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大鼠视网膜电刺激:上丘和视觉皮层记录的激活阈值

Retinal electrostimulation in rats: Activation thresholds from superior colliculus and visual cortex recordings.

作者信息

Barriga-Rivera Alejandro, Morley John W, Lovell Nigel H, Suaning Gregg J

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2017 Jul;2017:1166-1169. doi: 10.1109/EMBC.2017.8037037.

Abstract

Retinal neuromodulation is an emerging therapeutic approach to restore functional vision to those suffering retinal photoreceptor degeneration. The retina encodes visual information and transmits it to the brain. Replicating this retinal code through electrical stimulation is essential to improving the performance of visual prostheses. In doing so, the first step relies on precise neural recordings from visual centers that allow studying the response of these neurons to electrical stimulation of the retina. This paper demonstrates the feasibility of a rat model to conduct highly reliable electrophysiological studies in the field of retinal neuromodulation. A disc electrode, implanted in the retrobulbar space was used to stimulate the retina of Long-Evans rats. Buzsaki multi-electro arrays were inserted in the superior colliculus (SC) to record electrical activity propagated from the retinal ganglion cells (RGCs). Activation thresholds calculated from local field potentials (visual cortex) and from neural spikes (SC) were contrasted. Both values were comparable to those in humans and in other animal models, and were slightly higher when estimated from SC recordings. However, differences were not statistically significant.

摘要

视网膜神经调节是一种新兴的治疗方法,旨在为视网膜光感受器退化的患者恢复功能性视力。视网膜对视觉信息进行编码并将其传输至大脑。通过电刺激复制这种视网膜编码对于提高视觉假体的性能至关重要。在此过程中,第一步依赖于从视觉中枢进行精确的神经记录,以便研究这些神经元对视网膜电刺激的反应。本文证明了在视网膜神经调节领域使用大鼠模型进行高度可靠的电生理研究的可行性。将圆盘电极植入球后间隙,用于刺激Long-Evans大鼠的视网膜。将Buzsaki多电极阵列插入上丘(SC),以记录从视网膜神经节细胞(RGC)传播的电活动。对比了根据局部场电位(视觉皮层)和神经尖峰(SC)计算出的激活阈值。这两个值与人类和其他动物模型中的值相当,并且从SC记录估计时略高。然而,差异无统计学意义。

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