Department of Electrical Engineering and Information Systems, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Institute for Materials Chemistry and Engineering, Kyushu University, CE41 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan.
Sci Adv. 2018 Oct 19;4(10):eaau2426. doi: 10.1126/sciadv.aau2426. eCollection 2018 Oct.
High-precision monitoring of electrophysiological signals with high spatial and temporal resolutions is one of the most important subjects for elucidating physiology functions. Recently, ultraflexible multielectrode arrays (MEAs) have been fabricated to establish conformal contacts with the surface of organs and to measure propagation of electrophysiological signals with high spatial-temporal resolution; however, plastic substrates have high Young's modulus, causing difficulties in creating appropriate stretchability and blood compatibility for applying them on the dynamically moving and surgical bleeding surface of the heart. Here, we have successfully fabricated an active MEA that simultaneously achieves nonthrombogenicity, stretchability, and stability, which allows long-term electrocardiographic (ECG) monitoring of the dynamically moving hearts of rats even with capillary bleeding. Because of the active data readout, the measured ECG signals exhibit a high signal-to-noise ratio of 52 dB. The novel stretchable MEA is carefully designed using state-of-the-art engineering techniques by combining extraordinarily high gain organic electrochemical transistors processed on microgrid substrates and a coating of poly(3-methoxypropyl acrylate), which exhibits significant antithrombotic properties while maintaining excellent ionic conductivity.
高时空分辨率的电生理信号的高精度监测是阐明生理功能的最重要课题之一。最近,已经制备出超柔韧的多电极阵列 (MEA),以与器官表面建立顺应性接触,并以高时空分辨率测量电生理信号的传播;然而,塑料衬底具有高杨氏模量,这使得在心脏的动态运动和手术出血表面上应用它们具有适当的拉伸性和血液相容性变得困难。在这里,我们成功地制造了一种主动 MEA,它同时实现了非血栓形成性、可拉伸性和稳定性,即使在毛细血管出血的情况下,也可以对大鼠的动态运动心脏进行长期心电图 (ECG) 监测。由于主动数据读取,所测量的 ECG 信号具有 52dB 的高信噪比。通过结合在微网格衬底上处理的超高增益有机电化学晶体管和聚(3-甲氧基丙基丙烯酸酯)涂层,使用最先进的工程技术精心设计了新型可拉伸 MEA,该涂层具有显著的抗血栓特性,同时保持优异的离子导电性。