Department of Biosystems and Soft Matter, Institute of Fundamental Technological Research, Polish Academy of Sciences, Warsaw02-106, Poland.
Department of Industrial Chemistry "Toso Montanari", Alma Mater Studiorum University of Bologna, Bologna40136, Italy.
ACS Appl Mater Interfaces. 2023 Feb 8;15(5):6283-6296. doi: 10.1021/acsami.2c17025. Epub 2022 Dec 28.
In neuroscience, the acquisition of neural signals from the brain cortex is crucial to analyze brain processes, detect neurological disorders, and offer therapeutic brain-computer interfaces. The design of neural interfaces conformable to the brain tissue is one of today's major challenges since the insufficient biocompatibility of those systems provokes a fibrotic encapsulation response, leading to an inaccurate signal recording and tissue damage precluding long-term/permanent implants. The design and production of a novel soft neural biointerface made of polyacrylamide hydrogels loaded with plasmonic silver nanocubes are reported herein. Hydrogels are surrounded by a silicon-based template as a supporting element for guaranteeing an intimate neural-hydrogel contact while making possible stable recordings from specific sites in the brain cortex. The nanostructured hydrogels show superior electroconductivity while mimicking the mechanical characteristics of the brain tissue. Furthermore, biological tests performed by culturing neural progenitor cells demonstrate the biocompatibility of hydrogels along with neuronal differentiation. chronic neuroinflammation tests on a mouse model show no adverse immune response toward the nanostructured hydrogel-based neural interface. Additionally, electrocorticography acquisitions indicate that the proposed platform permits long-term efficient recordings of neural signals, revealing the suitability of the system as a chronic neural biointerface.
在神经科学中,从大脑皮层获取神经信号对于分析大脑过程、检测神经紊乱和提供治疗性脑机接口至关重要。与脑组织相适应的神经接口的设计是当今的主要挑战之一,因为这些系统的生物相容性不足会引发纤维囊包反应,导致信号记录不准确和组织损伤,从而无法进行长期/永久性植入。本文报道了一种由载银纳米立方的聚丙烯酰胺水凝胶制成的新型软神经生物接口的设计和制作。水凝胶被硅基模板包围,作为保证与神经紧密接触的支撑元件,同时使从大脑皮层特定部位进行稳定记录成为可能。纳米结构水凝胶具有优越的导电性,同时模拟脑组织的机械特性。此外,通过培养神经祖细胞进行的生物测试证明了水凝胶的生物相容性以及神经元分化。在小鼠模型上进行的慢性神经炎症测试表明,基于纳米结构水凝胶的神经接口没有引起免疫反应。此外,脑电描记术采集表明,所提出的平台允许对神经信号进行长期有效的记录,显示出该系统作为慢性神经生物接口的适用性。