Young Ashlyn T, Cornwell Neil, Daniele Michael A
Joint Department of Biomedical Engineering, University of North Carolina at Chapel Hill, and North Carolina State University, 911 Oval Dr., Raleigh, NC 27695, USA.
Adv Funct Mater. 2018 Mar 21;28(12). doi: 10.1002/adfm.201700239. Epub 2017 Jun 7.
Neural interfaces provide a window into the workings of the nervous system-enabling both biosignal recording and modulation. Traditionally, neural interfaces have been restricted to implanted electrodes to record or modulate electrical activity of the nervous system. Although these electrode systems are both mechanically and operationally robust, they have limited utility due to the resultant macroscale damage from invasive implantation. For this reason, novel nanomaterials are being investigated to enable new strategies to chronically interact with the nervous system at both the cellular and network level. In this feature article, the use of nanomaterials to improve current electrophysiological interfaces, as well as enable new nano-interfaces to modulate neural activity via alternative mechanisms, such as remote transduction of electromagnetic fields are explored. Specifically, this article will review the current use of nanoparticle coatings to enhance electrode function, then an analysis of the cutting-edge, targeted nanoparticle technologies being utilized to interface with both the electrophysiological and biochemical behavior of the nervous system will be provided. Furthermore, an emerging, specialized-use case for neural interfaces will be presented: the modulation of the blood-brain barrier.
神经接口为洞察神经系统的运作提供了一个窗口,既能够进行生物信号记录,也能够进行调节。传统上,神经接口局限于植入电极来记录或调节神经系统的电活动。尽管这些电极系统在机械和操作方面都很稳健,但由于侵入性植入导致的宏观损伤,它们的效用有限。因此,正在研究新型纳米材料,以实现新的策略,在细胞和网络层面与神经系统进行长期相互作用。在这篇专题文章中,探讨了使用纳米材料来改进当前的电生理接口,以及通过替代机制(如电磁场的远程转导)实现新的纳米接口来调节神经活动。具体而言,本文将回顾当前使用纳米颗粒涂层来增强电极功能的情况,然后对用于与神经系统的电生理和生化行为进行接口的前沿靶向纳米颗粒技术进行分析。此外,还将介绍神经接口一个新兴的特殊应用案例:血脑屏障的调节。