Opie Nicholas L, John Sam E, Rind Gil S, Ronayne Stephen M, May Clive N, Grayden David B, Oxley Thomas J
Annu Int Conf IEEE Eng Med Biol Soc. 2018 Jul;2018:1074-1077. doi: 10.1109/EMBC.2018.8512385.
Access to the brain to implant recording electrodes has conventionally required a craniotomy. To mitigate risks of open brain surgery, we previously developed a stent-electrode array that can be delivered to the cortex via cerebral vessels. Following implantation of a stent-electrode array (Stentrode) in a large animal model, we investigated the longevity of highquality signals, by measuring bandwidth in animals implanted for up to six months; no signal degradation was observed. We also investigated whether bandwidth was influenced by implant location with respect to the superior sagittal sinus and branching cortical veins; it was not. Finally, we assessed whether electrode orientation had an impact on recording quality. There was no significant difference in bandwidths from electrodes facing different orientations. Interestingly, electrodes facing the skull (180°) were still able to record neural information with high fidelity. Consequently, a minimally invasive surgical approach combined with a stent-electrode array is a safe and efficacious technique to acquire neural signals over a chronic duration.
传统上,要将记录电极植入大脑需要进行开颅手术。为降低开颅手术的风险,我们之前开发了一种支架电极阵列,它可以通过脑血管递送至皮质。在大型动物模型中植入支架电极阵列(Stentrode)后,我们通过测量植入长达六个月的动物的带宽,研究了高质量信号的持续时间;未观察到信号衰减。我们还研究了带宽是否受相对于上矢状窦和分支皮质静脉的植入位置的影响;结果不受影响。最后,我们评估了电极方向对记录质量是否有影响。面对不同方向的电极的带宽没有显著差异。有趣的是,面对颅骨(180°)的电极仍能够高保真地记录神经信息。因此,微创外科手术方法与支架电极阵列相结合是一种在长期内获取神经信号的安全有效的技术。