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神经元形态和空间分布对背根神经节刺激的选择性的影响。

The effects of neuron morphology and spatial distribution on the selectivity of dorsal root ganglion stimulation.

机构信息

Rehab Neural Engineering Labs, University of Pittsburgh, Pittsburgh, PA 15219, United States of America.

Neuroscience Institute, Carnegie Mellon University, Pittsburgh, PA 15213, United States of America.

出版信息

J Neural Eng. 2024 Oct 15;21(5):056030. doi: 10.1088/1741-2552/ad7760.

Abstract

For prosthesis users, sensory feedback that appears to come from the missing limb can improve function, confidence, and phantom limb pain. Numerous pre-clinical studies have considered stimulation via penetrating microelectrodes at the dorsal root ganglion (DRG) as a potential approach for somatosensory neuroprostheses. However, to develop clinically translatable neuroprosthetic devices, a less invasive approach, such as stimulation via epineural macroelectrodes, would be preferable. This work explores the feasibility of using such electrodes to deliver focal sensory feedback by examining the mechanisms of selective activation in response to stimulation via epineural electrodes compared with penetrating electrodes.We developed computational models of the DRG, representing the biophysical properties of the DRG and surrounding tissue to evaluate neural responses to stimulation via penetrating microelectrodes and epineural macroelectrodes. To assess the role of properties such as neuron morphology and spatial arrangement we designed three models, including one that contained only axons (axon only), one with pseudounipolar neurons arranged randomly (random), and one with pseudounipolar neurons placed according to a realistic spatial distribution (realistic).Our models demonstrate that activation in response to stimulation via epineural electrodes in a realistic model is commonly initiated in the axon initial segment adjacent to the cell body, whereas penetrating electrodes commonly elicit responses in t-junctions and axons. Moreover, we see a wider dynamic range for epineural electrodes compared with penetrating electrodes. This difference appears to be driven by the spatial organization and neuron morphology of the realistic DRG.We demonstrate that the anatomical features of the DRG make it a potentially effective target for epineural stimulation to deliver focal sensations from the limbs. Specifically, we show that epineural stimulation at the DRG can be highly selective thanks to the neuroanatomical arrangement of the DRG, making this a promising approach for future neuroprosthetic development.

摘要

对于假肢使用者来说,来自缺失肢体的感觉反馈可以改善功能、信心和幻肢痛。许多临床前研究都考虑了通过背根神经节(DRG)的穿透微电极进行刺激,作为一种潜在的体感神经假体方法。然而,为了开发可临床转化的神经假体设备,一种侵入性较小的方法,如通过神经外膜宏观电极进行刺激,将是更好的选择。这项工作通过研究与穿透电极相比,通过神经外膜电极进行刺激时的选择性激活机制,探索了使用这种电极提供焦点感觉反馈的可行性。

我们开发了 DRG 的计算模型,代表了 DRG 及其周围组织的生物物理特性,以评估通过穿透微电极和神经外膜宏观电极进行刺激时的神经反应。为了评估神经元形态和空间排列等特性的作用,我们设计了三个模型,包括仅包含轴突的模型(仅轴突)、随机排列的伪单极神经元的模型(随机)和根据实际空间分布放置的伪单极神经元的模型(真实)。

我们的模型表明,在真实模型中,通过神经外膜电极进行刺激时的激活通常在靠近细胞体的轴突起始段开始,而穿透电极通常会在 T 型接头和轴突中引起反应。此外,我们发现神经外膜电极的动态范围比穿透电极宽。这种差异似乎是由真实 DRG 的空间组织和神经元形态驱动的。

我们证明,DRG 的解剖学特征使其成为神经外膜刺激的潜在有效靶点,可从四肢传递焦点感觉。具体来说,我们表明,由于 DRG 的神经解剖学排列,神经外膜刺激具有高度选择性,这是未来神经假体开发的有前途的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4020/11475779/03cd28b2e57c/jnead7760f1_hr.jpg

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