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Whole-brain functional imaging at cellular resolution using light-sheet microscopy

机译:使用光片显微镜在细胞分辨率下进行全脑功能成像

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摘要

Brain function relies on communication between large populations of neurons across multiple brain areas, a full understanding of which would require knowledge of the time-varying activity of all neurons in the central nervous system. Here we use light-sheet microscopy to record activity, reported through the genetically encoded calcium indicator GCaMP5G, from the entire volume of the brain of the larval zebrafish in vivo at 0.8 Hz, capturing more than 80% of all neurons at single-cell resolution. Demonstrating how this technique can be used to reveal functionally defined circuits across the brain, we identify two populations of neurons with correlated activity patterns. One circuit consists of hindbrain neurons functionally coupled to spinal cord neuropil. The other consists of an anatomically symmetric population in the anterior hindbrain, with activity in the left and right halves oscillating in antiphase, on a timescale of 20 s, and coupled to equally slow oscillations in the inferior olive.
机译:脑功能依赖于跨多个大脑区域的大量神经元之间的交流,要全面了解其知识就需要了解中枢神经系统中所有神经元随时间变化的活动。在这里,我们使用光片显微镜记录了通过遗传编码的钙指示剂GCaMP5G报告的活体斑马鱼大脑在0.8 Hz的整个大脑中的活动,以单细胞分辨率捕获了超过80%的所有神经元。 。为了说明该技术如何用于揭示大脑中功能定义的电路,我们确定了具有相关活动模式的两个神经元群体。一个回路由功能上耦合到脊髓神经纤维的后脑神经元组成。另一个由前脑后部的解剖学对称种群组成,左右半部的活动在20 s的时间尺度上呈反相振荡,并与下橄榄同样缓慢地振荡。

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