材料科学
生物医学工程
坐骨神经
神经调节
电极
形状记忆合金
外围设备
计算机科学
神经科学
刺激
解剖
医学
化学
复合材料
生物
物理化学
操作系统
作者
Yingchao Zhang,Ning Zheng,Yu Cao,Fengle Wang,Peng Wang,Yinji Ma,Bingwei Lu,Guohui Hou,Zizheng Fang,Ziwei Liang,Mengkun Yue,Yan Li,Ying Chen,Ji Fu,Jian Wu,Tao Xie,Xue Feng
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2019-04-05
卷期号:5 (4)
被引量:241
标识
DOI:10.1126/sciadv.aaw1066
摘要
Peripheral neuromodulation has been widely used throughout clinical practices and basic neuroscience research. However, the mechanical and geometrical mismatches at current electrode-nerve interfaces and complicated surgical implantation often induce irreversible neural damage, such as axonal degradation. Here, compatible with traditional 2D planar processing, we propose a 3D twining electrode by integrating stretchable mesh serpentine wires onto a flexible shape memory substrate, which has permanent shape reconfigurability (from 2D to 3D), distinct elastic modulus controllability (from ~100 MPa to ~300 kPa), and shape memory recoverability at body temperature. Similar to the climbing process of twining plants, the temporarily flattened 2D stiff twining electrode can naturally self-climb onto nerves driven by 37°C normal saline and form 3D flexible neural interfaces with minimal constraint on the deforming nerves. In vivo animal experiments, including right vagus nerve stimulation for reducing the heart rate and action potential recording of the sciatic nerve, demonstrate the potential clinical utility.
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