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Whole-central nervous system functional imaging in larval Drosophila

机译:幼虫果蝇的全中枢神经系统功能成像

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Understanding how the brain works in tight concert with the rest of the central nervous system (CNS) hinges upon knowledge of coordinated activity patterns across the whole CNS. We present a method for measuring activity in an entire, non-transparent CNS with high spatiotemporal resolution. We combine a light-sheet microscope capable of simultaneous multi-view imaging at volumetric speeds 25-fold faster than the state-of-the-art, a whole-CNS imaging assay for the isolated Drosophila larval CNS and a computational framework for analysing multi-view, whole-CNS calcium imaging data. We image both brain and ventral nerve cord, covering the entire CNS at 2 or 5 Hz with two- or one-photon excitation, respectively. By mapping network activity during fictive behaviours and quantitatively comparing high-resolution whole-CNS activity maps across individuals, we predict functional connections between CNS regions and reveal neurons in the brain that identify type and temporal state of motor programs executed in the ventral nerve cord.
机译:了解大脑如何与其他中枢神经系统(CNS)紧密协调地工作,取决于对整个CNS协调活动模式的了解。我们提出了一种以高时空分辨率测量整个非透明CNS活动的方法。我们结合了能够以比最新技术快25倍的体积速度同时进行多视图成像的光片显微镜,用于分离的果蝇幼虫CNS的全CNS成像测定法和用于分析多种果蝇的计算框架视图,整个CNS钙成像数据。我们对大脑和腹侧神经线成像,分别以2或5光子激发以2或5 Hz覆盖整个CNS。通过在虚拟行为期间绘制网络活动图并定量比较各个个体的高分辨率全CNS活动图,我们预测了CNS区域之间的功能连接并揭示了大脑中的神经元,这些神经元确定了在腹神经索中执行的运动程序的类型和时间状态。

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