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首页> 外文期刊>Journal of neural engineering >Multi-scale, multi-modal analysis uncovers complex relationship at the brain tissue- implant neural interface: new emphasis on the biological interface
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Multi-scale, multi-modal analysis uncovers complex relationship at the brain tissue- implant neural interface: new emphasis on the biological interface

机译:多尺度,多模式分析揭示了大脑组织与植入物神经接口之间的复杂关系:生物接口的新重点

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摘要

Objective. Implantable neural electrode devices are important tools for neuroscience research and have an increasing range of clinical applications. However, the intricacies of the biological response after implantation, and their ultimate impact on recording performance, remain challenging to elucidate. Establishing a relationship between the neurobiology and chronic recording performance is confounded by technical challenges related to traditional electrophysiological, material, and histological limitations. This can greatly impact the interpretations of results pertaining to device performance and tissue health surrounding the implant. Approach. In this work, electrophysiological activity and immunohistological analysis are compared after controlling for motion artifacts, quiescent neuronal activity, and material failure of devices in order to better understand the relationship between histology and electrophysiological outcomes. Results. Even after carefully accounting for these factors, the presence of viable neurons and lack of glial scarring does not convey single unit recording performance. Significance. To better understand the biological factors influencing neural activity, detailed cellular and molecular tissue responses were examined. Decreases in neural activity and blood oxygenation in the tissue surrounding the implant, shift in expression levels of vesicular transporter proteins and ion channels, axon and myelin injury, and interrupted blood flow in nearby capillaries can impact neural activity around implanted neural interfaces. Combined, these tissue changes highlight the need for more comprehensive, basic science research to elucidate the relationship between biology and chronic electrophysiology performance in order to advance neural technologies.
机译:目的。植入式神经电极装置是神经科学研究的重要工具,其临床应用范围也在不断扩大。但是,植入后生物反应的复杂性及其对记录性能的最终影响仍然难以阐明。与传统的电生理,材料和组织学局限性相关的技术挑战使建立神经生物学和慢性记录表现之间的关系感到困惑。这会极大地影响有关植入物周围的器械性能和组织健康的结果的解释。方法。在这项工作中,在控制了运动伪影,静态神经元活动和设备的材料故障之后,对电生理活动和免疫组织学分析进行了比较,以便更好地了解组织学与电生理结果之间的关系。结果。即使仔细考虑了这些因素,活神经元的存在和神经胶质瘢痕的缺乏也无法传达单个单元的记录性能。意义。为了更好地了解影响神经活动的生物学因素,对详细的细胞和分子组织反应进行了检查。植入物周围组织的神经活动和血液氧合减少,水泡转运蛋白和离子通道的表达水平变化,轴突和髓鞘损伤以及附近毛细血管中的血流中断会影响植入的神经界面周围的神经活动。结合起来,这些组织变化凸显出需要更全面的基础科学研究来阐明生物学与慢性电生理学表现之间的关系,以发展神经技术。

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  • 来源
    《Journal of neural engineering 》 |2018年第3期| 033001.1-033001.23| 共23页
  • 作者单位

    Department of Bioengineering, University of Pittsburgh, Pittsburgh, United States of America;

    Department of Bioengineering, University of Pittsburgh, Pittsburgh, United States of America,Department of Radiology, University of Pittsburgh, Pittsburgh, United States of America,Center for the Neural Basis of Cognition, University of Pittsburgh, Pittsburgh, United States of America,Center for Neuroscience, University of Pittsburgh, Pittsburgh, United States of America;

    Department of Bioengineering, University of Pittsburgh, Pittsburgh, United States of America,Center for the Neural Basis of Cognition, University of Pittsburgh, Pittsburgh, United States of America;

    Department of Biomedical Engineering, Michigan State University, East Lansing, United States of America;

    Department of Biomedical Engineering, Michigan State University, East Lansing, United States of America;

    Department of Neurobiology, University of Pittsburgh, Pittsburgh, United States of America;

    Department of Bioengineering, University of Pittsburgh, Pittsburgh, United States of America,Center for the Neural Basis of Cognition, University of Pittsburgh, Pittsburgh, United States of America,McGowan Institute of Regenerative Medicine, University of Pittsburgh, Pittsburgh, United States of America;

    Department of Bioengineering, University of Pittsburgh, Pittsburgh, United States of America,Center for the Neural Basis of Cognition, University of Pittsburgh, Pittsburgh, United States of America,Center for Neuroscience, University of Pittsburgh, Pittsburgh, United States of America,McGowan Institute of Regenerative Medicine, University of Pittsburgh, Pittsburgh, United States of America,NeuroTech Center, University of Pittsburgh Brain Institute, Pittsburgh, United States of America;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    intracortical microelectrode arrays; molecular and cellular neurobiology; foreign body response; brain-computer interface; biocompatibility; biotic and abiotic failure;

    机译:皮质内微电极阵列;分子和细胞神经生物学;异物反应脑机接口;生物相容性生物和非生物失败;

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