Patel Yogi A, Willsie Andrew, Clements Isaac P, Aguilar Ricardo, Rajaraman Swaminathan, Butera Robert J
Annu Int Conf IEEE Eng Med Biol Soc. 2016 Aug;2016:1741-1744. doi: 10.1109/EMBC.2016.7591053.
The work presented here describes a new tool for peripheral nerve interfacing, called the microneedle cuff (μN-cuff) electrode.
μN arrays are designed and integrated into cuff electrodes for penetrating superficial tissues while remaining non-invasive to delicate axonal tracts.
In acute testing, the presence of 75 μm height μNs decreased the electrode-tissue interface impedance by 0.34 kΩ, resulting in a 0.9 mA reduction in functional stimulation thresholds and increased the signal-to-noise ratio by 9.1 dB compared to standard (needle-less) nerve cuff electrodes. Preliminary acute characterization suggests that μN-cuff electrodes provide the stability and ease of use of standard cuff electrodes while enhancing electrical interfacing characteristics.
The ability to stimulate, block, and record peripheral nerve activity with greater specificity, resolution, and fidelity can enable more precise spatiotemporal control and measurement of neural circuits.
本文介绍了一种用于外周神经连接的新工具,称为微针套(μN - cuff)电极。
设计μN阵列并将其集成到袖带电极中,以穿透浅表组织,同时对脆弱的轴突束保持无创。
在急性测试中,75μm高的微针使电极 - 组织界面阻抗降低了0.34kΩ,与标准(无针)神经袖带电极相比,功能刺激阈值降低了0.9mA,信噪比提高了9.1dB。初步的急性表征表明,μN - cuff电极在增强电连接特性的同时,提供了标准袖带电极的稳定性和易用性。
以更高的特异性、分辨率和保真度刺激、阻断和记录外周神经活动的能力,可以实现对神经回路更精确的时空控制和测量。