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利用高速数字光处理实现时空神经元尖峰活动的并行光学控制。

Parallel optical control of spatiotemporal neuronal spike activity using high-speed digital light processing.

机构信息

Department of Anatomy and Neurobiology, University of Tennessee Health Science Center Memphis, TN, USA.

出版信息

Front Syst Neurosci. 2011 Aug 25;5:70. doi: 10.3389/fnsys.2011.00070. eCollection 2011.

Abstract

Neurons in the mammalian neocortex receive inputs from and communicate back to thousands of other neurons, creating complex spatiotemporal activity patterns. The experimental investigation of these parallel dynamic interactions has been limited due to the technical challenges of monitoring or manipulating neuronal activity at that level of complexity. Here we describe a new massively parallel photostimulation system that can be used to control action potential firing in in vitro brain slices with high spatial and temporal resolution while performing extracellular or intracellular electrophysiological measurements. The system uses digital light processing technology to generate 2-dimensional (2D) stimulus patterns with >780,000 independently controlled photostimulation sites that operate at high spatial (5.4 μm) and temporal (>13 kHz) resolution. Light is projected through the quartz-glass bottom of the perfusion chamber providing access to a large area (2.76 mm × 2.07 mm) of the slice preparation. This system has the unique capability to induce temporally precise action potential firing in large groups of neurons distributed over a wide area covering several cortical columns. Parallel photostimulation opens up new opportunities for the in vitro experimental investigation of spatiotemporal neuronal interactions at a broad range of anatomical scales.

摘要

哺乳动物大脑皮层中的神经元接收来自数千个其他神经元的输入,并与它们进行回传通信,从而产生复杂的时空活动模式。由于在如此复杂的层面上监测或操纵神经元活动的技术挑战,对这些并行动态相互作用的实验研究受到了限制。这里我们描述了一种新的大规模并行光刺激系统,该系统可用于在体外脑片上以高时空分辨率控制动作电位的发放,同时进行细胞外或细胞内电生理测量。该系统使用数字光处理技术生成具有>780,000 个独立控制的光刺激点的二维(2D)刺激模式,其工作具有高空间(5.4μm)和高时间(>13kHz)分辨率。光通过灌注室的石英玻璃底部投射,从而可以到达切片制备物的大区域(2.76mm×2.07mm)。该系统具有独特的能力,可以在覆盖多个皮层柱的大面积范围内诱导时间精确的动作电位发放,刺激大量神经元。并行光刺激为在广泛的解剖学尺度上进行时空神经元相互作用的体外实验研究开辟了新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd78/3161245/eb0abe780bb4/fnsys-05-00070-g001.jpg

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