Research School of Biology, Australian National University, Acton, ACT 0200, Australia.
Biomaterials. 2012 Aug;33(24):5812-20. doi: 10.1016/j.biomaterials.2012.04.063. Epub 2012 May 20.
Electronic retinal implants for the blind are already a market reality. A world wide effort is underway to find the technology that offers the best combination of performance and safety for potential patients. Our approach is to construct an epi-retinally targeted device entirely encapsulated in diamond to maximise longevity and biocompatibility. The stimulating array of our device comprises a monolith of electrically insulating diamond with thousands of hermetic, microscale nitrogen doped ultra-nanocrystalline diamond (N-UNCD) feedthroughs. Here we seek to establish whether the conducting diamond feedthroughs of the array can be used as stimulating electrodes without further modification with a more traditional neural stimulation material. Efficacious stimulation of retinal ganglion cells was established using single N-UNCD microelectrodes in contact with perfused, explanted, rat retina. Evoked rat retinal ganglion cell action potentials were recorded by patch clamp recording from single ganglion cells, adjacent to the N-UNCD stimulating electrode. Separately, excellent electrochemical stability of N-UNCD was established by prolonged pulsing in phosphate buffered saline at increasing charge density up to the measured charge injection limit for the material.
用于盲人的电子视网膜植入物已经成为现实。全世界都在努力寻找一种技术,为潜在患者提供最佳的性能和安全性组合。我们的方法是构建一个完全封装在钻石中的眼内靶向设备,以最大限度地提高其寿命和生物相容性。我们的设备刺激阵列由一块电绝缘的钻石组成,上面有成千上万的密封、微尺度氮掺杂的超纳米金刚石(N-UNCD)贯穿件。在这里,我们试图确定阵列的导电金刚石贯穿件是否可以在不进一步修改更传统的神经刺激材料的情况下用作刺激电极。使用与灌注、离体的大鼠视网膜接触的单个 N-UNCD 微电极,成功地刺激了视网膜神经节细胞。通过在磷酸盐缓冲盐水中进行长时间脉冲,在增加电荷密度的情况下,直到达到材料的测量电荷注入极限,从而证明了 N-UNCD 的电化学稳定性良好。