Wang Suhao, Jiang Qianqian, Liu Hang, Yu Chaonan, Li Pengxian, Pan Gang, Xu Kedi, Xiao Rui, Hao Yaoyao, Wang Chengjun, Song Jizhou
Department of Engineering Mechanics, Soft Matter Research Center, and Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province, Zhejiang University, Hangzhou 310027, China.
Nanhu Brain-Computer Interface Institute, Hangzhou 311100, China.
Proc Natl Acad Sci U S A. 2024 Oct;121(40):e2403380121. doi: 10.1073/pnas.2403380121. Epub 2024 Sep 27.
Flexible intracortical probes offer important opportunities for stable neural interfaces by reducing chronic immune responses, but their advances usually come with challenges of difficult implantation and limited recording span. Here, we reported a mechanically adaptive and deployable intracortical probe, which features a foldable fishbone-like structural design with branching electrodes on a temperature-responsive shape memory polymer (SMP) substrate. Leveraging the temperature-triggered soft-rigid phase transition and shape memory characteristic of SMP, this probe design enables direct insertion into brain tissue with minimal footprint in a folded configuration while automatically softening to reduce mechanical mismatches with brain tissue and deploying electrodes to a broader recording span under physiological conditions. Experimental and numerical studies on the material softening and structural folding-deploying behaviors provide insights into the design, fabrication, and operation of the intracortical probes. The chronically implanted neural probe in the rat cortex demonstrates that the proposed neural probe can reliably detect and track individual units for months with stable impedance and signal amplitude during long-term implantation. The work provides a tool for stable neural activity recording and creates engineering opportunities in basic neuroscience and clinical applications.
柔性皮层内探针通过减少慢性免疫反应为稳定的神经接口提供了重要机会,但其进展通常伴随着植入困难和记录跨度有限的挑战。在此,我们报道了一种机械自适应且可展开的皮层内探针,其特点是在温度响应形状记忆聚合物(SMP)基板上具有带分支电极的可折叠鱼骨状结构设计。利用SMP的温度触发软-硬相变和形状记忆特性,这种探针设计能够在折叠状态下以最小的占地面积直接插入脑组织,同时自动软化以减少与脑组织的机械不匹配,并在生理条件下将电极展开到更宽的记录跨度。对材料软化和结构折叠-展开行为的实验和数值研究为皮层内探针的设计、制造和操作提供了见解。在大鼠皮层中长期植入的神经探针表明,所提出的神经探针在长期植入过程中能够以稳定的阻抗和信号幅度可靠地检测和跟踪单个单元数月。这项工作为稳定的神经活动记录提供了一种工具,并在基础神经科学和临床应用中创造了工程机会。