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Neuron Tracking in Calcium Image Stacks Using Accordion Articulations

机译:使用手风琴关节对钙图像栈中的神经元进行跟踪

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The output of several distinct classes of proprioceptive sensory neurons in the Drosophila larva is required for coordinated locomotion. Yet how these neurons respond to idiothetic movements remains unknown. The lack of robust tools for simultaneous quantification of both morphology and neuronal activity in calcium images hinders the progress. The main bottleneck for tracking deformations is a combination of (a) imaging-specific attributes, namely low axial (Z) resolution and noise, and (b) movement-specific characteristics, namely strong deformations yielding a strain that travels as a wave from one side of the ventral nerve cord segment to the other. Fortunately, the wave-like form of forward and backwards locomotion allows for model constraints that compensate for the imaging ambiguities. In this work, we developed a method for tracking sensory neurons in the Drosophila larva, using appearance, local shape constraints, and global morphology characteristics embedded in an accordion-like, piece-wise articulated surface that approximates local maximum average intensity and incorporates the locomotion characteristics. Our results show that this approach can accurately track local branch deformations, but most importantly, it can estimate dendrite axial deformations, i.e., bending curvatures along the Z-axis, under the progressive strain wave during locomotion.
机译:果蝇幼虫中几种截然不同的本体感受感觉神经元的输出是协调运动所必需的。然而,这些神经元如何对惯性运动做出反应仍是未知的。缺乏同时定量钙图像中形态和神经元活动的强大工具,阻碍了这一进展。跟踪变形的主要瓶颈是以下因素的组合:(a)特定于成像的属性,即低轴向(Z)分辨率和噪声,以及(b)特定于运动的特性,即强烈的变形会产生从波中传播的应变腹侧神经索段的另一侧。幸运的是,向前和向后移动的波状形式允许模型约束来补偿成像模糊性。在这项工作中,我们开发了一种方法,利用果蝇幼虫的外观,局部形状约束和嵌入在手风琴状,分段铰接表面中的全局形态特征来跟踪果蝇幼虫的感觉神经元,该表面近似于局部最大平均强度并结合了运动特征。我们的结果表明,该方法可以准确跟踪局部分支变形,但最重要的是,它可以估计运动过程中渐进应变波下的枝晶轴向变形,即沿Z轴的弯曲曲率。

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