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Selective neural activation in a histologically derived model of peripheral nerve

机译:组织学衍生的周围神经模型中的选择性神经激活

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摘要

Functional electrical stimulation (FES) is a general term for therapeutic methods that use electrical stimulation to aid or replace lost ability. For FES systems that communicate with the nervous system, one critical component is the electrode interface through which the machine-body information transfer must occur. In this paper, we examine the influence of inhomogeneous tissue conductivities and positions of nodes of Ranvier on activation of myelinated axons for neuromuscular control as a function of electrode configuration. To evaluate these effects, we developed a high-resolution bioelectric model of a fascicle from a stained cross-section of cat sciatic nerve. The model was constructed by digitizing a fixed specimen of peripheral nerve, extruding the image along the axis of the nerve, and assigning each anatomical component to one of several different tissue types. Electrodes were represented by current sources in monopolar, transverse bipolar, and longitudinal bipolar configurations; neural activation was determined using coupled field-neuron simulations with myelinated axon cable models. We found that the use of an isotropic tissue medium overestimated neural activation thresholds compared with the use of physiologically based, inhomogeneous tissue medium, even after controlling for mean impedance levels. Additionally, the positions of the cathodic sources relative to the nodes of Ranvier had substantial effects on activation, and these effects were modulated by the electrode configuration. Our results indicate that physiologically based tissue properties cause considerable variability in the neural response, and the inclusion of these properties is an important component in accurately predicting activation. The results are used to suggest new electrode designs to enable selective stimulation of small diameter fibers.
机译:功能性电刺激(FES)是使用电刺激来辅助或替代丧失的能力的治疗方法的总称。对于与神经系统通信的FES系统,一个关键组件是电极接口,必须通过该接口进行人体信息传输。在本文中,我们研究了不均匀的组织电导率和Ranvier结节位置对髓鞘轴突活化对神经肌肉控制的影响,该作用取决于电极结构。为了评估这些效果,我们从猫坐骨神经的染色横截面中开发了一个高分集的高分辨率生物电模型。通过对周围神经的固定标本进行数字化,沿神经轴拉伸图像并将每种解剖成分分配给几种不同组织类型之一来构建模型。电极以单极性,横向双极性和纵向双极性配置的电流源表示;使用具有髓鞘的轴突电缆模型的耦合场神经元模拟来确定神经激活。我们发现,与使用基于生理的非均质组织培养基相比,使用各向同性组织培养基甚至在控制平均阻抗水平后,仍会高估神经激活阈值。另外,阴极源相对于Ranvier节点的位置对激活有实质性影响,并且这些影响通过电极配置进行调节。我们的结果表明,基于生理的组织特性在神经反应中引起相当大的可变性,而这些特性的包含是准确预测激活的重要组成部分。结果被用于建议新的电极设计,以实现小直径纤维的选择性刺激。

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  • 来源
    《Journal of neural engineering》 |2011年第3期|p.21.1-21.9|共9页
  • 作者单位

    Departments of Neurology & Neurosurgery, Medical College of Wisconsin, Milwaukee, WI, USA,;

    Department of Neurology, Miami Children's Hospital, Miami, FL, USA;

    Department of Bioengineering, University of Utah, Salt Lake City, UT, USA;

    Department of Bioengineering, University of Utah, Salt Lake City, UT, USA,School of Computing, University of Utah, Salt Lake City, UT, USA;

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