Qiao Shaoyu, Stieglitz Thomas, Yoshida Ken
IEEE Trans Neural Syst Rehabil Eng. 2016 Sep;24(9):951-960. doi: 10.1109/TNSRE.2015.2489924. Epub 2015 Oct 12.
Selective peripheral neural interfaces are currently capable of detecting minute electrical signals from nearby nerve fibers as single fiber action potential (SFAP) waveforms. Each detected single unit has a distinct shape originating from the unique bioelectrical coupling that exists between the neuroprosthetic electrode, the nerve fiber and the extracellular milieu. The bioelectrical coupling manifests itself as a series of low-pass Bessel filters acting on the action currents along the nerve fiber. Here, we present a method to estimate the electrode-fiber bioelectrical coupling through a quantitative analysis of the spectral distribution of the single units extracellularly recorded with the thin-film longitudinal intrafascicular electrode (tfLIFE) in an in vivo mammalian peripheral nerve animal model. The bioelectrical coupling estimate is an estimate of the electrode sensitivity function traversed by the nerve fiber, suggesting that it is as a means to directly measure the spatial relationship between the nerve fiber and electrode. It not only reflects a shape change to the SFAP, but has implications for in situ nerve fiber location tracking, in situ diagnostics of nerves and neuroproshetic electrodes, and assessment of the biocompatibility of neural interfaces and the health of the reporting nerve fibers.
选择性外周神经接口目前能够检测来自附近神经纤维的微小电信号,将其作为单纤维动作电位(SFAP)波形。每个检测到的单个单元都有独特的形状,源于神经假体电极、神经纤维和细胞外环境之间存在的独特生物电耦合。这种生物电耦合表现为一系列作用于沿神经纤维的动作电流的低通贝塞尔滤波器。在此,我们提出一种方法,通过对在体内哺乳动物外周神经动物模型中用薄膜纵向束内电极(tfLIFE)细胞外记录的单个单元的频谱分布进行定量分析,来估计电极 - 纤维生物电耦合。生物电耦合估计是对神经纤维穿过的电极灵敏度函数的估计,这表明它是直接测量神经纤维与电极之间空间关系的一种手段。它不仅反映了SFAP的形状变化,还对原位神经纤维位置跟踪、神经和神经假体电极的原位诊断以及神经接口生物相容性和报告神经纤维健康状况的评估具有重要意义。