神经界面电极材料的体外生物学评价

Aaron D. Gilmour, J. Goding, L. Poole-Warren, C. Thomson, R. Green
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引用次数: 3

摘要

下一代神经修复装置电极接口的开发需要高通量的多方面测试策略来评估材料与外周和中枢神经系统(CNS)免疫细胞的相互作用。原代星形胶质细胞富集胶质细胞培养的效用被评估为了解电极材料免疫反应的潜在体外工具。将电聚合聚(3,4-乙烯二氧噻吩)(PEDOT)掺杂对环芴磺酸盐(pTS)作为一种新型电极材料,并与传统电极材料铂(Pt)进行了比较。分析了与材料接触的星形胶质细胞和小胶质细胞的形态,并与人血浆中TNFα释放的免疫测定进行了比较。虽然所有电极材料都不能刺激人类白细胞释放tnf - α,但与胶质细胞接触的材料导致进行性反应性胶质细胞形成。这个主要的星形胶质细胞体外实验提供了深入了解由于慢性植入装置中疤痕组织反应导致的电极性能在体内的退化。它还强调了用适当的细胞系统检测免疫反应的相关性。
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In vitro biological assessment of electrode materials for neural interfaces
The development of the next generation electrode interfaces for neural prosthetic devices requires high-through-put multifaceted testing strategies to assess material interactions with both peripheral and central nervous system (CNS) immune cells. The utility of a primary astrocyte enriched glial cell culture was assessed as a potential in vitro tool for understanding the immune response to electrode materials. Conductive polymer consisting of electropolymerized poly(3,4-ethylenedioxythiophene) (PEDOT) doped with paratoluene sulfonate (pTS) was used as a novel electrode material and compared to the conventional electrode material, platinum (Pt). Morphology of astrocytes and microglia in contact with the materials was analyzed and compared to an immunoassay of TNFα release from human blood plasma. While all electrode materials failed to stimulate TNFα release from human leukocytes, the materials in contact with glial cells resulted in progressive reactive gliosis. This primary astrocyte in vitro assay provides insight into the degeneration of electrode performance in vivo as a result of scar tissue reactions in chronic implant devices. It also highlights the relevance of testing for immune reactions with an appropriate cell system.
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