• DocumentCode
    2334
  • Title

    Optimizing the Electrical Stimulation of Retinal Ganglion Cells

  • Author

    Hadjinicolaou, A.E. ; Savage, C.O. ; Apollo, N.V. ; Garrett, D.J. ; Cloherty, S.L. ; Ibbotson, M.R. ; O´Brien, B.J.

  • Author_Institution
    Nat. Vision Res. Inst., Australian Coll. of Optometry, VIC, Australia
  • Volume
    23
  • Issue
    2
  • fYear
    2015
  • fDate
    Mar-15
  • Firstpage
    169
  • Lastpage
    178
  • Abstract
    Epiretinal prostheses aim to restore visual perception in the blind through electrical stimulation of surviving retinal ganglion cells (RGCs). While the effects of several waveform parameters (e.g., phase duration) on stimulation efficacy have been described, their relative influence remains unclear. Further, morphological differences between RGC classes represent a key source of variability that has not been accounted for in previous studies. Here we investigate the effect of electrical stimulus waveform parameters on activation of an anatomically homogenous RGC population and describe a technique for identifying optimal stimulus parameters to minimize the required stimulus charge. Responses of rat A2-type RGCs to a broad array of biphasic stimulation parameters, delivered via an epiretinal stimulating electrode (200 × 200 μm) were recorded using whole-cell current clamp techniques. The data demonstrate that for rectangular charge-balanced stimuli, phase duration and polarity have the largest effect on threshold current amplitude-cells were most responsive to cathodic-first pulses of short phase duration. Waveform asymmetry and increases in interphase interval further reduced thresholds. Using optimal waveform parameters, we observed a drop in stimulus efficacy with increasing stimulation frequency. This was more pronounced for large cells. Our results demonstrate that careful choice of electrical waveform parameters can significantly improve the efficacy of electrical stimulation and the efficacy of implantable neurostimulators for the retina.
  • Keywords
    biomedical electrodes; cellular biophysics; eye; neuromuscular stimulation; optimal systems; optimisation; visual perception; waveform analysis; RGC classes morphological differences; RGC electrical stimulation; RGC population activation; anatomically homogenous RGC population; biphasic stimulation parameter array; blind visual perception restoration; cathodic-first pulses; electrical stimulation efficacy improvement; electrical stimulation optimization; electrical stimulus waveform parameters; electrical waveform parameter choice; epiretinal prostheses; epiretinal stimulating electrode; implantable retinal neurostimulator efficacy; optimal stimulus parameter identification; optimal waveform parameters; polarity; rat A2-type RGC response; rectangular charge-balanced stimuli; retinal ganglion cells; short phase duration; stimulation frequency; stimulus charge minimization; stimulus efficacy drop; threshold current amplitude; threshold-reducing interphase interval; waveform asymmetry; waveform parameter effects; whole-cell current clamp techniques; Australia; Electrical stimulation; Electrodes; Optimization; Protocols; Retina; Threshold current; Electrophysiology; epiretinal stimulation; patch clamp; rat; retinal prosthesis;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/TNSRE.2014.2361900
  • Filename
    6928461