首页> 美国卫生研究院文献>Frontiers in Systems Neuroscience >A novel wireless recording and stimulating multichannel epicortical grid for supplementing or enhancing the sensory-motor functions in monkey (Macaca fascicularis)
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A novel wireless recording and stimulating multichannel epicortical grid for supplementing or enhancing the sensory-motor functions in monkey (Macaca fascicularis)

机译:一种新颖的无线记录和刺激多通道皮层网格用于补充或增强猴子(猕猴)的感觉运动功能

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摘要

Artificial brain-machine interfaces (BMIs) represent a prospective step forward supporting or replacing faulty brain functions. So far, several obstacles, such as the energy supply, the portability and the biocompatibility, have been limiting their effective translation in advanced experimental or clinical applications. In this work, a novel 16 channel chronically implantable epicortical grid has been proposed. It provides wireless transmission of cortical recordings and stimulations, with induction current recharge. The grid has been chronically implanted in a non-human primate (Macaca fascicularis) and placed over the somato-motor cortex such that 13 electrodes recorded or stimulated the primary motor cortex and three the primary somatosensory cortex, in the deeply anaesthetized animal. Cortical sensory and motor recordings and stimulations have been performed within 3 months from the implant. In detail, by delivering motor cortex epicortical single spot stimulations (1–8 V, 1–10 Hz, 500 ms, biphasic waves), we analyzed the motor topographic precision, evidenced by tunable finger or arm movements of the anesthetized animal. The responses to light mechanical peripheral sensory stimuli (blocks of 100 stimuli, each single stimulus being <1 ms and interblock intervals of 1.5–4 s) have been analyzed. We found 150–250 ms delayed cortical responses from fast finger touches, often spread to nearby motor stations. We also evaluated the grid electrical stimulus interference with somatotopic natural tactile sensory processing showing no suppressing interference with sensory stimulus detection. In conclusion, we propose a chronically implantable epicortical grid which can accommodate most of current technological restrictions, representing an acceptable candidate for BMI experimental and clinical uses.
机译:人工脑机接口(BMI)代表了支持或替代有故障的脑功能的前瞻性步骤。到目前为止,在先进的实验或临床应用中,诸如能量供应,便携性和生物相容性之类的若干障碍已经限制了它们的有效转化。在这项工作中,已经提出了一种新颖的16通道可长期植入的皮层网格。它提供了皮质记录和刺激的无线传输,并带有感应电流充电。该网格已被长期植入非人类的灵长类动物(猕猴)中,并放置在体动皮层上,这样,在深度麻醉的动物中,有13个电极记录或刺激了主要的运动皮层,其中的三个刺激了体感皮层。植入后3个月内进行了皮质感觉和运动记录以及刺激。详细地,通过提供运动皮层皮层的单点刺激(1–8 V,1–10 Hz,500 ms,双相波),我们分析了麻醉动物手指或手臂的可调运动,证明了运动地形的精确度。分析了对轻度机械周围感觉刺激(100个刺激的阻滞,每个单个刺激<1 ms,阻滞间隔为1.5–4 s)的响应。我们发现快速手指触摸会延迟150-250 ms的皮质反应,通常会扩散到附近的汽车站。我们还评估了躯体自然触觉感觉处理对电网电刺激的干扰,显示对感觉刺激检测没有抑制性干扰。总之,我们提出了一种可长期植入的皮层网格,该网格可以适应当前的大多数技术限制,代表了BMI实验和临床用途的可接受候选者。

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