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A microchannel neural interface with embedded microwires targeting the peripheral nervous system

机译:具有嵌入微丝的微通道神经接口,靶向周围神经系统

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摘要

The essential purpose of neural interfaces is to record and stimulate neural activity. Careful analysis of neural signals allows them to be used to control technologies such as prosthetics and muscle stimulators that restore lost functionality caused by injury. Designing interfaces advanced enough to restore full functionality, however, is a challenge. Presented here is an animal study using the Texas regenerative peripheral nerve interface (TxNI), a novel neural interface device for communicating with peripheral nerves. Small extracellular potentials and concentration of current at the nodes of Ranvier increases the complexity of recording from axons. The TxNI is designed to obtain weak neural signals which are difficult to acquire using other techniques. The TxNI combines a PDMS (polydimethylsiloxane) microchannel scaffold with microwires (used as recording electrodes) embedded within the microchannels. Axonal regeneration is confined to the microchannels and electrodes are long enough to record from the nodes of Ranvier. Although several types of electrodes for peripheral nerve interfaces have been reported, they typically record unwanted signals from surrounding musculature and are subject to crosstalk. To address this, neural regeneration is directed through the TxNI in sealed microfluidic channels. The TxNI was successfully implanted in the rat sciatic nerve in the animal facility at UTPA. The details regarding its fabrication and implantation are described here. The present result is to be used to evaluate the effectiveness of the TxNI for use in advanced prosthetics. In particular, it aims to be used in a noninvasive brain-machine interface for bidirectional prosthetic arms.
机译:神经接口的基本目的是记录和刺激神经活动。仔细分析神经信号后,它们可用于控制诸如修复术和肌肉刺激器之类的技术,这些技术可恢复由受伤引起的功能丧失。然而,设计足够先进的接口以恢复全部功能是一个挑战。这里介绍的是一项使用德克萨斯州再生性周围神经接口(TxNI)的动物研究,TxNI是一种用于与周围神经通信的新型神经接口设备。小细胞外电位和Ranvier节点处的电流集中会增加轴突记录的复杂性。 TxNI旨在获取微弱的神经信号,而使用其他技术则难以获取。 TxNI将PDMS(聚二甲基硅氧烷)微通道支架与嵌入微通道内的微丝(用作记录电极)结合在一起。轴突再生仅限于微通道,电极足够长,可以从Ranvier的结点进行记录。尽管已经报道了几种用于周围神经接口的电极,但是它们通常会记录周围肌肉组织产生的有害信号,并且容易受到串扰。为了解决这个问题,神经再生通过密封的微流体通道中的TxNI进行引导。 TxNI已成功植入UTPA动物设施的大鼠坐骨神经中。关于其制造和植入的细节在这里描述。本结果将用于评估TxNI在高级假体中使用的有效性。特别是,它旨在用于双向假肢的非侵入性脑机接口。

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