Faculty of Biomedical Engineering, Technion-Israel Institute of Technology, Haifa 3200000, Israel.
Nat Commun. 2013;4:1509. doi: 10.1038/ncomms2500.
When natural photoreception is disrupted, as in outer-retinal degenerative diseases, artificial stimulation of surviving nerve cells offers a potential strategy for bypassing compromised neural circuits. Recently, light-sensitive proteins that photosensitize quiescent neurons have generated unprecedented opportunities for optogenetic neuronal control, inspiring early development of optical retinal prostheses. Selectively exciting large neural populations are essential for eliciting meaningful perceptions in the brain. Here we provide the first demonstration of holographic photo-stimulation strategies for bionic vision restoration. In blind retinas, we demonstrate reliable holographically patterned optogenetic stimulation of retinal ganglion cells with millisecond temporal precision and cellular resolution. Holographic excitation strategies could enable flexible control over distributed neuronal circuits, potentially paving the way towards high-acuity vision restoration devices and additional medical and scientific neuro-photonics applications.
当自然光感知被破坏,如在外视网膜退行性疾病中,对存活神经细胞进行人工刺激为绕过受损神经回路提供了一种潜在策略。最近,光敏蛋白使静止神经元感光,为光遗传学神经元控制带来了前所未有的机会,激发了光学视网膜假体的早期发展。选择性地兴奋大的神经元群体对于在大脑中产生有意义的感知是至关重要的。在这里,我们首次展示了用于仿生视觉恢复的全息光刺激策略。在盲眼中,我们证明了具有毫秒级时间精度和细胞分辨率的可靠全息模式的光遗传学视网膜神经节细胞刺激。全息激发策略可以实现对分布式神经元回路的灵活控制,有可能为高分辨率视力恢复设备以及其他医学和科学神经光子学应用铺平道路。