Adewole Dayo O, Serruya Mijail D, Wolf John A, Cullen D Kacy
Center for Brain Injury and Repair, Department of Neurosurgery, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, United States.
Department of Bioengineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, PA, United States.
Front Neurosci. 2019 Mar 29;13:269. doi: 10.3389/fnins.2019.00269. eCollection 2019.
Within the neural engineering field, next-generation implantable neuroelectronic interfaces are being developed using biologically-inspired and/or biologically-derived materials to improve upon the stability and functional lifetime of current interfaces. These technologies use biomaterials, bioactive molecules, living cells, or some combination of these, to promote host neuronal survival, reduce the foreign body response, and improve chronic device-tissue integration. This article provides a general overview of the different strategies, milestones, and evolution of bioactive neural interfaces including electrode material properties, biological coatings, and "decoration" with living cells. Another such biohybrid approach developed in our lab uses preformed implantable micro-tissue featuring long-projecting axonal tracts encased within carrier biomaterial micro-columns. These so-called "living electrodes" have been engineered with carefully tailored material, mechanical, and biological properties to enable natural, synaptic based modulation of specific host circuitry while ultimately being under computer control. This article provides an overview of these living electrodes, including design and fabrication, performance attributes, as well as findings to date characterizing and functionality.
在神经工程领域,正在开发下一代可植入神经电子接口,使用受生物启发和/或源自生物的材料来改善当前接口的稳定性和功能寿命。这些技术使用生物材料、生物活性分子、活细胞或它们的某种组合,以促进宿主神经元存活、减少异物反应并改善慢性设备与组织的整合。本文概述了生物活性神经接口的不同策略、里程碑和发展历程,包括电极材料特性、生物涂层以及活细胞“修饰”。我们实验室开发的另一种此类生物杂交方法使用预制的可植入微组织,其具有包裹在载体生物材料微柱内的长投射轴突束。这些所谓的“活体电极”经过精心设计,具有特定的材料、机械和生物学特性,能够在最终由计算机控制的同时,对特定宿主电路进行基于突触的自然调节。本文概述了这些活体电极,包括设计与制造、性能属性以及迄今为止有关其特性和功能的研究结果。