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Functional recordings from awake,behaving rodents through a microchannel based regenerative neural interface

机译:通过基于微通道的再生神经接口从啮齿动物中醒来的功能记录

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摘要

Objective. Neural interface technologies could provide controlling connections between the nervous system and external technologies, such as limb prosthetics. The recording of efferent, motor potentials is a critical requirement for a peripheral neural interface, as these signals represent the user-generated neural output intended to drive external devices. Our objective was to evaluate structural and functional neural regeneration through a microchannel neural interface and to characterize potentials recorded from electrodes placed within the microchannels in awake and behaving animals. Approach. Female rats were implanted with muscle EMG electrodes and, following unilateral sciatic nerve transection, the cut nerve was repaired either across a microchannel neural interface or with end-to-end surgical repair. During a 13 week recovery period, direct muscle responses to nerve stimulation proximal to the transection were monitored weekly. In two rats repaired with the neural interface, four wire electrodes were embedded in the microchannels and recordings were obtained within microchannels during proximal stimulation experiments and treadmill locomotion. Main results. In these proof-of-principle experiments, we found that axons from cut nerves were capable of functional reinnervation of distal muscle targets, whether regenerating through a microchannel device or after direct end-to-end repair. Discrete stimulation-evoked and volitional potentials were recorded within interface microchannels in a small group of awake and behaving animals and their firing patterns correlated directly with intramuscular recordings during locomotion. Of 38 potentials extracted, 19 were identified as motor axons reinnervating tibialis anterior or soleus muscles using spike triggered averaging. Significance. These results are evidence for motor axon regeneration through microchannels and are the first report of in vivo recordings from regenerated motor axons within microchannels in a small group of awake and behaving animals. These unique findings provide preliminary evidence that efferent, volitional motor potentials can be recorded from the microchannel-based peripheral neural interface; a critical requirement for any neural interface intended to facilitate direct neural control of external technologies.
机译:目的。神经接口技术可以提供神经系统与外部技术(例如肢体假肢)之间的控制连接。传出的运动电位的记录对于外围神经接口至关重要,因为这些信号代表了用户生成的用于驱动外部设备的神经输出。我们的目标是通过微通道神经接口评估结构和功能性神经再生,并表征从处于清醒和行为习惯的动物的微通道内的电极记录的电位。方法。雌性大鼠植入肌电肌电极,单侧坐骨神经横切后,切断的神经通过微通道神经界面或端到端外科手术修复。在13周的恢复期内,每周监测横断肌近端对神经刺激的直接肌肉反应。在用神经接口修复的两只大鼠中,将四个线电极嵌入微通道中,并在近端刺激实验和跑步机运动期间在微通道内获得记录。主要结果。在这些原理验证实验中,我们发现,无论是通过微通道设备再生还是直接端到端修复,来自切断神经的轴突都能对远端肌肉目标进行功能性神经支配。在一小群清醒和表现良好的动物的界面微通道内记录了离散的诱发诱发和自主电位,其运动方式与肌肉内记录直接相关。在提取的38个电位中,有19个被确定为运动轴突,使用尖峰触发平均来重新激活胫骨前或比目鱼肌。意义。这些结果是通过微通道再生运动轴突的证据,并且是一小群清醒和表现良好的动物体内微通道内再生的运动轴突体内记录的首次报道。这些独特的发现提供了初步的证据,即可以从基于微通道的周围神经接口记录传出的自主运动电位。对任何旨在促进对外部技术进行直接神经控制的神经接口的关键要求。

著录项

  • 来源
    《Journal of neural engineering》 |2015年第1期|279-294|共16页
  • 作者单位

    Department of Neurology, Emory University School of Medicine, 550 Peachtree Street NE, 9th Floor MOT, Atlanta, GA 30308, USA,Wallace H Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory School of Medicine, 1760 Hay good Drive NE, Atlanta, GA 30322, USA;

    Department of Electrical Engineering, The University of Texas-Pan American, 1201 West University Drive, ENGR 3251, Edinburg, TX 78539, USA;

    Wallace H Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory School of Medicine, 1760 Hay good Drive NE, Atlanta, GA 30322, USA;

    Department of Cell Biology, Emory University School of Medicine, 615 Michael Street, Room 405P Atlanta, GA 30322, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    neural Interface; nerve regeneration; neuroprosthesis; nerve injury; peripheral nerve; microchannels;

    机译:神经接口神经再生神经假体神经损伤周围神经微通道;

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