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Parallel, minimally-invasive implantation of ultra-flexible neural electrode arrays

机译:超柔软神经电极阵列的平行,微创植入

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Objective. Implanted microelectrodes provide a unique means to directly interface with the nervous system but have been limited by the lack of stable functionality. There is growing evidence suggesting that substantially reducing the mechanical rigidity of neural electrodes promotes tissue compatibility and improves their recording stability in both the short- and long-term. However, the miniaturized dimensions and ultraflexibility desired for mitigating tissue responses preclude the probe's self-supported penetration into the brain tissue. Approach. Here we demonstrate the high-throughput implantation of multi-shank ultraflexible neural electrode arrays with surgical footprints as small as 200 mu m(2) in a mouse model. This is achieved by using arrays of tungsten microwires as shuttle devices, and bio-dissolvable adhesive polyethylene glycol (PEG) to temporarily attach a shank onto each microwire. Main results. We show the ability to simultaneously deliver electrode arrays in designed patterns, to adjust the implantation locations of the shanks by need, to target different brain structures, and to control the surgical injury by reducing the microwire diameters to cellular scale. Significance. These results provide a facile implantation method to apply ultraflexible neural probes in scalable neural recording.
机译:客观的。植入的微电极提供了一种独特的方法,可以直接与神经系统接口,但受到缺乏稳定功能的限制。越来越多的证据表明,基本上降低了神经电极的机械刚度促进了组织相容性并在短期和长期内提高了它们的记录稳定性。然而,减轻组织反应所需的小型化尺寸和超薄,妨碍探针的自支持渗透到脑组织中。方法。在这里,我们展示了在小鼠模型中具有小于200μm(2)的手术占地面积的多柄超细神经电极阵列的高吞吐量植入。这是通过使用钨微线作为梭设备的阵列实现,以及生物可溶性粘合剂聚乙二醇(PEG),以临时将柄暂时地连接到每个微射线上。主要结果。我们展示了同时在设计的图案中递送电极阵列的能力,以通过需要调节柄的植入位置,以靶向不同的脑结构,并通过将微线直径减小到细胞尺度来控制手术损伤。意义。这些结果提供了一种容易植入方法,以在可扩展的神经记录中施加超折叠神经探针。

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