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Interplay Between Pulse Phase Duration and Inter-Phase Gap in the Assessment of Neural Health With Electrically
Henk A Vink1,2, Huib Versnel1,2, Dyan Ramekers1,2,3,4
1Department of Otorhinolaryngology and Head & Neck Surgery, University Medical Center Utrecht, Utrecht University, Utrecht, the Netherlands.
Objectives:
Following deafness, a cochlear implant (CI) can be used for the restoration of hearing. CI effectiveness relies on the condition of the auditory nerve, which typically degenerates after deafness. The nerve's condition can be assessed with the electrically evoked compound action potential (eCAP), the whole-nerve response to an electric pulse. Changes in the eCAP following an increase in the inter-phase gap (IPG) of a biphasic pulse have been reported to be informative of neural survival. This IPG effect can be explained by the temporal separation of the hyperpolarizing phase from the depolarizing phase. We hypothesize that increasing the phase duration (PD) has a similar effect.
Design:
We investigated the PD effect in normal hearing and in ototoxically deafened guinea pigs (total N = 40) with various conditions of the auditory nerve by recording eCAPs to biphasic current pulses with alternating polarity and with varying PD and IPG. The eCAP data were obtained from both chronically and acutely implanted guinea pigs by using CI stimulation paradigms with a fixed charge and varying PD (30, 50, or 100 µs) and IPG (2.1 or 30 µs). We evaluated six eCAP measures: five derived from the amplitude growth function and the N 1 latency. We examined the relationships of PD and IPG effects with the survival of the spiral ganglion cells.
Results:
The PD effects were stronger for latency than IPG effects, but weaker for the other five evaluated eCAP measures. The PD effect did not correlate as well with neural survival as the IPG effect. The IPG effect decreased with increasing PD, and accordingly, the stronger correlations between the IPG effect and neural survival were found for a short PD. Notably, the latency increase with increasing PD was greater than 1, which indicates the second phase of the pulse significantly contributes to the eCAP. This second-phase contribution was larger for lower neural survival.
Conclusions:
The PD effect of latency has predictive power in assessing neural survival. When using other eCAP measures than latency, the best approach to assess neural survival is using the IPG effect with a short PD (around 30 µs).
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