Potter-Baker Kelsey A, Capadona Jeffrey R
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio 44106, United States.
ACS Macro Lett. 2015 Mar 17;4(3):275-279. doi: 10.1021/mz500743a. Epub 2015 Feb 13.
Despite the promising potential of intracortical microelectrodes, current designs suffer from short functional lifetimes, due in large part to the neuroinflammatory response to the implanted devices. An increasing body of literature is beginning to link neuroinflammatory-mediated oxidative damage to both the loss of neuronal structures around the implanted microelectrodes, and the degradation/corrosion of electrode materials. The goal of this viewpoint paper was to summarize the current progress toward understanding the role of oxidative damage to neurons and microelectrodes. Further, we seek to highlight the initial antioxidative approaches to mitigate oxidative damage, as well as suggest how current advances in macromolecular science for various applications may play a distinct role in enabling intracortical microelectrodes as reliable choices for long-term neuroprosthetic applications.
尽管皮层内微电极具有广阔的应用前景,但目前的设计存在功能寿命短的问题,这在很大程度上归因于对植入装置的神经炎症反应。越来越多的文献开始将神经炎症介导的氧化损伤与植入微电极周围神经元结构的丧失以及电极材料的降解/腐蚀联系起来。这篇观点论文的目的是总结目前在理解氧化损伤对神经元和微电极作用方面取得的进展。此外,我们试图强调减轻氧化损伤的初步抗氧化方法,并指出高分子科学在各种应用中的当前进展如何在使皮层内微电极成为长期神经假体应用的可靠选择方面发挥独特作用。