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System level analysis of motor-related neural activities in larval Drosophila

机译:幼虫果蝇与电动相关神经活动的系统级分析

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The way in which the central nervous system (CNS) governs animal movement is complex and difficult to solve solely by the analyses of muscle movement patterns. We tackle this problem by observing the activity of a large population of neurons in the CNS of larval Drosophila. We focused on two major behaviors of the larvae - forward and backward locomotion - and analyzed the neuronal activity related to these behaviors during the fictive locomotion that occurs spontaneously in the isolated CNS. We expressed a genetically-encoded calcium indicator, GCaMP and a nuclear marker in all neurons and then used digitally scanned light-sheet microscopy to record (at a fast frame rate) neural activities in the entire ventral nerve cord (VNC). We developed image processing tools that automatically detected the cell position based on the nuclear staining and allocate the activity signals to each detected cell. We also applied a machine learning-based method that we recently developed to assign motor status in each time frame. Our experimental procedures and computational pipeline enabled systematic identification of neurons that showed characteristic motor activities in larval Drosophila. We found cells whose activity was biased toward forward locomotion and others biased toward backward locomotion. In particular, we identified neurons near the boundary of the subesophageal zone (SEZ) and thoracic neuromeres, which were strongly active during an early phase of backward but not forward fictive locomotion.
机译:中枢神经系统(CNS)治理动物运动的方式复杂,难以通过肌肉运动模式的分析来解决。我们通过观察幼虫果蝇的CNS中大量神经元的活性来解决这个问题。我们专注于幼虫前后运动的两个主要行为 - 并分析了在孤立的CNS中自发发生的虚构运动期间与这些行为相关的神经元活动。我们在所有神经元中表达了一种遗传编码的钙指示剂,GCAMP和核标记,然后使用数字扫描的光纸显微镜,以在整个腹侧神经帘线(VNC)中记录(以快速帧速率)神经活动。我们开发了基于核染色自动检测到单元位置的图像处理工具,并将活动信号分配给每个检测到的小区。我们还应用了一种基于机器学习的方法,我们最近开发的是在每个时间帧中分配电机状态。我们的实验程序和计算管道使能系统鉴定显示在幼虫果蝇中的特征电机活性。我们发现其活动被偏向向前运动的细胞,其他细胞偏向向后运动。特别地,我们鉴定了亚底膜区(SEZ)和胸部神经元的边界附近的神经元,其在落后的早期但不前述的虚构运动期间强烈活跃。

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