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Remote-Controlled Fully Implantable Neural Stimulator for Freely Moving Small Animal

机译:自由移动的小动物的遥控完全植入式神经刺激器

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The application of a neural stimulator to small animals is highly desired for the investigation of electrophysiological studies and development of neuroprosthetic devices. For this purpose, it is essential for the device to be implemented with the capabilities of full implantation and wireless control. Here, we present a fully implantable stimulator with remote controllability, compact size, and minimal power consumption. Our stimulator consists of modular units of (1) a surface-type cortical array for inducing directional change of a rat, (2) a depth-type array for providing rewards, and (3) a package for accommodating the stimulating electronics, a battery and ZigBee telemetry, all of which are assembled after independent fabrication and implantation using customized flat cables and connectors. All three modules were packaged using liquid crystal polymer (LCP) to avoid any chemical reaction after implantation. After bench-top evaluation of device functionality, the stimulator was implanted into rats to train the animals to turn to the left (or right) following a directional cue applied to the barrel cortex. Functionality of the device was also demonstrated in a three-dimensional (3D) maze structure, by guiding the rats to better navigate in the maze. The movement of the rat could be wirelessly controlled by a combination of artificial sensation evoked by the surface electrode array and reward stimulation. We could induce rats to turn left or right in free space and help their navigation through the maze. The polymeric packaging and modular design could encapsulate the devices with strict size limitations, which made it possible to fully implant the device into rats. Power consumption was minimized by a dual-mode power-saving scheme with duty cycling. The present study demonstrated feasibility of the proposed neural stimulator to be applied to neuroprosthesis research.
机译:对于电生理研究和神经修复装置的开发,非常需要将神经刺激器应用于小型动物。为此,至关重要的是要实现具有完全植入和无线控制功能的设备。在这里,我们介绍了一种完全可植入的刺激器,具有远程可控制性,紧凑的尺寸和最小的功耗。我们的刺激器由以下模块单元组成:(1)用于诱导大鼠方向变化的表面型皮质阵列,(2)用于提供奖励的深度型阵列,以及(3)用于容纳刺激性电子设备的包装,电池和ZigBee遥测技术,所有这些都是在独立制造和植入后使用定制的扁平电缆和连接器组装而成的。所有三个模块均使用液晶聚合物(LCP)进行包装,以避免植入后发生任何化学反应。在对设备功能进行台式评估后,将刺激器植入大鼠体内,以训练动物在向桶状皮质施加定向提示后向左(或向右)转弯。通过引导大鼠更好地在迷宫中导航,该设备的功能还通过三维(3D)迷宫结构得到了证明。可以通过表面电极阵列和奖励刺激相结合的人工感觉来无线控制大鼠的运动。我们可以诱使老鼠在自由空间中向左或向右转,并帮助它们在迷宫中导航。聚合物包装和模块化设计可以封装具有严格尺寸限制的设备,从而有可能将设备完全植入大鼠体内。带有占空比的双模式节能方案将功耗降至最低。本研究证明了所提出的神经刺激器应用于神经假体研究的可行性。

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