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Advantages of soft subdural implants for the delivery of electrochemical neuromodulation therapies to the spinal cord

机译:软硬膜下植入物在向脊髓输送电化学神经调节疗法方面的优势

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摘要

Objective. We recently developed soft neural interfaces enabling the delivery of electrical and chemical stimulation to the spinal cord. These stimulations restored locomotion in animal models of paralysis. Soft interfaces can be placed either below or above the dura mater. Theoretically, the subdural location combines many advantages, including increased selectivity of electrical stimulation, lower stimulation thresholds, and targeted chemical stimulation through local drug delivery. However, these advantages have not been documented, nor have their functional impact been studied in silico or in a relevant animal model of neurological disorders using a multimodal neural interface. Approach. We characterized the recruitment properties of subdural interfaces using a realistic computational model of the rat spinal cord that included explicit representation of the spinal roots. We then validated and complemented computer simulations with electrophysiological experiments in rats. We additionally performed behavioral experiments in rats that received a lateral spinal cord hemisection and were implanted with a soft interface. Main results. In silico and in vivo experiments showed that the subdural location decreased stimulation thresholds compared to the epidural location while retaining high specificity. This feature reduces power consumption and risks of long-term damage in the tissues, thus increasing the clinical safety profile of this approach. The hemisection induced a transient paralysis of the leg ipsilateral to the injury. During this period, the delivery of electrical stimulation restricted to the injured side combined with local chemical modulation enabled coordinated locomotor movements of the paralyzed leg without affecting the non-impaired leg in all tested rats. Electrode properties remained stable over time, while anatomical examinations revealed excellent bio-integration properties. Significance. Soft neural interfaces inserted subdurally provide the opportunity to deliver electrical and chemical neuromodulation therapies using a single, bio-compatible and mechanically compliant device that effectively alleviates locomotor deficits after spinal cord injury.
机译:目的。我们最近开发了软神经接口,能够将电刺激和化学刺激传递到脊髓。这些刺激恢复了瘫痪动物模型中的运动。软接口可以放置在硬脑膜的下方或上方。从理论上讲,硬膜下的位置具有许多优点,包括电刺激的选择性提高,刺激阈值降低以及通过局部药物递送进行靶向化学刺激。但是,这些优点尚未得到证实,也没有在计算机上或在使用多模式神经接口的神经系统疾病的相关动物模型中研究过它们的功能影响。方法。我们使用大鼠脊髓的实际计算模型来表征硬膜下界面的募集特性,该模型包括脊髓根的明确表示。然后,我们用大鼠的电生理实验验证并补充了计算机模拟。我们还对接受侧脊髓半切并植入软界面的大鼠进行了行为实验。主要结果。在计算机和体内实验中,与硬膜外位置相比,硬膜下位置降低了刺激阈值,同时保留了高特异性。此功能降低了功耗并降低了组织长期受损的风险,从而提高了该方法的临床安全性。半身切片导致受伤的同侧腿暂时性麻痹。在此期间,电刺激的传递仅限于受伤侧,结合局部化学调节,可使瘫痪的腿协调运动,而不会影响所有测试大鼠的未受损腿。电极性能随时间保持稳定,而解剖学检查显示出极好的生物整合性能。意义。硬膜下插入的软神经接口提供了使用单个生物相容性和机械顺应性装置进行电和化学神经调节疗法的机会,该装置可有效缓解脊髓损伤后的运动功能障碍。

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  • 来源
    《Journal of neural engineering》 |2018年第2期|026024.1-026024.15|共15页
  • 作者单位

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Department of Medicine, Platform of Translational Neuroscience, University of Fribourg, Fribourg, Switzerland;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Department of Medicine, Platform of Translational Neuroscience, University of Fribourg, Fribourg, Switzerland;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Department of Neurology with Experimental Neurology, Charit6-Universitatsmedizin Berlin, Berlin, Germany;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Laboratory of Neuromorphology, Pavlov Institute of Physiology, St. Petersburg, Russia;

    Institute of Translational Biomedicine, St. Petersburg State University, 199034 St. Petersburg, Russia,Russian Research Center of Radiology and Surgical Technologies, Ministry of Health of the RF, 197758, St. Petersburg, Russia,Children's Surgery and Orthopedic Clinic, Department of Non-pulmonary Tuberculosis, Research Institute of Phthysiopulmonology, 194064, St. Petersburg, Russia;

    Center for Neuroprosthetics, School of Engineering, Institute of Microengineering and Bioengineering, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Biotechnology Center, Technische Universitaet Dresden, Dresden, Germany;

    Center for Neuroprosthetics, School of Engineering, Institute of Microengineering and Bioengineering, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland,Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland;

    Center for Neuroprosthetics and Brain Mind Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    neuromodulation; subdural; locomotion; spinal cord injury; computer model;

    机译:神经调节硬膜下运动脊髓损伤;电脑模型;

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