High-amplitude electrical stimulation can reduce elicited neuronal activity in visual prosthesis

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作者
Alejandro Barriga-Rivera
Tianruo Guo
Chih-Yu Yang
Amr Al Abed
Socrates Dokos
Nigel H. Lovell
John W. Morley
Gregg J. Suaning
机构
[1] Graduate School of Biomedical Engineering,
[2] School of Medicine,undefined
[3] Western Sydney University,undefined
[4] School of Medical Science,undefined
[5] Sydney Medical School,undefined
[6] University of Sydney,undefined
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Retinal electrostimulation is promising a successful therapy to restore functional vision. However, a narrow stimulating current range exists between retinal neuron excitation and inhibition which may lead to misperformance of visual prostheses. As the conveyance of representation of complex visual scenes may require neighbouring electrodes to be activated simultaneously, electric field summation may contribute to reach this inhibitory threshold. This study used three approaches to assess the implications of relatively high stimulating conditions in visual prostheses: (1) in vivo, using a suprachoroidal prosthesis implanted in a feline model, (2) in vitro through electrostimulation of murine retinal preparations, and (3) in silico by computing the response of a population of retinal ganglion cells. Inhibitory stimulating conditions led to diminished cortical activity in the cat. Stimulus-response relationships showed non-monotonic profiles to increasing stimulating current. This was observed in vitro and in silico as the combined response of groups of neurons (close to the stimulating electrode) being inhibited at certain stimulating amplitudes, whilst other groups (far from the stimulating electrode) being recruited. These findings may explain the halo-like phosphene shapes reported in clinical trials and suggest that simultaneous stimulation in retinal prostheses is limited by the inhibitory threshold of the retinal ganglion cells.
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