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Feasibility Assessment of an Optically Powered Digital Retinal Prosthesis Architecture for Retinal Ganglion Cell Stimulation

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posted on 2025-07-18, 05:51 authored by W Lemaire, M Benhouria, K Koua, W Tong, G Martin-Hardy, M Stamp, K Ganesan, LP Gauthier, M Besrour, Arman AhnoodArman Ahnood, D John Garrett, S Roy, MR Ibbotson, S Prawer, R Fontaine
Clinical trials previously demonstrated the notable capacity to elicit visual percepts in individuals with visual impairments caused by retinal diseases by electrically stimulating the remaining neurons on the retina. However, these implants restored very limited visual acuity and required transcutaneous cables traversing the eyeball, leading to reduced reliability and complex surgery with high postoperative infection risks. To overcome the limitations imposed by cables, a retinal implant architecture in which near-infrared illumination carries both power and data through the pupil to a digital stimulation controller is presented. A high efficiency multi-junction photovoltaic cell transduces the optical power to a CMOS stimulator capable of delivering flexible interleaved sequential stimulation through a diamond microelectrode array. To demonstrate the capacity to elicit a neural response with this approach while complying with the optical irradiance limit at the pupil, fluorescence imaging with a calcium indicator is used on a degenerate rat retina. The power delivered by the laser at the permissible irradiance of 4 mW/mm2 at 850 nm is shown to be sufficient to both power the stimulator ASIC and elicit a response in retinal ganglion cells (RGCs), with the ability to generate of up to 35 000 pulses per second at the average stimulation threshold. This confirms the feasibility of generating a response in RGCs with an infrared-powered digital architecture capable of delivering complex sequential stimulation patterns at high repetition rates, albeit with some limitations.<p></p>

Funding

CMC Microsystems | LP160101052

History

Journal

IEEE Transactions on Neural Systems and Rehabilitation Engineering

Volume

33

Start page

92

End page

102

Total pages

11

Publisher

Institute of Electrical and Electronics Engineers (IEEE)

Language

eng

Copyright

© 2024 The Authors.

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