Department of Chemistry, Renmin University of China, Beijing, 100872, China.
College of Chemistry, Beijing Normal University, Beijing, 100875, China.
Angew Chem Int Ed Engl. 2022 Apr 11;61(16):e202115074. doi: 10.1002/anie.202115074. Epub 2022 Feb 21.
In vivo microelectrodes are essential for neuroscience studies. However, development of microelectrodes with both flexibility and multifunctionality for recording chemical and electrical signals in the same extracellular microspace and modulating neural activity remains challenging. Here, we find that pure PEDOT:PSS fibers (i.e., support-free) exhibit high conductivity, fast heterogeneous electron transfer, and suitable charge storage and injection capabilities, and can thus directly act as microelectrodes not only for chemical and electrophysiological recording in the same extracellular microspace, but also for electromodulation of neural microcircuit activity. Moreover, the microelectrodes mechanically match with neural tissues, exhibiting less foreign body responses. Given the multifunctionality, flexibility, and biocompatibility, the support-free PEDOT:PSS-based microelectrodes offer a new avenue to microelectrode technology for neuroscience research, diagnostics and therapeutics.
在体微电极对于神经科学研究至关重要。然而,开发具有灵活性和多功能性的微电极,以在同一细胞外微空间中记录化学和电信号并调节神经活动仍然具有挑战性。在这里,我们发现纯 PEDOT:PSS 纤维(即无支撑)表现出高导电性、快速非均相电子转移以及合适的电荷存储和注入能力,因此不仅可以直接用作微电极,用于在同一细胞外微空间中进行化学和电生理记录,还可以用于电调节神经微电路活动。此外,微电极与神经组织机械匹配,表现出较小的异物反应。鉴于多功能性、灵活性和生物相容性,基于无支撑 PEDOT:PSS 的微电极为神经科学研究、诊断和治疗的微电极技术提供了新途径。