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V Y Chow

Publications and source records attributed to V Y Chow.

2 recordsLinked to original sources

Subretinal semiconductor microphotodiode array.

BACKGROUND AND OBJECTIVE: To examine the function of a semiconductor microphotodiode array (SMA) surgically implanted in the subretinal space. MATERIALS AND METHODS: Positive-intrinsic layer-negative (PiN) or negative-intrinsic layer-positive (NiP) SMAs were surgically placed into the subretinal space of rabbits through a pars plana incision and a posterior retinotomy. The implants required no external connections for power and were sensitive to light over the visible and infrared (IR) spectrum; IR stimuli were used to isolate implant-mediated responses from the activity of native photoreceptors. A stimulator ophthalmoscope was used to superimpose IR stimuli on the implant and adjacent retinal areas, and responses were recorded during the postoperative recovery period. SMA responses were also evaluated in vitro. The animals were given lethal anesthetic overdoses, and the retinas were examined histologically. RESULTS: The in vitro implant response consisted of an electrical spike, followed by a small-amplitude DC offset that followed the time course of the IR stimulation, and an overshoot at the stimulus offset. The SMAs placed in the subretinal space retained a stable position and continued to function throughout the postoperative period. The SMA responses recorded in vivo included additional slow-wave components that were absent from the in vitro recordings. These responses reverted to the in vitro configuration following the death of the animal. There was a significant loss of retinal cells in areas overlying the implant, and the retina appeared normal away from the implant and surgical site. CONCLUSION: SMAs can be successfully implanted into the subretinal space and will generate current in response to light stimulation during an extended period of time.

Animals

Subretinal electrical stimulation of the rabbit retina.

A number of disorders results in photoreceptor degeneration, yet spare the inner retinal layers. We are investigating the possibility that retinal function may be restored in such a situation by electric current applied from the subretinal space. In the present study, bipolar strip electrodes receiving electric current from external photodiodes were implanted into the subretinal space of adult rabbits. Recordings were made from the scalp overlying the visual cortex in response to photic flash stimulation of one eye before surgery. This was compared to the visual cortex response caused by subretinal electrical stimulation of the same eye from an implanted strip electrode. Electric current to the strip electrode was provided by an externally connected photodiode that was stimulated at a remote location with a photoflash. The electrical stimulus was recordable as a brief electrical implant spike during stimulation. In addition, after the implant spike, cortical responses were obtained in response to subretinal electrical stimulation that resembled closely the normal light induced visual evoked potential produced by the pre-implanted eye. These results indicate that the visual system can be activated by electrical stimulation from the subretinal space and indicate that this approach may provide a means to restore vision to eyes blinded by outer retinal disease.

Animals