IEEE Trans Biomed Eng. 2021 May;68(5):1658-1667. doi: 10.1109/TBME.2021.3063029. Epub 2021 Apr 21.
Interphase gaps (IPGs) are among the most commonly suggested pulse shape variations to try to enhance neural stimulation efficiency by reducing the action potential (AP) suppressing effect of an early anodic hyperpolarization. The majority of published literature on the effect of IPGs is based on investigations of monopolar stimulation configurations. However, many contemporary neuromodulation applications including the emerging field of electroceutical devices operate in a bipolar electrode configuration.
We investigated the effect of IPGs and asymmetric biphasic current controlled pulses with reduced anodic amplitude on neural activation in both principal electrode configurations in a rodent in-vivo nerve muscle preparation.
In the monopolar electrode configuration, our findings of 10.9 ± 1.5% decreased stimulation amplitude with 200 μs IPGs in biphasic pulses of 40 μs phase width are in agreement with published literature in this configuration. Surprisingly, using the bipolar configuration, opposite effects of IPGs were observed and neural activation required up to 18.6 ± 3.1% (phase width 100 μs, IPG = 1000 μs) higher amplitudes. Electroneurogram recordings of the stimulated nerve revealed temporal differences in AP generation between the monopolar and bipolar configuration. In the bipolar configuration excitation first occurred in response to the middle field transition of biphasic pulses.
This is the first study to report consistently increased amplitude requirements with IPGs in bipolar stimulation configurations.
Our findings must be taken into consideration when designing stimulation waveforms for neuromodulation devices that operate in a bipolar mode to avoid increased amplitude requirements that result in increased energy consumption.
相间间隙(IPG)是最常被提议的脉冲形状变化之一,旨在通过减少早期阳极超极化对动作电位(AP)的抑制作用来提高神经刺激效率。大多数关于 IPG 影响的已发表文献都是基于对单极刺激配置的研究。然而,许多当代神经调节应用,包括新兴的电疗设备领域,都采用双极电极配置。
我们在啮齿动物体内神经肌肉标本中,在两种主要电极配置下,研究了 IPG 和具有减小阳极幅度的不对称双相电流控制脉冲对神经激活的影响。
在单极电极配置中,我们发现双相脉冲的 200 μs IPG 使 40 μs 相位宽度的双相脉冲的刺激幅度降低了 10.9 ± 1.5%,这与该配置下的已发表文献一致。令人惊讶的是,使用双极配置时,观察到了 IPG 的相反作用,并且神经激活需要高达 18.6 ± 3.1%(相位宽度 100 μs,IPG = 1000 μs)更高的幅度。刺激神经的电神经图记录显示了单极和双极配置之间 AP 产生的时间差异。在双极配置中,双相脉冲的中场转换首先引起兴奋。
这是第一项报告在双极刺激配置中 IPG 始终增加幅度要求的研究。
当设计在双极模式下运行的神经调节设备的刺激波形时,必须考虑到我们的发现,以避免因幅度要求增加而导致能量消耗增加。