ARC Centre of Excellence for Electromaterials Science (ACES), Intelligent Polymer Research Institute, AIIM Facility, Innovation Campus, University of Wollongong, NSW 2522, Australia.
Nanoscale. 2012 Aug 7;4(15):4327-47. doi: 10.1039/c2nr30758h. Epub 2012 Jun 14.
The nexus of any bionic device can be found at the electrode-cellular interface. Overall efficiency is determined by our ability to transfer electronic information across that interface. The nanostructure imparted to electrodes plays a critical role in controlling the cascade of events that determines the composition and structure of that interface. With commonly used conductors: metals, carbon and organic conducting polymers, a number of approaches that promote control over structure in the nanodomain have emerged in recent years with subsequent studies revealing a critical dependency between nanostructure and cellular behaviour. As we continue to develop our understanding of how to create and characterise electromaterials in the nanodomain, this is expected to have a profound effect on the development of next generation bionic devices. In this review, we focus on advances in fabricating nanostructured electrodes that present new opportunities in the field of medical bionics. We also briefly evaluate the interactions of living cells with the nanostructured electromaterials, in addition to highlighting emerging tools used for nanofabrication and nanocharacterisation of the electrode-cellular interface.
任何仿生设备的核心都可以在电极-细胞界面上找到。整体效率取决于我们在该界面上传输电子信息的能力。赋予电极的纳米结构在控制决定界面组成和结构的事件级联中起着关键作用。对于常用导体:金属、碳和有机导电聚合物,近年来出现了许多促进纳米域结构控制的方法,随后的研究揭示了纳米结构和细胞行为之间的关键依赖性。随着我们继续加深对如何在纳米域中创建和表征电材料的理解,这预计将对下一代仿生设备的发展产生深远影响。在这篇综述中,我们专注于制造呈现医学仿生学领域新机遇的纳米结构电极的进展。我们还简要评估了活细胞与纳米结构电材料的相互作用,同时强调了用于电极-细胞界面的纳米制造和纳米表征的新兴工具。