光电染料视网膜假体(OUReP)是一种新型的人工视网膜

T. Matsuo, Tetsuya Uchida
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引用次数: 1

摘要

我们开发了世界上第一种新型的人工视网膜,OUReP(冈山大学视网膜假体),其中一种光电染料将光能转化为电势,作为绝缘体与聚乙烯薄膜表面共价键合。吸收光的感受器和产生位移电流以刺激附近神经元的输出装置集成在一层薄膜中。使用测量半导体表面电位的开尔文探针来测量人工视网膜OUReP的表面电位已经成为可能。当打开和关闭人工视网膜的OUReP时,表面电位迅速变化。随着光强的增加,人工视网膜表面的电位变化变大。安全性方面,人工视网膜OUReP在所有医疗器械生物学评价试验中均无毒性。在疗效方面,采用玻璃体手术将人工视网膜OUReP植入化学诱导黄斑变性伴光感受器细胞丧失的猴眼视网膜下。在接下来的6个月里,过程中没有发生视网膜脱离,人工视网膜与视网膜组织接触。黄斑变性减弱的视觉诱发电位振幅在人工视网膜植入1个月后恢复,并维持到植入6个月后恢复。利用多电极阵列盘式记录系统,证明了将人工视网膜置于视网膜营养不良大鼠或小鼠的退行性视网膜组织上,在光照下可诱发动作电位尖峰,并以此作为人工视网膜有效性的指标。我们已经在洁净室设施中建立了设备的生产和质量控制,证明了安全性和有效性,并正在准备首次在人体中进行研究者发起的临床试验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photoelectric dye-based retinal prosthesis (OUReP) as a novel type of artificial retina
We have developed the world's first novel type of artificial retina, OUReP (Okayama University Retinal Prosthesis), in which a photoelectric dye that converts light energy into electric potential is covalently bonded to the surface of a polyethylene thin film as an insulator. The receptor that absorbs light and the output device that generates displacement current to stimulate nearby neurons are integrated in a sheet of thin film. It has become possible to measure the surface potential of the artificial retina OUReP using a Kelvin probe that measures the surface potential of semiconductors. When light is turned on and off to the artificial retina OUReP, the surface potential changes rapidly. As the light intensity is increased, the potential change on the surface of the artificial retina becomes larger. As for safety, the artificial retina OUReP was not toxic in all tests for biological evaluation of medical devices. As for efficacy, the artificial retina OUReP was implanted under the retina by vitreous surgery in monkey eyes which had chemically-induced macular degeneration with photoreceptor cell loss. Over the next 6 months, retinal detachment did not occur during the course, and the artificial retina was in contact with the retinal tissue. The amplitude of the visual evoked potential attenuated by macular degeneration recovered 1 month after implantation of the artificial retina, and the recovery of amplitude was maintained until 6 months after the implantation. By using multielectrode array-mounted dish recording system, it has been proved that action potential spikes are induced when the artificial retina is placed on degenerative retinal tissue of retinal dystrophic rats or mice and exposed to light, which is used as an index of the effectiveness of the artificial retina. We have established manufacturing and quality control of the device in a clean room facility, proved the safety and efficacy, and are preparing for first-in-human investigator-initiated clinical trials.
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