High-speed three-dimensional fluorescence imaging of neural activity

T. Holy, T.F. Holekam, D. Turaga
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Abstract

Our progress in understanding the function of the nervous system is, in many ways, limited by our ability to record neural activity. While there has been considerable progress in imaging at the extremes of length scales (e.g., whole brain imaging by fMRI and sub-cellular resolution by two-photon microscopy), there is a need for optical techniques to record the individual activities of large populations of neurons in intact circuits. Current techniques such as epifluorescence microscopy have reasonable time resolution but suffer from signal-to-background problems when viewing thick samples, while confocal techniques are limited in time resolution and/or photon efficiency. To address some of these limitations, we have developed a novel form of microscopy for high-speed three-dimensional fluorescence imaging. Using this technique, entire stacks of high signal-to-noise images can be acquired in seconds. We are currently using this technique to record the activity of populations of sensory neurons in the mouse olfactory system
神经活动的高速三维荧光成像
我们在了解神经系统功能方面的进展,在许多方面受到我们记录神经活动的能力的限制。虽然在极端长度尺度的成像方面已经取得了相当大的进展(例如,通过fMRI进行全脑成像和通过双光子显微镜进行亚细胞分辨率成像),但仍然需要光学技术来记录完整电路中大量神经元的个体活动。当前的技术,如表观荧光显微镜具有合理的时间分辨率,但在观察厚样品时存在信号-背景问题,而共聚焦技术在时间分辨率和/或光子效率方面受到限制。为了解决这些限制,我们开发了一种新型的高速三维荧光成像显微镜。使用这种技术,可以在几秒钟内获得整个高信噪比图像堆栈。我们目前正在使用这项技术来记录小鼠嗅觉系统中感觉神经元群的活动
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