State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, P. R. China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei, 230026, P. R. China.
Adv Sci (Weinh). 2022 May;9(16):e2201059. doi: 10.1002/advs.202201059. Epub 2022 Mar 31.
Recording electrophysiological information such as brain neural signals is of great importance in health monitoring and disease diagnosis. However, foreign body response and performance loss over time are major challenges stemming from the chemomechanical mismatch between sensors and tissues. Herein, microgels are utilized as large crosslinking centers in hydrogel networks to modulate the tradeoff between modulus and fatigue resistance/stretchability for producing hydrogels that closely match chemomechanical properties of neural tissues. The hydrogels exhibit notably different characteristics compared to nanoparticles reinforced hydrogels. The hydrogels exhibit relatively low modulus, good stretchability, and outstanding fatigue resistance. It is demonstrated that the hydrogels are well suited for fashioning into wearable and implantable sensors that can obtain physiological pressure signals, record the local field potentials in rat brains, and transmit signals through the injured peripheral nerves of rats. The hydrogels exhibit good chemomechanical match to tissues, negligible foreign body response, and minimal signal attenuation over an extended time, and as such is successfully demonstrated for use as long-term implantable sensory devices. This work facilitates a deeper understanding of biohybrid interfaces, while also advancing the technical design concepts for implantable neural probes that efficiently obtain physiological information.
记录脑神经信号等电生理信息在健康监测和疾病诊断中具有重要意义。然而,由于传感器和组织之间的化学机械不匹配,会产生异物反应和性能随时间下降等问题。本文利用微凝胶作为水凝胶网络中的大交联中心,调节模量与抗疲劳/拉伸性能之间的权衡,以制备与神经组织的化学机械性能相匹配的水凝胶。与纳米颗粒增强水凝胶相比,水凝胶表现出明显不同的特性。水凝胶表现出相对较低的模量、良好的拉伸性和出色的抗疲劳性。研究表明,水凝胶非常适合制作可穿戴和可植入传感器,以获取生理压力信号、记录大鼠大脑中的局部场电位,并通过大鼠受损的周围神经传输信号。水凝胶与组织具有良好的化学机械匹配性,异物反应可忽略不计,信号衰减极小,在长时间内保持稳定,因此成功地用作长期可植入的感应装置。这项工作促进了对生物混合界面的深入理解,同时也为高效获取生理信息的可植入神经探针的技术设计概念提供了新的思路。