺激效率。我们假设增加电极周长会增加边缘处的最大电流密度并提高刺激效率。为了验证这一假设,将常见圆形电极(最小周长)的神经元刺激效果与星形电极(中等周长)和螺旋形电极(具有内部边界的最大周长)进行了比较。我们使用有限元模型以及对从椎实螺中央神经节分离出的神经元进行体外刺激来进行探索和比较。

结果

有趣的是,计算模型和活神经元刺激实验均表明,与具有相同表面积的其他两种电极形状相比,常见的圆形微电极激活细胞所需的刺激更少。我们的数据进一步表明,在测试的三种电极类型中,圆形电极表现出最大的封接电阻、刺激传递和平均电流密度。

与现有方法的比较

平均电流密度而非边缘处的最大电流密度在确定电极刺激效率方面起重要作用。

结论

圆形电极在诱导神经元膜电位变化方面更有效。

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